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backwardFacingStep2d_Re1025_s010__full__0
backwardFacingStep2d_Re1025_s010
Identify the fluid mechanics benchmark video showing channel flow over a backward-facing step, the view is 2D, the flow is laminar, the domain spans about 6.275 by 2.031, the Reynolds number is about 1025, the reference velocity is about 0.9174, the kinematic viscosity is about 0.000895, colors encode velocity magnitud...
Find the 2D fluid mechanics video of channel flow over a backward-facing step, showing a separated shear layer and a recirculation zone forming behind the step. Physically, the flow separates at the step edge and reattaches downstream, trapping a slowly rotating recirculation bubble. The color map represents velocity m...
backwardFacingStep2d_Re1175_s004_r2__full__0
backwardFacingStep2d_Re1175_s004_r2
Identify the fluid mechanics benchmark video showing channel flow over a backward-facing step, the view is 2D, the flow is laminar, the domain spans about 5.856 by 2.264, the Reynolds number is about 1175, the reference velocity is about 1.346, the kinematic viscosity is about 0.001146, colors encode velocity magnitude...
Find the 2D fluid mechanics video of channel flow over a backward-facing step, showing a separated shear layer and a recirculation zone forming behind the step. Physically, the flow separates at the step edge and reattaches downstream, trapping a slowly rotating recirculation bubble. The color map represents velocity m...
backwardFacingStep2d_Re11850_s008_r2__full__0
backwardFacingStep2d_Re11850_s008_r2
Identify the fluid mechanics benchmark video showing channel flow over a backward-facing step, the view is 2D, the flow is turbulent, the domain spans about 5.324 by 1.881, the Reynolds number is about 11850, the reference velocity is about 1.319, the kinematic viscosity is about 0.0001113, colors encode velocity magni...
Find the 2D fluid mechanics video of channel flow over a backward-facing step, showing a separated shear layer and a recirculation zone forming behind the step. Physically, the flow separates at the step edge and reattaches downstream, trapping a slowly rotating recirculation bubble. The color map represents velocity m...
backwardFacingStep2d_Re1475_s012__full__0
backwardFacingStep2d_Re1475_s012
Identify the fluid mechanics benchmark video showing channel flow over a backward-facing step, the view is 2D, the flow is laminar, the domain spans about 5.837 by 1.881, the Reynolds number is about 1475, the reference velocity is about 0.9384, the kinematic viscosity is about 0.0006362, colors encode velocity magnitu...
Find the 2D fluid mechanics video of channel flow over a backward-facing step, showing a separated shear layer and a recirculation zone forming behind the step. Physically, the flow separates at the step edge and reattaches downstream, trapping a slowly rotating recirculation bubble. The color map represents velocity m...
backwardFacingStep2d_Re2350_s014__full__0
backwardFacingStep2d_Re2350_s014
Identify the fluid mechanics benchmark video showing channel flow over a backward-facing step, the view is 2D, the flow is laminar, the domain spans about 6.588 by 2.183, the Reynolds number is about 2350, the reference velocity is about 1.236, the kinematic viscosity is about 0.0005259, colors encode velocity magnitud...
Find the 2D fluid mechanics video of channel flow over a backward-facing step, showing a separated shear layer and a recirculation zone forming behind the step. Physically, the flow separates at the step edge and reattaches downstream, trapping a slowly rotating recirculation bubble. The color map represents velocity m...
backwardFacingStep2d_Re3375_s006_r2__full__0
backwardFacingStep2d_Re3375_s006_r2
Identify the fluid mechanics benchmark video showing channel flow over a backward-facing step, the view is 2D, the flow is laminar, the domain spans about 6.921 by 2.218, the Reynolds number is about 3375, the reference velocity is about 1.349, the kinematic viscosity is about 0.0003997, colors encode velocity magnitud...
Find the 2D fluid mechanics video of channel flow over a backward-facing step, showing a separated shear layer and a recirculation zone forming behind the step. Physically, the flow separates at the step edge and reattaches downstream, trapping a slowly rotating recirculation bubble. The color map represents velocity m...
backwardFacingStep2d_Re3450_s016__full__0
backwardFacingStep2d_Re3450_s016
Identify the fluid mechanics benchmark video showing channel flow over a backward-facing step, the view is 2D, the flow is laminar, the domain spans about 6.983 by 2.333, the Reynolds number is about 3450, the reference velocity is about 0.9131, the kinematic viscosity is about 0.0002647, colors encode velocity magnitu...
Find the 2D fluid mechanics video of channel flow over a backward-facing step, showing a separated shear layer and a recirculation zone forming behind the step. Physically, the flow separates at the step edge and reattaches downstream, trapping a slowly rotating recirculation bubble. The color map represents velocity m...
backwardFacingStep2d_Re3500_s007_r2__full__0
backwardFacingStep2d_Re3500_s007_r2
Identify the fluid mechanics benchmark video showing channel flow over a backward-facing step, the view is 2D, the flow is laminar, the domain spans about 6.648 by 1.93, the Reynolds number is about 3500, the reference velocity is about 0.7009, the kinematic viscosity is about 0.0002003, colors encode velocity magnitud...
Find the 2D fluid mechanics video of channel flow over a backward-facing step, showing a separated shear layer and a recirculation zone forming behind the step. Physically, the flow separates at the step edge and reattaches downstream, trapping a slowly rotating recirculation bubble. The color map represents velocity m...
backwardFacingStep2d_Re3700_s001_r2__full__0
backwardFacingStep2d_Re3700_s001_r2
Identify the fluid mechanics benchmark video showing channel flow over a backward-facing step, the view is 2D, the flow is laminar, the domain spans about 6.897 by 1.96, the Reynolds number is about 3700, the reference velocity is about 0.7393, the kinematic viscosity is about 0.0001998, colors encode velocity magnitud...
Find the 2D fluid mechanics video of channel flow over a backward-facing step, showing a separated shear layer and a recirculation zone forming behind the step. Physically, the flow separates at the step edge and reattaches downstream, trapping a slowly rotating recirculation bubble. The color map represents velocity m...
backwardFacingStep2d_Re3950_s013__full__0
backwardFacingStep2d_Re3950_s013
Identify the fluid mechanics benchmark video showing channel flow over a backward-facing step, the view is 2D, the flow is turbulent, the domain spans about 6.213 by 1.945, the Reynolds number is about 3950, the reference velocity is about 0.7918, the kinematic viscosity is about 0.0002005, colors encode velocity magni...
Find the 2D fluid mechanics video of channel flow over a backward-facing step, showing a separated shear layer and a recirculation zone forming behind the step. Physically, the flow separates at the step edge and reattaches downstream, trapping a slowly rotating recirculation bubble. The color map represents velocity m...
backwardFacingStep2d_Re4500_s018__full__0
backwardFacingStep2d_Re4500_s018
Identify the fluid mechanics benchmark video showing channel flow over a backward-facing step, the view is 2D, the flow is turbulent, the domain spans about 5.693 by 1.925, the Reynolds number is about 4500, the reference velocity is about 0.708, the kinematic viscosity is about 0.0001573, colors encode velocity magnit...
Find the 2D fluid mechanics video of channel flow over a backward-facing step, showing a separated shear layer and a recirculation zone forming behind the step. Physically, the flow separates at the step edge and reattaches downstream, trapping a slowly rotating recirculation bubble. The color map represents velocity m...
backwardFacingStep2d_Re4525_s005__full__0
backwardFacingStep2d_Re4525_s005
Identify the fluid mechanics benchmark video showing channel flow over a backward-facing step, the view is 2D, the flow is turbulent, the domain spans about 6.57 by 2.164, the Reynolds number is about 4525, the reference velocity is about 0.9034, the kinematic viscosity is about 0.0001996, colors encode velocity magnit...
Find the 2D fluid mechanics video of channel flow over a backward-facing step, showing a separated shear layer and a recirculation zone forming behind the step. Physically, the flow separates at the step edge and reattaches downstream, trapping a slowly rotating recirculation bubble. The color map represents velocity m...
backwardFacingStep2d_Re4575_s011__full__0
backwardFacingStep2d_Re4575_s011
Identify the fluid mechanics benchmark video showing channel flow over a backward-facing step, the view is 2D, the flow is turbulent, the domain spans about 5.747 by 1.993, the Reynolds number is about 4575, the reference velocity is about 0.9154, the kinematic viscosity is about 0.0002001, colors encode velocity magni...
Find the 2D fluid mechanics video of channel flow over a backward-facing step, showing a separated shear layer and a recirculation zone forming behind the step. Physically, the flow separates at the step edge and reattaches downstream, trapping a slowly rotating recirculation bubble. The color map represents velocity m...
backwardFacingStep2d_Re5050_s003__full__0
backwardFacingStep2d_Re5050_s003
Identify the fluid mechanics benchmark video showing channel flow over a backward-facing step, the view is 2D, the flow is turbulent, the domain spans about 6.895 by 2.271, the Reynolds number is about 5050, the reference velocity is about 1.005, the kinematic viscosity is about 0.0001991, colors encode velocity magnit...
Find the 2D fluid mechanics video of channel flow over a backward-facing step, showing a separated shear layer and a recirculation zone forming behind the step. Physically, the flow separates at the step edge and reattaches downstream, trapping a slowly rotating recirculation bubble. The color map represents velocity m...
backwardFacingStep2d_Re5100_s019__full__0
backwardFacingStep2d_Re5100_s019
Identify the fluid mechanics benchmark video showing channel flow over a backward-facing step, the view is 2D, the flow is turbulent, the domain spans about 6.598 by 1.896, the Reynolds number is about 5100, the reference velocity is about 1.016, the kinematic viscosity is about 0.0001993, colors encode velocity magnit...
Find the 2D fluid mechanics video of channel flow over a backward-facing step, showing a separated shear layer and a recirculation zone forming behind the step. Physically, the flow separates at the step edge and reattaches downstream, trapping a slowly rotating recirculation bubble. The color map represents velocity m...
backwardFacingStep2d_Re510_s006__full__0
backwardFacingStep2d_Re510_s006
Identify the fluid mechanics benchmark video showing channel flow over a backward-facing step, the view is 2D, the flow is laminar, the domain spans about 6.946 by 2.254, the Reynolds number is about 510, the reference velocity is about 1.342, the kinematic viscosity is about 0.002631, colors encode velocity magnitude,...
Find the 2D fluid mechanics video of channel flow over a backward-facing step, showing a separated shear layer and a recirculation zone forming behind the step. Physically, the flow separates at the step edge and reattaches downstream, trapping a slowly rotating recirculation bubble. The color map represents velocity m...
backwardFacingStep2d_Re5650_s003_r2__full__0
backwardFacingStep2d_Re5650_s003_r2
Identify the fluid mechanics benchmark video showing channel flow over a backward-facing step, the view is 2D, the flow is turbulent, the domain spans about 6.923 by 2.021, the Reynolds number is about 5650, the reference velocity is about 1.125, the kinematic viscosity is about 0.0001991, colors encode velocity magnit...
Find the 2D fluid mechanics video of channel flow over a backward-facing step, showing a separated shear layer and a recirculation zone forming behind the step. Physically, the flow separates at the step edge and reattaches downstream, trapping a slowly rotating recirculation bubble. The color map represents velocity m...
backwardFacingStep2d_Re5950_s015__full__0
backwardFacingStep2d_Re5950_s015
Identify the fluid mechanics benchmark video showing channel flow over a backward-facing step, the view is 2D, the flow is turbulent, the domain spans about 5.815 by 2.199, the Reynolds number is about 5950, the reference velocity is about 1.185, the kinematic viscosity is about 0.0001992, colors encode velocity magnit...
Find the 2D fluid mechanics video of channel flow over a backward-facing step, showing a separated shear layer and a recirculation zone forming behind the step. Physically, the flow separates at the step edge and reattaches downstream, trapping a slowly rotating recirculation bubble. The color map represents velocity m...
backwardFacingStep2d_Re6150_s009__full__0
backwardFacingStep2d_Re6150_s009
Identify the fluid mechanics benchmark video showing channel flow over a backward-facing step, the view is 2D, the flow is turbulent, the domain spans about 6.087 by 2.13, the Reynolds number is about 6150, the reference velocity is about 1.232, the kinematic viscosity is about 0.0002003, colors encode velocity magnitu...
Find the 2D fluid mechanics video of channel flow over a backward-facing step, showing a separated shear layer and a recirculation zone forming behind the step. Physically, the flow separates at the step edge and reattaches downstream, trapping a slowly rotating recirculation bubble. The color map represents velocity m...
backwardFacingStep2d_Re660_s002_r2__full__0
backwardFacingStep2d_Re660_s002_r2
Identify the fluid mechanics benchmark video showing channel flow over a backward-facing step, the view is 2D, the flow is laminar, the domain spans about 6.447 by 2.025, the Reynolds number is about 660, the reference velocity is about 0.9352, the kinematic viscosity is about 0.001417, colors encode velocity magnitude...
Find the 2D fluid mechanics video of channel flow over a backward-facing step, showing a separated shear layer and a recirculation zone forming behind the step. Physically, the flow separates at the step edge and reattaches downstream, trapping a slowly rotating recirculation bubble. The color map represents velocity m...
backwardFacingStep2d_Re6750_s021__full__0
backwardFacingStep2d_Re6750_s021
Identify the fluid mechanics benchmark video showing channel flow over a backward-facing step, the view is 2D, the flow is turbulent, the domain spans about 7.014 by 2.308, the Reynolds number is about 6750, the reference velocity is about 1.345, the kinematic viscosity is about 0.0001993, colors encode velocity magnit...
Find the 2D fluid mechanics video of channel flow over a backward-facing step, showing a separated shear layer and a recirculation zone forming behind the step. Physically, the flow separates at the step edge and reattaches downstream, trapping a slowly rotating recirculation bubble. The color map represents velocity m...
backwardFacingStep2d_Re680_s008__full__0
backwardFacingStep2d_Re680_s008
Identify the fluid mechanics benchmark video showing channel flow over a backward-facing step, the view is 2D, the flow is laminar, the domain spans about 5.654 by 2.192, the Reynolds number is about 680, the reference velocity is about 0.9332, the kinematic viscosity is about 0.001372, colors encode velocity magnitude...
Find the 2D fluid mechanics video of channel flow over a backward-facing step, showing a separated shear layer and a recirculation zone forming behind the step. Physically, the flow separates at the step edge and reattaches downstream, trapping a slowly rotating recirculation bubble. The color map represents velocity m...
backwardFacingStep2d_Re6850_s005_r2__full__0
backwardFacingStep2d_Re6850_s005_r2
Identify the fluid mechanics benchmark video showing channel flow over a backward-facing step, the view is 2D, the flow is turbulent, the domain spans about 6.146 by 2.357, the Reynolds number is about 6850, the reference velocity is about 1.371, the kinematic viscosity is about 0.0002002, colors encode velocity magnit...
Find the 2D fluid mechanics video of channel flow over a backward-facing step, showing a separated shear layer and a recirculation zone forming behind the step. Physically, the flow separates at the step edge and reattaches downstream, trapping a slowly rotating recirculation bubble. The color map represents velocity m...
backwardFacingStep2d_Re7150_s001__full__0
backwardFacingStep2d_Re7150_s001
Identify the fluid mechanics benchmark video showing channel flow over a backward-facing step, the view is 2D, the flow is turbulent, the domain spans about 6.446 by 1.846, the Reynolds number is about 7150, the reference velocity is about 1.431, the kinematic viscosity is about 0.0002002, colors encode velocity magnit...
Find the 2D fluid mechanics video of channel flow over a backward-facing step, showing a separated shear layer and a recirculation zone forming behind the step. Physically, the flow separates at the step edge and reattaches downstream, trapping a slowly rotating recirculation bubble. The color map represents velocity m...
backwardFacingStep2d_Re7150_s007__full__0
backwardFacingStep2d_Re7150_s007
Identify the fluid mechanics benchmark video showing channel flow over a backward-facing step, the view is 2D, the flow is turbulent, the domain spans about 6.017 by 2.072, the Reynolds number is about 7150, the reference velocity is about 1.432, the kinematic viscosity is about 0.0002002, colors encode velocity magnit...
Find the 2D fluid mechanics video of channel flow over a backward-facing step, showing a separated shear layer and a recirculation zone forming behind the step. Physically, the flow separates at the step edge and reattaches downstream, trapping a slowly rotating recirculation bubble. The color map represents velocity m...
backwardFacingStep2d_Re7250_s020__full__0
backwardFacingStep2d_Re7250_s020
Identify the fluid mechanics benchmark video showing channel flow over a backward-facing step, the view is 2D, the flow is turbulent, the domain spans about 5.441 by 2.159, the Reynolds number is about 7250, the reference velocity is about 1.304, the kinematic viscosity is about 0.0001798, colors encode velocity magnit...
Find the 2D fluid mechanics video of channel flow over a backward-facing step, showing a separated shear layer and a recirculation zone forming behind the step. Physically, the flow separates at the step edge and reattaches downstream, trapping a slowly rotating recirculation bubble. The color map represents velocity m...
buoyancy2d_Re1025_s033__full__0
buoyancy2d_Re1025_s033
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 0.9845 by 0.9777, the Reynolds number is about 1025, the reference velocity is about 0.00743, the kinematic viscosity is about 0.0004878, colors encode veloci...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re1100_s013_r2__full__0
buoyancy2d_Re1100_s013_r2
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 1.002 by 1.005, the Reynolds number is about 1100, the reference velocity is about 0.02434, the kinematic viscosity is about 0.0004545, colors encode velocity...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re1100_s034__full__0
buoyancy2d_Re1100_s034
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 1.044 by 0.9478, the Reynolds number is about 1100, the reference velocity is about 0.01457, the kinematic viscosity is about 0.0004545, colors encode velocit...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re1175_s035__full__0
buoyancy2d_Re1175_s035
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 1.033 by 0.995, the Reynolds number is about 1175, the reference velocity is about 0.003578, the kinematic viscosity is about 0.0004255, colors encode velocit...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re1250_s014_r2__full__0
buoyancy2d_Re1250_s014_r2
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 1.007 by 1.073, the Reynolds number is about 1250, the reference velocity is about 0.002064, the kinematic viscosity is about 0.0004, colors encode velocity m...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re125_s000__full__0
buoyancy2d_Re125_s000
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 1.035 by 0.9885, the Reynolds number is about 125, the reference velocity is about 0.02469, the kinematic viscosity is about 0.004, colors encode velocity mag...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re125_s000_r2__full__0
buoyancy2d_Re125_s000_r2
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 1.086 by 1.054, the Reynolds number is about 125, the reference velocity is about 0.0145, the kinematic viscosity is about 0.004, colors encode velocity magni...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re1275_s036__full__0
buoyancy2d_Re1275_s036
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 0.9203 by 1, the Reynolds number is about 1275, the reference velocity is about 0.0273, the kinematic viscosity is about 0.0003922, colors encode velocity mag...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re130_s001__full__0
buoyancy2d_Re130_s001
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 1.041 by 1.058, the Reynolds number is about 130, the reference velocity is about 0.02294, the kinematic viscosity is about 0.003846, colors encode velocity m...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re135_s002__full__0
buoyancy2d_Re135_s002
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 0.9691 by 0.9819, the Reynolds number is about 135, the reference velocity is about 0.002028, the kinematic viscosity is about 0.003704, colors encode velocit...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re1375_s037__full__0
buoyancy2d_Re1375_s037
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 0.9342 by 1.089, the Reynolds number is about 1375, the reference velocity is about 0.004894, the kinematic viscosity is about 0.0003636, colors encode veloci...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re1450_s038__full__0
buoyancy2d_Re1450_s038
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 1.03 by 0.9826, the Reynolds number is about 1450, the reference velocity is about 0.01596, the kinematic viscosity is about 0.0003448, colors encode velocity...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re145_s001_r2__full__0
buoyancy2d_Re145_s001_r2
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 0.9639 by 0.9647, the Reynolds number is about 145, the reference velocity is about 0.007995, the kinematic viscosity is about 0.003448, colors encode velocit...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re145_s003__full__0
buoyancy2d_Re145_s003
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 0.9728 by 1.091, the Reynolds number is about 145, the reference velocity is about 0.03787, the kinematic viscosity is about 0.003448, colors encode velocity ...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re1550_s015_r2__full__0
buoyancy2d_Re1550_s015_r2
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 0.9462 by 1.064, the Reynolds number is about 1550, the reference velocity is about 0.01644, the kinematic viscosity is about 0.0003226, colors encode velocit...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re1550_s039__full__0
buoyancy2d_Re1550_s039
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 1.061 by 0.9994, the Reynolds number is about 1550, the reference velocity is about 0.00899, the kinematic viscosity is about 0.0003226, colors encode velocit...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re155_s004__full__0
buoyancy2d_Re155_s004
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 1.06 by 1.014, the Reynolds number is about 155, the reference velocity is about 0.01229, the kinematic viscosity is about 0.003226, colors encode velocity ma...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re1575_s016_r2__full__0
buoyancy2d_Re1575_s016_r2
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 1.021 by 1.061, the Reynolds number is about 1575, the reference velocity is about 0.008763, the kinematic viscosity is about 0.0003175, colors encode velocit...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re1575_s040__full__0
buoyancy2d_Re1575_s040
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 1.096 by 1.048, the Reynolds number is about 1575, the reference velocity is about 0.02462, the kinematic viscosity is about 0.0003175, colors encode velocity...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re170_s005__full__0
buoyancy2d_Re170_s005
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 0.9463 by 0.9915, the Reynolds number is about 170, the reference velocity is about 0.02, the kinematic viscosity is about 0.002941, colors encode velocity ma...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re1725_s041__full__0
buoyancy2d_Re1725_s041
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 1.059 by 0.9532, the Reynolds number is about 1725, the reference velocity is about 0.006702, the kinematic viscosity is about 0.0002899, colors encode veloci...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re175_s006__full__0
buoyancy2d_Re175_s006
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 1.023 by 0.9895, the Reynolds number is about 175, the reference velocity is about 0.03444, the kinematic viscosity is about 0.002857, colors encode velocity ...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re185_s007__full__0
buoyancy2d_Re185_s007
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 0.9399 by 1.059, the Reynolds number is about 185, the reference velocity is about 0.01896, the kinematic viscosity is about 0.002703, colors encode velocity ...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re1900_s042__full__0
buoyancy2d_Re1900_s042
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 1.103 by 0.9255, the Reynolds number is about 1900, the reference velocity is about 0.01455, the kinematic viscosity is about 0.0002632, colors encode velocit...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re190_s008__full__0
buoyancy2d_Re190_s008
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 0.9388 by 0.9848, the Reynolds number is about 190, the reference velocity is about 0.03478, the kinematic viscosity is about 0.002632, colors encode velocity...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re215_s009__full__0
buoyancy2d_Re215_s009
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 1 by 1.007, the Reynolds number is about 215, the reference velocity is about 0.037, the kinematic viscosity is about 0.002326, colors encode velocity magnitu...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re2175_s043__full__0
buoyancy2d_Re2175_s043
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 0.9325 by 0.9491, the Reynolds number is about 2175, the reference velocity is about 0.006034, the kinematic viscosity is about 0.0002299, colors encode veloc...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re220_s010__full__0
buoyancy2d_Re220_s010
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 1.011 by 1.056, the Reynolds number is about 220, the reference velocity is about 0.01091, the kinematic viscosity is about 0.002273, colors encode velocity m...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re240_s011__full__0
buoyancy2d_Re240_s011
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 0.9968 by 1.07, the Reynolds number is about 240, the reference velocity is about 0.02988, the kinematic viscosity is about 0.002083, colors encode velocity m...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re2425_s044__full__0
buoyancy2d_Re2425_s044
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 0.9256 by 1.12, the Reynolds number is about 2425, the reference velocity is about 0.007446, the kinematic viscosity is about 0.0002062, colors encode velocit...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re250_s012__full__0
buoyancy2d_Re250_s012
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 0.9288 by 1.075, the Reynolds number is about 250, the reference velocity is about 0.004542, the kinematic viscosity is about 0.002, colors encode velocity ma...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re2675_s045__full__0
buoyancy2d_Re2675_s045
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 1.006 by 1.039, the Reynolds number is about 2675, the reference velocity is about 0.02018, the kinematic viscosity is about 0.0001869, colors encode velocity...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re275_s013__full__0
buoyancy2d_Re275_s013
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 0.9745 by 1.092, the Reynolds number is about 275, the reference velocity is about 0.0008934, the kinematic viscosity is about 0.001818, colors encode velocit...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re280_s014__full__0
buoyancy2d_Re280_s014
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 1.054 by 1.071, the Reynolds number is about 280, the reference velocity is about 0.001058, the kinematic viscosity is about 0.001786, colors encode velocity ...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re2975_s046__full__0
buoyancy2d_Re2975_s046
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 1.036 by 1.094, the Reynolds number is about 2975, the reference velocity is about 0.02272, the kinematic viscosity is about 0.0001681, colors encode velocity...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re310_s015__full__0
buoyancy2d_Re310_s015
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 0.9627 by 1.006, the Reynolds number is about 310, the reference velocity is about 0.02114, the kinematic viscosity is about 0.001613, colors encode velocity ...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re3300_s047__full__0
buoyancy2d_Re3300_s047
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 0.9363 by 0.9309, the Reynolds number is about 3300, the reference velocity is about 0.03114, the kinematic viscosity is about 0.0001515, colors encode veloci...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re330_s016__full__0
buoyancy2d_Re330_s016
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 1.011 by 1.057, the Reynolds number is about 330, the reference velocity is about 0.003233, the kinematic viscosity is about 0.001515, colors encode velocity ...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re340_s017__full__0
buoyancy2d_Re340_s017
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 0.9957 by 0.9307, the Reynolds number is about 340, the reference velocity is about 0.02398, the kinematic viscosity is about 0.001471, colors encode velocity...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re360_s018__full__0
buoyancy2d_Re360_s018
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 1.015 by 1.101, the Reynolds number is about 360, the reference velocity is about 0.02187, the kinematic viscosity is about 0.001389, colors encode velocity m...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re3625_s048__full__0
buoyancy2d_Re3625_s048
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 0.9276 by 1.029, the Reynolds number is about 3625, the reference velocity is about 0.02281, the kinematic viscosity is about 0.0001379, colors encode velocit...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re400_s019__full__0
buoyancy2d_Re400_s019
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 1.004 by 1.034, the Reynolds number is about 400, the reference velocity is about 0.03623, the kinematic viscosity is about 0.00125, colors encode velocity ma...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re4125_s049__full__0
buoyancy2d_Re4125_s049
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 0.9707 by 0.9482, the Reynolds number is about 4125, the reference velocity is about 0.03326, the kinematic viscosity is about 0.0001212, colors encode veloci...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re420_s020__full__0
buoyancy2d_Re420_s020
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 0.9389 by 0.9523, the Reynolds number is about 420, the reference velocity is about 0.00326, the kinematic viscosity is about 0.00119, colors encode velocity ...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re430_s021__full__0
buoyancy2d_Re430_s021
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 1.114 by 0.9248, the Reynolds number is about 430, the reference velocity is about 0.03766, the kinematic viscosity is about 0.001163, colors encode velocity ...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re440_s022__full__0
buoyancy2d_Re440_s022
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 1.075 by 1.013, the Reynolds number is about 440, the reference velocity is about 0.01798, the kinematic viscosity is about 0.001136, colors encode velocity m...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re480_s023__full__0
buoyancy2d_Re480_s023
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 0.9491 by 0.9875, the Reynolds number is about 480, the reference velocity is about 0.007814, the kinematic viscosity is about 0.001042, colors encode velocit...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re510_s024__full__0
buoyancy2d_Re510_s024
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 1.103 by 0.9271, the Reynolds number is about 510, the reference velocity is about 0.004197, the kinematic viscosity is about 0.0009804, colors encode velocit...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re540_s025__full__0
buoyancy2d_Re540_s025
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 0.9518 by 0.9266, the Reynolds number is about 540, the reference velocity is about 0.009183, the kinematic viscosity is about 0.0009259, colors encode veloci...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re590_s026__full__0
buoyancy2d_Re590_s026
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 1.033 by 0.9698, the Reynolds number is about 590, the reference velocity is about 0.00155, the kinematic viscosity is about 0.0008475, colors encode velocity...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re620_s027__full__0
buoyancy2d_Re620_s027
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 0.9357 by 1.069, the Reynolds number is about 620, the reference velocity is about 0.02958, the kinematic viscosity is about 0.0008065, colors encode velocity...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re670_s028__full__0
buoyancy2d_Re670_s028
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 0.9982 by 0.9784, the Reynolds number is about 670, the reference velocity is about 0.03971, the kinematic viscosity is about 0.0007463, colors encode velocit...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re760_s029__full__0
buoyancy2d_Re760_s029
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 1.093 by 1.05, the Reynolds number is about 760, the reference velocity is about 0.02494, the kinematic viscosity is about 0.0006579, colors encode velocity m...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re800_s030__full__0
buoyancy2d_Re800_s030
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 1.112 by 1.114, the Reynolds number is about 800, the reference velocity is about 0.0163, the kinematic viscosity is about 0.000625, colors encode velocity ma...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re860_s031__full__0
buoyancy2d_Re860_s031
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 1.058 by 0.9661, the Reynolds number is about 860, the reference velocity is about 0.007513, the kinematic viscosity is about 0.0005814, colors encode velocit...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
buoyancy2d_Re960_s032__full__0
buoyancy2d_Re960_s032
Identify the fluid mechanics benchmark video showing buoyancy-driven convection above a heated patch, the view is 2D, the flow is laminar, the domain spans about 1.069 by 0.942, the Reynolds number is about 960, the reference velocity is about 0.03564, the kinematic viscosity is about 0.0005208, colors encode velocity ...
Find the 2D fluid mechanics video of buoyancy-driven convection above a heated patch, showing warm fluid rising from the heated region in buoyant plumes. Physically, heated fluid becomes lighter and rises, entraining cooler fluid and forming unsteady thermal plumes. The color map represents velocity magnitude, so risin...
cavity2d_turb_Re10000_s012_r2__full__0
cavity2d_turb_Re10000_s012_r2
Identify the fluid mechanics benchmark video showing a lid-driven cavity flow, the view is 2D, the flow is turbulent, the domain spans about 1.036 by 1.002, the Reynolds number is about 10000, the reference velocity is about 0.8343, the kinematic viscosity is about 8.343e-05, colors encode velocity magnitude, the peak ...
Find the 2D fluid mechanics video of a lid-driven cavity flow, showing the moving lid dragging fluid into a large rotating vortex. Physically, the shear imposed by the sliding lid drives a primary vortex with weaker counter-rotating corner eddies. The color map represents velocity magnitude, so the brightest band follo...
cavity2d_turb_Re10200_s021__full__0
cavity2d_turb_Re10200_s021
Identify the fluid mechanics benchmark video showing a lid-driven cavity flow, the view is 2D, the flow is turbulent, the domain spans about 1.026 by 1.058, the Reynolds number is about 10200, the reference velocity is about 0.8659, the kinematic viscosity is about 8.489e-05, colors encode velocity magnitude, the peak ...
Find the 2D fluid mechanics video of a lid-driven cavity flow, showing the moving lid dragging fluid into a large rotating vortex. Physically, the shear imposed by the sliding lid drives a primary vortex with weaker counter-rotating corner eddies. The color map represents velocity magnitude, so the brightest band follo...
cavity2d_turb_Re10350_s022__full__0
cavity2d_turb_Re10350_s022
Identify the fluid mechanics benchmark video showing a lid-driven cavity flow, the view is 2D, the flow is turbulent, the domain spans about 0.9684 by 1.075, the Reynolds number is about 10350, the reference velocity is about 1.275, the kinematic viscosity is about 0.0001232, colors encode velocity magnitude, the peak ...
Find the 2D fluid mechanics video of a lid-driven cavity flow, showing the moving lid dragging fluid into a large rotating vortex. Physically, the shear imposed by the sliding lid drives a primary vortex with weaker counter-rotating corner eddies. The color map represents velocity magnitude, so the brightest band follo...
cavity2d_turb_Re10750_s009_r2__full__0
cavity2d_turb_Re10750_s009_r2
Identify the fluid mechanics benchmark video showing a lid-driven cavity flow, the view is 2D, the flow is turbulent, the domain spans about 0.9911 by 1.094, the Reynolds number is about 10750, the reference velocity is about 0.877, the kinematic viscosity is about 8.159e-05, colors encode velocity magnitude, the peak ...
Find the 2D fluid mechanics video of a lid-driven cavity flow, showing the moving lid dragging fluid into a large rotating vortex. Physically, the shear imposed by the sliding lid drives a primary vortex with weaker counter-rotating corner eddies. The color map represents velocity magnitude, so the brightest band follo...
cavity2d_turb_Re10750_s023__full__0
cavity2d_turb_Re10750_s023
Identify the fluid mechanics benchmark video showing a lid-driven cavity flow, the view is 2D, the flow is turbulent, the domain spans about 1.041 by 1.069, the Reynolds number is about 10750, the reference velocity is about 1.362, the kinematic viscosity is about 0.0001267, colors encode velocity magnitude, the peak s...
Find the 2D fluid mechanics video of a lid-driven cavity flow, showing the moving lid dragging fluid into a large rotating vortex. Physically, the shear imposed by the sliding lid drives a primary vortex with weaker counter-rotating corner eddies. The color map represents velocity magnitude, so the brightest band follo...
cavity2d_turb_Re11150_s025__full__0
cavity2d_turb_Re11150_s025
Identify the fluid mechanics benchmark video showing a lid-driven cavity flow, the view is 2D, the flow is turbulent, the domain spans about 0.9547 by 0.9636, the Reynolds number is about 11150, the reference velocity is about 1.377, the kinematic viscosity is about 0.0001235, colors encode velocity magnitude, the peak...
Find the 2D fluid mechanics video of a lid-driven cavity flow, showing the moving lid dragging fluid into a large rotating vortex. Physically, the shear imposed by the sliding lid drives a primary vortex with weaker counter-rotating corner eddies. The color map represents velocity magnitude, so the brightest band follo...
cavity2d_turb_Re11350_s036__full__0
cavity2d_turb_Re11350_s036
Identify the fluid mechanics benchmark video showing a lid-driven cavity flow, the view is 2D, the flow is turbulent, the domain spans about 1.034 by 1.004, the Reynolds number is about 11350, the reference velocity is about 0.9451, the kinematic viscosity is about 8.327e-05, colors encode velocity magnitude, the peak ...
Find the 2D fluid mechanics video of a lid-driven cavity flow, showing the moving lid dragging fluid into a large rotating vortex. Physically, the shear imposed by the sliding lid drives a primary vortex with weaker counter-rotating corner eddies. The color map represents velocity magnitude, so the brightest band follo...
cavity2d_turb_Re11400_s024__full__0
cavity2d_turb_Re11400_s024
Identify the fluid mechanics benchmark video showing a lid-driven cavity flow, the view is 2D, the flow is turbulent, the domain spans about 0.9734 by 1.084, the Reynolds number is about 11400, the reference velocity is about 0.9499, the kinematic viscosity is about 8.332e-05, colors encode velocity magnitude, the peak...
Find the 2D fluid mechanics video of a lid-driven cavity flow, showing the moving lid dragging fluid into a large rotating vortex. Physically, the shear imposed by the sliding lid drives a primary vortex with weaker counter-rotating corner eddies. The color map represents velocity magnitude, so the brightest band follo...
cavity2d_turb_Re11550_s026__full__0
cavity2d_turb_Re11550_s026
Identify the fluid mechanics benchmark video showing a lid-driven cavity flow, the view is 2D, the flow is turbulent, the domain spans about 0.933 by 1.082, the Reynolds number is about 11550, the reference velocity is about 0.7682, the kinematic viscosity is about 6.651e-05, colors encode velocity magnitude, the peak ...
Find the 2D fluid mechanics video of a lid-driven cavity flow, showing the moving lid dragging fluid into a large rotating vortex. Physically, the shear imposed by the sliding lid drives a primary vortex with weaker counter-rotating corner eddies. The color map represents velocity magnitude, so the brightest band follo...
cavity2d_turb_Re11600_s010_r2__full__0
cavity2d_turb_Re11600_s010_r2
Identify the fluid mechanics benchmark video showing a lid-driven cavity flow, the view is 2D, the flow is turbulent, the domain spans about 1.02 by 1.089, the Reynolds number is about 11600, the reference velocity is about 1.236, the kinematic viscosity is about 0.0001066, colors encode velocity magnitude, the peak sp...
Find the 2D fluid mechanics video of a lid-driven cavity flow, showing the moving lid dragging fluid into a large rotating vortex. Physically, the shear imposed by the sliding lid drives a primary vortex with weaker counter-rotating corner eddies. The color map represents velocity magnitude, so the brightest band follo...
cavity2d_turb_Re11850_s032__full__0
cavity2d_turb_Re11850_s032
Identify the fluid mechanics benchmark video showing a lid-driven cavity flow, the view is 2D, the flow is turbulent, the domain spans about 1.089 by 0.951, the Reynolds number is about 11850, the reference velocity is about 0.9859, the kinematic viscosity is about 8.32e-05, colors encode velocity magnitude, the peak s...
Find the 2D fluid mechanics video of a lid-driven cavity flow, showing the moving lid dragging fluid into a large rotating vortex. Physically, the shear imposed by the sliding lid drives a primary vortex with weaker counter-rotating corner eddies. The color map represents velocity magnitude, so the brightest band follo...
cavity2d_turb_Re12000_s027__full__0
cavity2d_turb_Re12000_s027
Identify the fluid mechanics benchmark video showing a lid-driven cavity flow, the view is 2D, the flow is turbulent, the domain spans about 0.9294 by 1.065, the Reynolds number is about 12000, the reference velocity is about 1.439, the kinematic viscosity is about 0.0001199, colors encode velocity magnitude, the peak ...
Find the 2D fluid mechanics video of a lid-driven cavity flow, showing the moving lid dragging fluid into a large rotating vortex. Physically, the shear imposed by the sliding lid drives a primary vortex with weaker counter-rotating corner eddies. The color map represents velocity magnitude, so the brightest band follo...
cavity2d_turb_Re12400_s012__full__0
cavity2d_turb_Re12400_s012
Identify the fluid mechanics benchmark video showing a lid-driven cavity flow, the view is 2D, the flow is turbulent, the domain spans about 1.064 by 1.04, the Reynolds number is about 12400, the reference velocity is about 1.034, the kinematic viscosity is about 8.337e-05, colors encode velocity magnitude, the peak sp...
Find the 2D fluid mechanics video of a lid-driven cavity flow, showing the moving lid dragging fluid into a large rotating vortex. Physically, the shear imposed by the sliding lid drives a primary vortex with weaker counter-rotating corner eddies. The color map represents velocity magnitude, so the brightest band follo...
cavity2d_turb_Re12550_s011_r2__full__0
cavity2d_turb_Re12550_s011_r2
Identify the fluid mechanics benchmark video showing a lid-driven cavity flow, the view is 2D, the flow is turbulent, the domain spans about 1.062 by 1.038, the Reynolds number is about 12550, the reference velocity is about 0.9919, the kinematic viscosity is about 7.904e-05, colors encode velocity magnitude, the peak ...
Find the 2D fluid mechanics video of a lid-driven cavity flow, showing the moving lid dragging fluid into a large rotating vortex. Physically, the shear imposed by the sliding lid drives a primary vortex with weaker counter-rotating corner eddies. The color map represents velocity magnitude, so the brightest band follo...
cavity2d_turb_Re12650_s029__full__0
cavity2d_turb_Re12650_s029
Identify the fluid mechanics benchmark video showing a lid-driven cavity flow, the view is 2D, the flow is turbulent, the domain spans about 1.046 by 1.09, the Reynolds number is about 12650, the reference velocity is about 1.219, the kinematic viscosity is about 9.638e-05, colors encode velocity magnitude, the peak sp...
Find the 2D fluid mechanics video of a lid-driven cavity flow, showing the moving lid dragging fluid into a large rotating vortex. Physically, the shear imposed by the sliding lid drives a primary vortex with weaker counter-rotating corner eddies. The color map represents velocity magnitude, so the brightest band follo...
cavity2d_turb_Re12750_s030__full__0
cavity2d_turb_Re12750_s030
Identify the fluid mechanics benchmark video showing a lid-driven cavity flow, the view is 2D, the flow is turbulent, the domain spans about 0.9331 by 1.078, the Reynolds number is about 12750, the reference velocity is about 1.1, the kinematic viscosity is about 8.626e-05, colors encode velocity magnitude, the peak sp...
Find the 2D fluid mechanics video of a lid-driven cavity flow, showing the moving lid dragging fluid into a large rotating vortex. Physically, the shear imposed by the sliding lid drives a primary vortex with weaker counter-rotating corner eddies. The color map represents velocity magnitude, so the brightest band follo...
cavity2d_turb_Re13200_s048__full__0
cavity2d_turb_Re13200_s048
Identify the fluid mechanics benchmark video showing a lid-driven cavity flow, the view is 2D, the flow is turbulent, the domain spans about 0.9621 by 0.9711, the Reynolds number is about 13200, the reference velocity is about 1.101, the kinematic viscosity is about 8.341e-05, colors encode velocity magnitude, the peak...
Find the 2D fluid mechanics video of a lid-driven cavity flow, showing the moving lid dragging fluid into a large rotating vortex. Physically, the shear imposed by the sliding lid drives a primary vortex with weaker counter-rotating corner eddies. The color map represents velocity magnitude, so the brightest band follo...
cavity2d_turb_Re13550_s000_r2__full__0
cavity2d_turb_Re13550_s000_r2
Identify the fluid mechanics benchmark video showing a lid-driven cavity flow, the view is 2D, the flow is turbulent, the domain spans about 1.043 by 1.058, the Reynolds number is about 13550, the reference velocity is about 1.129, the kinematic viscosity is about 8.335e-05, colors encode velocity magnitude, the peak s...
Find the 2D fluid mechanics video of a lid-driven cavity flow, showing the moving lid dragging fluid into a large rotating vortex. Physically, the shear imposed by the sliding lid drives a primary vortex with weaker counter-rotating corner eddies. The color map represents velocity magnitude, so the brightest band follo...
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Physics Bench Fluid Eval 700

This export mirrors the organization of gowitheflowlab/fluid-test:

  • each scenario is a separate dataset config directory;
  • each config contains train-00000-of-00001.parquet;
  • parquet columns are query_id, case_id, raw_text, parsed_text, and embedded video;
  • each case keeps only the full self-contained query row, matching the one-row-per-case format used by gowitheflowlab/physics-bench-dynamics-1900.
  • raw and parsed query text use the same user-query and normalized-query convention as gowitheflowlab/physics-bench-dynamics-1900.

Total cases: 700 Total query rows: 700

Scenario counts:

  • backwardFacingStep2d: 26 cases, 26 full-query rows
  • buoyancy2d: 56 cases, 56 full-query rows
  • cavity2d_turb: 58 cases, 58 full-query rows
  • dye2d: 100 cases, 100 full-query rows
  • flowpastcylinder2d: 56 cases, 56 full-query rows
  • flowpastsquare2d: 44 cases, 44 full-query rows
  • jetaxi: 53 cases, 53 full-query rows
  • jetaxi_turb: 47 cases, 47 full-query rows
  • lidDrivenCavity3d: 42 cases, 42 full-query rows
  • naca0012airfoil2d: 100 cases, 100 full-query rows
  • rayleighBenard2d: 44 cases, 44 full-query rows
  • suddenContraction2d: 14 cases, 14 full-query rows
  • suddenExpansion2d: 21 cases, 21 full-query rows
  • suddenExpansion2d_nn_hb: 18 cases, 18 full-query rows
  • suddenExpansion2d_nn_powerlaw: 21 cases, 21 full-query rows

All embedded videos are H.264 (avc1, yuv420p).

Query version: fluid_eval_queries_v2_dynamics_aligned_raw_parsed (5-sentence natural-language parsed_text, aligned with physics-bench-dynamics-1900).

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