Specific Heat of Electrolyte Solution

STEP 0: Pre-Calculation Summary
Formula Used
Specific Heat Capacity of Electrolyte = Heat Absorption of Electrolyte/(Volume Flow Rate*Density of Electrolyte*(Boiling Point of Electrolyte-Ambient Air Temperature))
ce = He/(q*ρe*(θB-θo))
This formula uses 6 Variables
Variables Used
Specific Heat Capacity of Electrolyte - (Measured in Joule per Kilogram per K) - Specific Heat Capacity of electrolyte is the heat required to raise the temperature of the unit mass of a given substance by a given amount.
Heat Absorption of Electrolyte - (Measured in Watt) - Heat Absorption of Electrolyte is the Heat absorbed by the electrolyte.
Volume Flow Rate - (Measured in Cubic Meter per Second) - Volume Flow Rate is the volume of fluid that passes per unit of time.
Density of Electrolyte - (Measured in Kilogram per Cubic Meter) - The Density of Electrolyte shows the denseness of that electrolyte in a specific given area. This is taken as mass per unit volume of a given object.
Boiling Point of Electrolyte - (Measured in Kelvin) - Boiling Point of electrolyte is the temperature at which a liquid starts to boil and transforms to vapor.
Ambient Air Temperature - (Measured in Kelvin) - Ambient Air Temperature is the temperature where the ramming process starts.
STEP 1: Convert Input(s) to Base Unit
Heat Absorption of Electrolyte: 12 Kilowatt --> 12000 Watt (Check conversion here)
Volume Flow Rate: 47990.86 Cubic Millimeter per Second --> 4.799086E-05 Cubic Meter per Second (Check conversion here)
Density of Electrolyte: 997 Kilogram per Cubic Meter --> 997 Kilogram per Cubic Meter No Conversion Required
Boiling Point of Electrolyte: 368.15 Kelvin --> 368.15 Kelvin No Conversion Required
Ambient Air Temperature: 308.15 Kelvin --> 308.15 Kelvin No Conversion Required
STEP 2: Evaluate Formula
Substituting Input Values in Formula
ce = He/(q*ρe*(θBo)) --> 12000/(4.799086E-05*997*(368.15-308.15))
Evaluating ... ...
ce = 4180.00022121397
STEP 3: Convert Result to Output's Unit
4180.00022121397 Joule per Kilogram per K -->4.18000022121397 Kilojoule per Kilogram per K (Check conversion here)
FINAL ANSWER
4.18000022121397 4.18 Kilojoule per Kilogram per K <-- Specific Heat Capacity of Electrolyte
(Calculation completed in 00.004 seconds)

Credits

Created by Rajat Vishwakarma
University Institute of Technology RGPV (UIT - RGPV), Bhopal
Rajat Vishwakarma has created this Calculator and 400+ more calculators!
Verified by Vaibhav Malani
National Institute of Technology (NIT), Tiruchirapalli
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10+ Heat in Electrolyte Calculators

Ambient Temperature during ECM
Go Ambient Air Temperature = Boiling Point of Electrolyte-(Electric Current^2*Resistance of Gap Between Work and Tool)/(Density of Electrolyte*Specific Heat Capacity of Electrolyte*Maximum Volume Flow Rate)
Specific Heat of Electrolyte from Volume Flow Rate
Go Specific Heat Capacity of Electrolyte = (Electric Current^2*Resistance of Gap Between Work and Tool)/(Density of Electrolyte*Volume Flow Rate*(Boiling Point of Electrolyte-Ambient Air Temperature))
Boiling Point of Electrolyte during Electrochemical Machining of Metals
Go Boiling Point of Electrolyte = Ambient Air Temperature+(Electric Current^2*Resistance of Gap Between Work and Tool)/(Density of Electrolyte*Specific Heat Capacity of Electrolyte*Volume Flow Rate)
Ambient Temperature
Go Ambient Air Temperature = Boiling Point of Electrolyte-Heat Absorption of Electrolyte/(Maximum Volume Flow Rate*Density of Electrolyte*Specific Heat Capacity of Electrolyte)
Flow Rate of Electrolyte from Heat Absorbed Electrolyte
Go Volume Flow Rate = Heat Absorption of Electrolyte/(Density of Electrolyte*Specific Heat Capacity of Electrolyte*(Boiling Point of Electrolyte-Ambient Air Temperature))
Density of Electrolyte from Heat Absorbed Electrolyte
Go Density of Electrolyte = Heat Absorption of Electrolyte/(Volume Flow Rate*Specific Heat Capacity of Electrolyte*(Boiling Point of Electrolyte-Ambient Air Temperature))
Specific Heat of Electrolyte
Go Specific Heat Capacity of Electrolyte = Heat Absorption of Electrolyte/(Volume Flow Rate*Density of Electrolyte*(Boiling Point of Electrolyte-Ambient Air Temperature))
Heat Absorbed by Electrolyte
Go Heat Absorption of Electrolyte = Volume Flow Rate*Density of Electrolyte*Specific Heat Capacity of Electrolyte*(Boiling Point of Electrolyte-Ambient Air Temperature)
Boiling Point of Electrolyte
Go Boiling Point of Electrolyte = Ambient Air Temperature+Heat Absorption of Electrolyte/(Volume Flow Rate*Density of Electrolyte*Specific Heat Capacity of Electrolyte)
Supply Voltage given Specific Resistivity of Electrolyte
Go Supply Voltage = Specific Resistance of The Electrolyte*Gap Between Tool and Work Surface*Electric Current/Area of Penetration

Specific Heat of Electrolyte Formula

Specific Heat Capacity of Electrolyte = Heat Absorption of Electrolyte/(Volume Flow Rate*Density of Electrolyte*(Boiling Point of Electrolyte-Ambient Air Temperature))
ce = He/(q*ρe*(θB-θo))

What is Faraday's I law of electrolysis ?

The first law of Faraday’s electrolysis states that the chemical change produced during electrolysis is proportional to the current passed and the electrochemical equivalence of the anode material.

How to Calculate Specific Heat of Electrolyte?

Specific Heat of Electrolyte calculator uses Specific Heat Capacity of Electrolyte = Heat Absorption of Electrolyte/(Volume Flow Rate*Density of Electrolyte*(Boiling Point of Electrolyte-Ambient Air Temperature)) to calculate the Specific Heat Capacity of Electrolyte, The Specific heat of electrolyte formula is defined as the heat required to raise the temperature of unit mass electrolyte by unit. Specific Heat Capacity of Electrolyte is denoted by ce symbol.

How to calculate Specific Heat of Electrolyte using this online calculator? To use this online calculator for Specific Heat of Electrolyte, enter Heat Absorption of Electrolyte (He), Volume Flow Rate (q), Density of Electrolyte e), Boiling Point of Electrolyte B) & Ambient Air Temperature o) and hit the calculate button. Here is how the Specific Heat of Electrolyte calculation can be explained with given input values -> 4.187929 = 12000/(4.799086E-05*997*(368.15-308.15)).

FAQ

What is Specific Heat of Electrolyte?
The Specific heat of electrolyte formula is defined as the heat required to raise the temperature of unit mass electrolyte by unit and is represented as ce = He/(q*ρe*(θBo)) or Specific Heat Capacity of Electrolyte = Heat Absorption of Electrolyte/(Volume Flow Rate*Density of Electrolyte*(Boiling Point of Electrolyte-Ambient Air Temperature)). Heat Absorption of Electrolyte is the Heat absorbed by the electrolyte, Volume Flow Rate is the volume of fluid that passes per unit of time, The Density of Electrolyte shows the denseness of that electrolyte in a specific given area. This is taken as mass per unit volume of a given object, Boiling Point of electrolyte is the temperature at which a liquid starts to boil and transforms to vapor & Ambient Air Temperature is the temperature where the ramming process starts.
How to calculate Specific Heat of Electrolyte?
The Specific heat of electrolyte formula is defined as the heat required to raise the temperature of unit mass electrolyte by unit is calculated using Specific Heat Capacity of Electrolyte = Heat Absorption of Electrolyte/(Volume Flow Rate*Density of Electrolyte*(Boiling Point of Electrolyte-Ambient Air Temperature)). To calculate Specific Heat of Electrolyte, you need Heat Absorption of Electrolyte (He), Volume Flow Rate (q), Density of Electrolyte e), Boiling Point of Electrolyte B) & Ambient Air Temperature o). With our tool, you need to enter the respective value for Heat Absorption of Electrolyte, Volume Flow Rate, Density of Electrolyte, Boiling Point of Electrolyte & Ambient Air Temperature 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 Specific Heat Capacity of Electrolyte?
In this formula, Specific Heat Capacity of Electrolyte uses Heat Absorption of Electrolyte, Volume Flow Rate, Density of Electrolyte, Boiling Point of Electrolyte & Ambient Air Temperature. We can use 1 other way(s) to calculate the same, which is/are as follows -
  • Specific Heat Capacity of Electrolyte = (Electric Current^2*Resistance of Gap Between Work and Tool)/(Density of Electrolyte*Volume Flow Rate*(Boiling Point of Electrolyte-Ambient Air Temperature))
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