Flow Work given Density Solution

STEP 0: Pre-Calculation Summary
Formula Used
Flow Work = Pressure/Density of Liquid
FW = P/ρL
This formula uses 3 Variables
Variables Used
Flow Work - (Measured in Joule per Kilogram) - Flow Work is the energy necessary to cause flow in an open system.
Pressure - (Measured in Pascal) - Pressure is the force applied perpendicular to the surface of an object per unit area over which that force is distributed.
Density of Liquid - (Measured in Kilogram per Cubic Meter) - The density of Liquid is the mass of a unit volume of liquid.
STEP 1: Convert Input(s) to Base Unit
Pressure: 750 Pascal --> 750 Pascal No Conversion Required
Density of Liquid: 1000 Kilogram per Cubic Meter --> 1000 Kilogram per Cubic Meter No Conversion Required
STEP 2: Evaluate Formula
Substituting Input Values in Formula
FW = P/ρL --> 750/1000
Evaluating ... ...
FW = 0.75
STEP 3: Convert Result to Output's Unit
0.75 Joule per Kilogram --> No Conversion Required
FINAL ANSWER
0.75 Joule per Kilogram <-- Flow Work
(Calculation completed in 00.004 seconds)

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University School of Chemical Technology-USCT (GGSIPU), New Delhi
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25 Properties of Fluids Calculators

Water Flux Based on Solution Diffusion Model
​ Go Mass Water Flux = (Membrane Water Diffusivity*Membrane Water Concentration*Partial Molar Volume*(Membrane Pressure Drop-Osmotic Pressure))/([R]*Temperature*Membrane Layer Thickness)
Torque on Cylinder given Angular Velocity and Radius of Inner Cylinder
​ Go Torque = (Dynamic Viscosity*2*pi*(Radius of Inner Cylinder^3)*Angular Velocity*Length of Cylinder)/(Thickness of Fluid Layer)
Height of Capillary Rise in Capillary Tube
​ Go Height of Capillary Rise = (2*Surface Tension*(cos(Contact Angle)))/(Density*[g]*Radius of Capillary Tube)
Torque on Cylinder given Radius, Length and Viscosity
​ Go Torque = (Dynamic Viscosity*4*(pi^2)*(Radius of Inner Cylinder^3)*Revolutions per Second*Length of Cylinder)/(Thickness of Fluid Layer)
Weight of Liquid Column in Capillary Tube
​ Go Weight of Liquid Column in Capillary = Density*[g]*pi*(Radius of Capillary Tube^2)*Height of Capillary Rise
Wetted Surface Area
​ Go Wetted Surface Area = 2*pi*Radius of Inner Cylinder*Length of Cylinder
Enthalpy given Flow Work
​ Go Enthalpy = Internal Energy+(Pressure/Density of Liquid)
Enthalpy given Specific Volume
​ Go Enthalpy = Internal Energy+(Pressure*Specific Volume)
Tangential Velocity given Angular Velocity
​ Go Tangential Velocity of Cylinder = Angular Velocity*Radius of Inner Cylinder
Angular Velocity given Revolution Per Unit Time
​ Go Angular Velocity = 2*pi*Revolutions per Second
Mach Number of Compressible Fluid Flow
​ Go Mach Number = Velocity of Fluid/Speed of Sound
Specific Gravity of Fluid given Density of Water
​ Go Specific Gravity = Density/Density of Water
Relative Density of Fluid
​ Go Relative Density = Density/Density of Water
Specific Total Energy
​ Go Specific Total Energy = Total Energy/Mass
Flow Work given Density
​ Go Flow Work = Pressure/Density of Liquid
Flow Work given Specific Volume
​ Go Flow Work = Pressure*Specific Volume
Shear Stress Acting on Fluid Layer
​ Go Shear Stress = Shear Force/Area
Shear Force given Shear Stress
​ Go Shear Force = Shear Stress*Area
Weight Density given Density
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Specific Weight of Substance
​ Go Specific Weight = Density*[g]
Specific Volume of Fluid given Mass
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Coefficient of Volume Expansion for Ideal Gas
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Volume Expansivity for Ideal Gas
​ Go Coefficient of Volume Expansion = 1/(Absolute Temperature)
Density of Fluid
​ Go Density = Mass/Volume
Specific Volume given Density
​ Go Specific Volume = 1/Density

Flow Work given Density Formula

Flow Work = Pressure/Density of Liquid
FW = P/ρL

What is Fluid Mechanics?

Fluid dynamics is “the branch of applied science that is concerned with the movement of liquids and gases”. It involves a wide range of applications such as calculating force & moments, determining the mass flow rate of petroleum through pipelines, predicting weather patterns, understanding nebulae in interstellar space, and modelling fission weapon detonation.

What are the Applications of Fluid Dynamics?

Fluid Dynamics can be applied in the following ways: Fluid dynamics is used to calculate the forces acting upon the aeroplane. It is used to find the flow rates of material such as petroleum from pipelines. It can also be used in traffic engineering (traffic treated as continuous liquid flow).

How to Calculate Flow Work given Density?

Flow Work given Density calculator uses Flow Work = Pressure/Density of Liquid to calculate the Flow Work, The Flow Work given Density formula is defined as the ratio of pressure to density. Work is needed to push the fluid into or out of the boundaries of a control volume if mass flow is involved. This work is called the flow work (flow energy). Flow work is necessary for maintaining a continuous flow through a control volume. Flow Work is denoted by FW symbol.

How to calculate Flow Work given Density using this online calculator? To use this online calculator for Flow Work given Density, enter Pressure (P) & Density of Liquid L) and hit the calculate button. Here is how the Flow Work given Density calculation can be explained with given input values -> 0.75 = 750/1000.

FAQ

What is Flow Work given Density?
The Flow Work given Density formula is defined as the ratio of pressure to density. Work is needed to push the fluid into or out of the boundaries of a control volume if mass flow is involved. This work is called the flow work (flow energy). Flow work is necessary for maintaining a continuous flow through a control volume and is represented as FW = P/ρL or Flow Work = Pressure/Density of Liquid. Pressure is the force applied perpendicular to the surface of an object per unit area over which that force is distributed & The density of Liquid is the mass of a unit volume of liquid.
How to calculate Flow Work given Density?
The Flow Work given Density formula is defined as the ratio of pressure to density. Work is needed to push the fluid into or out of the boundaries of a control volume if mass flow is involved. This work is called the flow work (flow energy). Flow work is necessary for maintaining a continuous flow through a control volume is calculated using Flow Work = Pressure/Density of Liquid. To calculate Flow Work given Density, you need Pressure (P) & Density of Liquid L). With our tool, you need to enter the respective value for Pressure & Density of Liquid 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 Flow Work?
In this formula, Flow Work uses Pressure & Density of Liquid. We can use 1 other way(s) to calculate the same, which is/are as follows -
  • Flow Work = Pressure*Specific Volume
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