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Specific Heat Of Fluid In Storage Type Heat Exchanger Calculator

Formula Used:

\[ c = \frac{hConv \times SA \times x}{E \times m} \]

W/m²·K
m
kg/s

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1. What is Specific Heat of Fluid?

Specific heat of fluid is the amount of heat required to increase the temperature of the fluid by one degree. It is a crucial thermodynamic property in heat exchanger design and thermal analysis.

2. How Does the Calculator Work?

The calculator uses the formula:

\[ c = \frac{hConv \times SA \times x}{E \times m} \]

Where:

Explanation: This formula calculates the specific heat capacity of fluid in storage type heat exchangers based on convective heat transfer parameters and geometric properties.

3. Importance of Specific Heat Calculation

Details: Accurate specific heat calculation is essential for designing efficient heat exchangers, predicting thermal performance, and optimizing energy transfer in thermal systems.

4. Using the Calculator

Tips: Enter all required parameters with appropriate units. Ensure all values are positive and within reasonable physical limits for accurate results.

5. Frequently Asked Questions (FAQ)

Q1: What is the typical range of specific heat values for common fluids?
A: Water has a specific heat of about 4186 J/kg·K, while oils range from 1670-2100 J/kg·K, and air is approximately 1005 J/kg·K.

Q2: How does location factor affect the specific heat calculation?
A: Location factor accounts for all factors that influence heat exchanger performance at a specific location, including environmental conditions and installation parameters.

Q3: Why is distance from point to YY axis important in this calculation?
A: This distance parameter helps account for geometric variations and stress distribution in the heat exchanger design.

Q4: Can this calculator be used for all types of fluids?
A: Yes, the formula is applicable to various fluids, but the results should be interpreted considering the fluid's physical properties and operating conditions.

Q5: How accurate is this calculation method?
A: The accuracy depends on the precision of input parameters and how well the location factor represents actual operating conditions.

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