Chezy Formula for Energy Slope Solution

STEP 0: Pre-Calculation Summary
Formula Used
Energy Slope = ((Mean Velocity for Varied Flow/Chézy’s Coefficients for Varied Flow)^2)/Hydraulic Radius of Channel
Sf = ((vm,R/CVF)^2)/RH
This formula uses 4 Variables
Variables Used
Energy Slope - Energy Slope is at a distance equal to the velocity head above the hydraulic gradient.
Mean Velocity for Varied Flow - (Measured in Meter per Second) - Mean velocity for Varied Flow is defined as the average velocity of a fluid at a point and over an arbitrary time T.
Chézy’s Coefficients for Varied Flow - Chézy’s Coefficients for Varied Flow is a function of the flow Reynolds Number - Re - and the relative roughness - ε/R - of the channel.
Hydraulic Radius of Channel - (Measured in Meter) - Hydraulic Radius of Channel is the ratio of the cross-sectional area of a channel or pipe in which a fluid is flowing to the wet perimeter of the conduit.
STEP 1: Convert Input(s) to Base Unit
Mean Velocity for Varied Flow: 56.2 Meter per Second --> 56.2 Meter per Second No Conversion Required
Chézy’s Coefficients for Varied Flow: 69.2 --> No Conversion Required
Hydraulic Radius of Channel: 1.6 Meter --> 1.6 Meter No Conversion Required
STEP 2: Evaluate Formula
Substituting Input Values in Formula
Sf = ((vm,R/CVF)^2)/RH --> ((56.2/69.2)^2)/1.6
Evaluating ... ...
Sf = 0.412230821277022
STEP 3: Convert Result to Output's Unit
0.412230821277022 --> No Conversion Required
FINAL ANSWER
0.412230821277022 0.412231 <-- Energy Slope
(Calculation completed in 00.004 seconds)

Credits

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National Institute of Technology Karnataka (NITK), Surathkal
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12 Integration of the Varied Flow Equation Calculators

Chezy Constant using Chezy Formula given Normal Depth of Wide Rectangular Channel
​ Go Chézy’s Coefficients for Varied Flow = sqrt(((Critical Depth of Channel/Normal Depth of Varied Flow)^3)*[g]/Bed Slope of Channel)
Chezy Formula for Critical Depth given Normal Depth of Wide Rectangular Channel
​ Go Critical Depth of Channel = (((Normal Depth of Varied Flow^3)*((Chézy’s Coefficients for Varied Flow^2)*Bed Slope of Channel))/[g])^(1/3)
Chezy Formula for Normal Depth of Wide Rectangular Channel
​ Go Normal Depth of Varied Flow = (((Critical Depth of Channel^3)*[g])/((Chézy’s Coefficients for Varied Flow^2)*Bed Slope of Channel))^(1/3)
Chezy Formula for Bed Slope given Normal Depth of Wide Rectangular Channel
​ Go Bed Slope of Channel = (((Critical Depth of Channel/Normal Depth of Varied Flow)^3)*[g]/Chézy’s Coefficients for Varied Flow^2)
Chezy Formula for Mean Velocity given Energy Slope
​ Go Mean Velocity for Varied Flow = sqrt(Energy Slope*(Chézy’s Coefficients for Varied Flow^2)*Hydraulic Radius of Channel)
Manning's Formula for Roughness Coefficient given Energy Slope
​ Go Manning’s Roughness Coefficient = (Energy Slope/(((Mean Velocity for Varied Flow)^2)/(Hydraulic Radius of Channel^(4/3))))^(1/2)
Manning's Formula for Mean Velocity given Energy Slope
​ Go Mean Velocity for Varied Flow = (Energy Slope/(((Manning’s Roughness Coefficient)^2)/(Hydraulic Radius of Channel^(4/3))))^(1/2)
Chezy's Constant using Chezy Formula given Energy Slope
​ Go Chézy’s Coefficients for Varied Flow = (((Mean Velocity for Varied Flow)^2)/(Hydraulic Radius of Channel*Energy Slope))^(1/2)
Manning's Formula for Hydraulic Radius given Energy Slope
​ Go Hydraulic Radius of Channel = (((Manning’s Roughness Coefficient*Mean Velocity for Varied Flow)^2)/Energy Slope)^(3/4)
Manning's Formula for Energy Slope
​ Go Energy Slope = ((Manning’s Roughness Coefficient*Mean Velocity for Varied Flow)^2)/(Hydraulic Radius of Channel^(4/3))
Chezy Formula for Hydraulic Radius given Energy Slope
​ Go Hydraulic Radius of Channel = ((Mean Velocity for Varied Flow/Chézy’s Coefficients for Varied Flow)^2)/Energy Slope
Chezy Formula for Energy Slope
​ Go Energy Slope = ((Mean Velocity for Varied Flow/Chézy’s Coefficients for Varied Flow)^2)/Hydraulic Radius of Channel

Chezy Formula for Energy Slope Formula

Energy Slope = ((Mean Velocity for Varied Flow/Chézy’s Coefficients for Varied Flow)^2)/Hydraulic Radius of Channel
Sf = ((vm,R/CVF)^2)/RH

What does Energy Gradient mean?

The energy gradient is equal to the height of the velocity head (the velocity of a fluid expressed in terms of the static pressure required to produce that velocity) above the hydraulic gradient – the distance water free flows downward from a height.

How to Calculate Chezy Formula for Energy Slope?

Chezy Formula for Energy Slope calculator uses Energy Slope = ((Mean Velocity for Varied Flow/Chézy’s Coefficients for Varied Flow)^2)/Hydraulic Radius of Channel to calculate the Energy Slope, The Chezy Formula for Energy Slope is defined as the formula which is used to calculate the channel energy slope in the section at any point. Energy Slope is denoted by Sf symbol.

How to calculate Chezy Formula for Energy Slope using this online calculator? To use this online calculator for Chezy Formula for Energy Slope, enter Mean Velocity for Varied Flow (vm,R), Chézy’s Coefficients for Varied Flow (CVF) & Hydraulic Radius of Channel (RH) and hit the calculate button. Here is how the Chezy Formula for Energy Slope calculation can be explained with given input values -> 0.412231 = ((56.2/69.2)^2)/1.6.

FAQ

What is Chezy Formula for Energy Slope?
The Chezy Formula for Energy Slope is defined as the formula which is used to calculate the channel energy slope in the section at any point and is represented as Sf = ((vm,R/CVF)^2)/RH or Energy Slope = ((Mean Velocity for Varied Flow/Chézy’s Coefficients for Varied Flow)^2)/Hydraulic Radius of Channel. Mean velocity for Varied Flow is defined as the average velocity of a fluid at a point and over an arbitrary time T, Chézy’s Coefficients for Varied Flow is a function of the flow Reynolds Number - Re - and the relative roughness - ε/R - of the channel & Hydraulic Radius of Channel is the ratio of the cross-sectional area of a channel or pipe in which a fluid is flowing to the wet perimeter of the conduit.
How to calculate Chezy Formula for Energy Slope?
The Chezy Formula for Energy Slope is defined as the formula which is used to calculate the channel energy slope in the section at any point is calculated using Energy Slope = ((Mean Velocity for Varied Flow/Chézy’s Coefficients for Varied Flow)^2)/Hydraulic Radius of Channel. To calculate Chezy Formula for Energy Slope, you need Mean Velocity for Varied Flow (vm,R), Chézy’s Coefficients for Varied Flow (CVF) & Hydraulic Radius of Channel (RH). With our tool, you need to enter the respective value for Mean Velocity for Varied Flow, Chézy’s Coefficients for Varied Flow & Hydraulic Radius of Channel and hit the calculate button. You can also select the units (if any) for Input(s) and the Output as well.
How many ways are there to calculate Energy Slope?
In this formula, Energy Slope uses Mean Velocity for Varied Flow, Chézy’s Coefficients for Varied Flow & Hydraulic Radius of Channel. We can use 1 other way(s) to calculate the same, which is/are as follows -
  • Energy Slope = ((Manning’s Roughness Coefficient*Mean Velocity for Varied Flow)^2)/(Hydraulic Radius of Channel^(4/3))
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