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Calorie (IT) per Second per Square Centimeter [cal(IT)/(s·cm²)]


The unit calorie (IT) per second per square centimeter, written as cal(IT)/(s·cm²), measures heat flux density or power per unit area. It represents the amount of International Table calories (1 cal(IT) = 4.1868 J) transferred through 1 cm² of surface every second.


This unit is often used in laboratory-scale heat transfer experiments, solar energy studies, and radiation measurements, especially when dealing with small surface areas where the calorie is convenient. Applications include:



  • Measuring solar energy intensity on small surfaces



  • Calorimetry experiments on samples



  • Laser or focused radiation studies



The heat flux can be expressed mathematically as:


q=QAtq = \frac{Q}{A \cdot t}

where q is heat flux in cal(IT)/(s·cm²), Q is energy in calories, A is area in cm², and t is time in seconds.


Conversion to SI units:


1cal(IT)/(s\cdotpcm²)41868W/m²1 \, \text{cal(IT)/(s·cm²)} \approx 41868 \, \text{W/m²}

While W/m² is the SI standard, cal(IT)/(s·cm²) is convenient for small-area, high-intensity heat measurements in laboratory or historical contexts.


CHU/Hour/Square Foot


The unit CHU/hour/square foot is used to measure Cooling Heat Units per hour per square foot, commonly applied in air conditioning and refrigeration calculations. It indicates the amount of cooling energy, in CHUs, that passes through or is required for one square foot of a surface area over an hour. This measurement helps engineers and designers assess cooling loads, select appropriate air conditioning systems, and ensure thermal comfort in buildings. A higher CHU/hour/square foot value shows greater heat gain, meaning more cooling is needed, while a lower value indicates better insulation or lower cooling requirements. It is essential in designing energy-efficient HVAC systems and optimizing equipment sizing, helping reduce operational costs and maintain desired indoor temperatures. By using CHU/hour/square foot calculations, building designers can balance comfort, energy efficiency, and sustainability effectively.



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