Internal Energy using Equipartition Energy Solution

STEP 0: Pre-Calculation Summary
Formula Used
Internal Energy using Equipartition Energy = 1/2*[BoltZ]*Temperature of Gas
Uequi = 1/2*[BoltZ]*Tg
This formula uses 1 Constants, 2 Variables
Constants Used
[BoltZ] - Boltzmann constant Value Taken As 1.38064852E-23
Variables Used
Internal Energy using Equipartition Energy - (Measured in Joule) - Internal Energy using Equipartition Energy means that in thermal equilibrium, any degree of freedom which appears only quadratically in the energy has an average energy of 1⁄2kT .
Temperature of Gas - (Measured in Kelvin) - The temperature of Gas is the measure of hotness or coldness of a gas.
STEP 1: Convert Input(s) to Base Unit
Temperature of Gas: 45 Kelvin --> 45 Kelvin No Conversion Required
STEP 2: Evaluate Formula
Substituting Input Values in Formula
Uequi = 1/2*[BoltZ]*Tg --> 1/2*[BoltZ]*45
Evaluating ... ...
Uequi = 3.10645917E-22
STEP 3: Convert Result to Output's Unit
3.10645917E-22 Joule --> No Conversion Required
FINAL ANSWER
3.10645917E-22 3.1E-22 Joule <-- Internal Energy using Equipartition Energy
(Calculation completed in 00.004 seconds)

Credits

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University of Calcutta (CU), Kolkata
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25 First Order Thermodynamics Calculators

Isothermal Compression
​ Go Work Done in Isothermal Compression = -Number of Moles given KE*8.314*Low Temperature*ln(Volume Initially/Volume finally)
Isothermal Expansion
​ Go Work Done in Isothermal Expansion = -Number of Moles given KE*8.314*High Temperature*ln(Volume finally/Volume Initially)
Work Done by System in Isothermal Process
​ Go Work Done by the System = -Number of Moles given KE*8.314*Temperature given RP*ln(Volume finally/Volume Initially)
Adiabatic Compression
​ Go Work Done by the System = 8.314*(Low Temperature-High Temperature)/(Adiabatic Coefficient-1)
Adiabatic Expansion
​ Go Work Done by the System = 8.314*(High Temperature-Low Temperature)/(Adiabatic Coefficient-1)
Coefficient of Performance of Refrigerator given Energy
​ Go Coefficient of Performance of Refrigerator = Sink Energy/(System Energy-Sink Energy)
Coefficient of Performance for Refrigeration
​ Go Coefficient of Performance = Low Temperature/(High Temperature-Low Temperature)
Change in Internal Energy given Cv
​ Go Change in Internal Energy of the System = Heat Capacity at Constant Volume*Change in Temperature
Change in Enthalpy given Cp
​ Go Change in Enthalpy in the System = Heat Capacity at Constant Pressure*Change in Temperature
Specific Heat Capacity in Thermodynamics
​ Go Specific Heat Capacity in Thermodynamics = Change in Heat Energy/Mass of the Substance
Internal Energy using Equipartition Energy
​ Go Internal Energy using Equipartition Energy = 1/2*[BoltZ]*Temperature of Gas
Heat Energy given Internal Energy
​ Go Change in Heat Energy = Internal Energy of the System+(Work Done given IE)
Internal Energy of System
​ Go Internal Energy of the System = Change in Heat Energy-(Work Done given IE)
Heat Capacity in Thermodynamics
​ Go Heat Capacity of the System = Change in Heat Energy/Change in Temperature
Heat Energy given Heat Capacity
​ Go Change in Heat Energy = Heat Capacity of the System*Change in Temperature
Work Done given Internal Energy
​ Go Work Done given IE = Change in Heat Energy-Internal Energy of the System
Internal Energy of Triatomic Non Linear System
​ Go Internal Energy of Polyatomic Gases = 6/2*[BoltZ]*Temperature given U
Internal Energy of Triatomic Linear System
​ Go Internal Energy of Polyatomic Gases = 7/2*[BoltZ]*Temperature given U
Internal Energy of Monoatomic System
​ Go Internal Energy of Polyatomic Gases = 3/2*[BoltZ]*Temperature given U
Internal Energy of Diatomic System
​ Go Internal Energy of Polyatomic Gases = 5/2*[BoltZ]*Temperature given U
Efficiency of Carnot Engine
​ Go Efficiency of Carnot Engine = 1-(Low Temperature/High Temperature)
Work Done by System in Adiabatic Process
​ Go Work Done by the System = External Pressure*Small Volume Change
Efficiency of Carnot Engine given Energy
​ Go Efficiency of Carnot Engine = 1-(Sink Energy/System Energy)
Work Done in Irreversible Process
​ Go Irreversible Work Done = -External Pressure*Volume change
Efficiency of Heat Engine
​ Go Efficiency of Heat Engine = (Heat Input/Heat Output)*100

Internal Energy using Equipartition Energy Formula

Internal Energy using Equipartition Energy = 1/2*[BoltZ]*Temperature of Gas
Uequi = 1/2*[BoltZ]*Tg

What is internal energy example?

Examples of internal energy are the the temperature and state of a substance. For example the internal energy of water depends on whether it is in the solid, liquid or gas state and it's temperature. Liquid water has more internal energy than solid copper at the same temperature due to its state.

How to Calculate Internal Energy using Equipartition Energy?

Internal Energy using Equipartition Energy calculator uses Internal Energy using Equipartition Energy = 1/2*[BoltZ]*Temperature of Gas to calculate the Internal Energy using Equipartition Energy, Internal Energy using Equipartition Energy means that in thermal equilibrium, any degree of freedom (such as a component of the position or velocity of a particle) which appears only quadratically in the energy has an average energy of 1⁄2kT and therefore contributes 1⁄2k to the system's heat capacity. Internal Energy using Equipartition Energy is denoted by Uequi symbol.

How to calculate Internal Energy using Equipartition Energy using this online calculator? To use this online calculator for Internal Energy using Equipartition Energy, enter Temperature of Gas (Tg) and hit the calculate button. Here is how the Internal Energy using Equipartition Energy calculation can be explained with given input values -> 3.1E-22 = 1/2*[BoltZ]*45.

FAQ

What is Internal Energy using Equipartition Energy?
Internal Energy using Equipartition Energy means that in thermal equilibrium, any degree of freedom (such as a component of the position or velocity of a particle) which appears only quadratically in the energy has an average energy of 1⁄2kT and therefore contributes 1⁄2k to the system's heat capacity and is represented as Uequi = 1/2*[BoltZ]*Tg or Internal Energy using Equipartition Energy = 1/2*[BoltZ]*Temperature of Gas. The temperature of Gas is the measure of hotness or coldness of a gas.
How to calculate Internal Energy using Equipartition Energy?
Internal Energy using Equipartition Energy means that in thermal equilibrium, any degree of freedom (such as a component of the position or velocity of a particle) which appears only quadratically in the energy has an average energy of 1⁄2kT and therefore contributes 1⁄2k to the system's heat capacity is calculated using Internal Energy using Equipartition Energy = 1/2*[BoltZ]*Temperature of Gas. To calculate Internal Energy using Equipartition Energy, you need Temperature of Gas (Tg). With our tool, you need to enter the respective value for Temperature of Gas and hit the calculate button. You can also select the units (if any) for Input(s) and the Output as well.
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