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Specific Heat Capacity Calculator

Calculate heat needed to change a substance's temperature.

Inputs

Results

Heat required334,880J
Heat required334.88kJ
Heat required80.03824kcal
Heat required0.09302222kWh

Chart

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How to use the specific heat capacity calculator

Calculate heat needed to change a substance's temperature. Enter mass, specific heat, initial temperature, final temperature in the fields above; the heat required, heat required, heat required, heat required are computed instantly and plotted on the chart so you can see how the answer changes.

Formula

Heat required (J) = m × c × (T2-T1)
Heat required (kJ) = [Heat required] / 1000
Heat required (kcal) = [Heat required] / 4184
Heat required (kWh) = [Heat required] / 3.6e6

Variables

  • m — Mass (kg)
  • c — Specific heat (J/(kg·K))
  • T1 — Initial temperature (°C)
  • T2 — Final temperature (°C)

Worked example

With mass = 1 kg, specific heat = Water, initial temperature = 20 °C, final temperature = 100 °C, the calculator gives heat required ≈ 334,880 J; heat required ≈ 334.88 kJ; heat required ≈ 80.03824 kcal; heat required ≈ 0.09302222 kWh.

Frequently asked questions

What is the formula for the specific heat capacity calculation?

Heat required (J) = m × c × (T2-T1). Heat required (kJ) = [Heat required] / 1000. Heat required (kcal) = [Heat required] / 4184. Heat required (kWh) = [Heat required] / 3.6e6. Here m is mass (kg), c is specific heat (J/(kg·K)), T1 is initial temperature (°C), T2 is final temperature (°C).

What inputs do I need for the specific heat capacity calculator?

You need mass in kg, specific heat in J/(kg·K), initial temperature in °C, final temperature in °C. Each field is pre-filled with a typical example so you can see how the result responds as you edit the numbers.

How do I use this calculator?

Type values into the input fields. Results and the chart update instantly. Use Reset to restore the example values, Copy results to paste them elsewhere, or Share to copy a link that preserves your inputs.

Is the result exact?

Calculations use standard formulas and double-precision arithmetic, then display about seven significant figures. Real-world measurements carry uncertainty, so treat results as estimates unless your inputs are exact.

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