Convert Joules per Gram per °C to Kilogram-force Meters per Kilogram per Kelvin
Joule per Gram per °C (J/(g·°C)) to Kilogram-force Meter per Kilogram per Kelvin (kgf·m/(kg·K)) specific heat capacity conversion — enter any value below to get an instant result, or use the table for common values.
Results from this calculator are estimates provided for general informational purposes only, based on formulas, rates, and standards commonly accepted as of 2026. Figures may differ slightly from other calculators or professional sources due to rounding methods, differing assumptions, or regional regulations, and rules may change over time. Always consult a qualified professional — such as a financial advisor, healthcare provider, or other relevant specialist — before making decisions based on these results.
Result
1 J/(g·°C) = 101.97162 kgf·m/(kg·K)
1 Joule per Gram per °C = 101.97162 Kilogram-force Meters per Kilogram per Kelvin
1 Kilogram-force Meter per Kilogram per Kelvin = 0.00980665 Joules per Gram per °C
1 J/(g·°C) in every supported unit
Conversion chart: Joule per Gram per °C to Kilogram-force Meters per Kilogram per Kelvin
Conversion table
| Joule per Gram per °C (J/(g·°C)) | Kilogram-force Meter per Kilogram per Kelvin (kgf·m/(kg·K)) |
|---|---|
| 0.01 J/(g·°C) | 1.0197162 kgf·m/(kg·K) |
| 0.1 J/(g·°C) | 10.197162 kgf·m/(kg·K) |
| 1 J/(g·°C) | 101.97162 kgf·m/(kg·K) |
| 2 J/(g·°C) | 203.94324 kgf·m/(kg·K) |
| 3 J/(g·°C) | 305.91486 kgf·m/(kg·K) |
| 5 J/(g·°C) | 509.85811 kgf·m/(kg·K) |
| 10 J/(g·°C) | 1019.7162 kgf·m/(kg·K) |
| 20 J/(g·°C) | 2039.4324 kgf·m/(kg·K) |
| 50 J/(g·°C) | 5098.5811 kgf·m/(kg·K) |
| 100 J/(g·°C) | 10197.162 kgf·m/(kg·K) |
| 1000 J/(g·°C) | 101971.62 kgf·m/(kg·K) |
Joule per Gram per °C (J/(g·°C))
Definition: A finer-scale metric unit expressing energy needed per gram (rather than kilogram) of substance per degree Celsius — numerically identical to kilojoules per kilogram per kelvin.
History: A natural gram-scale variant of the SI unit, convenient for laboratory-scale calorimetry where sample masses are typically grams rather than kilograms.
Current use: Common in chemistry and materials science laboratory work, where reaction and material samples are weighed in grams.
Kilogram-force Meter per Kilogram per Kelvin (kgf·m/(kg·K))
Definition: A mechanical (rather than thermal) energy unit applied to heat capacity — kilogram-force meters of mechanical work equivalent per kilogram per kelvin, tying heat energy to the gravitational force unit.
History: Rooted in the older "technical" or gravitational metric unit system, where the kilogram-force (the weight of one kilogram under standard gravity) served as the base force unit before SI's kilogram-mass-only convention became universal.
Current use: Now largely obsolete, occasionally encountered in older European mechanical and thermodynamic engineering references from before SI's full adoption.
Supported Units
| Unit | Symbol | In J/(kg·K) |
|---|---|---|
| Joule per Kilogram per Kelvin | J/(kg·K) | 1 J/(kg·K) |
| Kilojoule per Kilogram per Kelvin | kJ/(kg·K) | 1000 J/(kg·K) |
| Joule per Gram per °C | J/(g·°C) | 1000 J/(kg·K) |
| Calorie (IT) per Gram per °C | cal/(g·°C) | 4186.8 J/(kg·K) |
| Kilocalorie (IT) per Kilogram per °C | kcal/(kg·°C) | 4186.8 J/(kg·K) |
| Btu (IT) per Pound per °F | Btu/(lb·°F) | 4186.8 J/(kg·K) |
| Btu (IT) per Pound per °C | Btu/(lb·°C) | 2326 J/(kg·K) |
| Kilogram-force Meter per Kilogram per Kelvin | kgf·m/(kg·K) | 9.80665 J/(kg·K) |
| Pound-force Foot per Pound per °R | lbf·ft/(lb·°R) | 5.3803205 J/(kg·K) |
About These Parameters
- Value
- The specific heat capacity value you want to convert, expressed in the "From" unit. Accepts decimals.
- From Unit
- The unit your input value is currently measured in — a chemistry reference's cal/(g·°C), or a US engineering datasheet's Btu/(lb·°F).
- To Unit
- The unit you want the result converted into. Use the swap button to flip From and To instantly.
How Specific Heat Capacity Conversion Works
The Formula
Every unit here is defined by a fixed multiplier relative to joules per kilogram per kelvin. To convert a value from one unit to another:
result = value × (factor of "From" unit ÷ factor of "To" unit)
For Joule per Gram per °C → Kilogram-force Meter per Kilogram per Kelvin: multiply by 101.97162. For example, 1 J/(g·°C) × 101.97162 = 101.97162 kgf·m/(kg·K).
Q = mcΔT
Specific heat capacity (c) is the key figure in the fundamental heat-energy equation Q = mcΔT — the heat energy Q needed equals mass (m) times specific heat capacity (c) times the temperature change (ΔT). This is the formula behind everything from calculating how much energy it takes to boil a kettle of water to sizing an industrial heat exchanger.
Why Water Is the Reference Point
Water has an unusually high specific heat capacity (about 4,186 J/(kg·K), or almost exactly 1 cal/(g·°C) by the calorie's original definition) compared to most other everyday materials — metals typically sit between 100 and 900 J/(kg·K). This is why large bodies of water moderate coastal climates, why water is used as a coolant in engines and power plants, and why the calorie and Btu, both originally water-based reference units, come out so close to a value of 1 on this page's water-referenced units.
Example
A specific heat capacity of 1 J/(g·°C) equals 101.97162 kgf·m/(kg·K). For scale, water's specific heat capacity is about 4,186 J/(kg·K) (1 cal/(g·°C)), while aluminum's is about 897 J/(kg·K) — meaning it takes roughly 4.7 times more energy to heat a kilogram of water by one degree than the same mass of aluminum.
Frequently Asked Questions
How many Kilogram-force Meters per Kilogram per Kelvin are in 1 Joule per Gram per °C?
1 Joule per Gram per °C (J/(g·°C)) equals exactly 101.97162 Kilogram-force Meters per Kilogram per Kelvin (kgf·m/(kg·K)).
Why is water's specific heat capacity almost exactly 1 cal/(g·°C)?
It's not a coincidence — the calorie was originally DEFINED in the 19th century as the energy needed to raise one gram of water by one degree Celsius. The modern International Table calorie is now fixed to a precise joule value rather than redefined by experiment each time, which is why the figure comes out extremely close to, but not perfectly, 1.
What's the difference between specific heat capacity and heat capacity?
Specific heat capacity is a per-unit-mass property of a substance (energy per kg per degree), independent of how much of the substance you have. Heat capacity (without "specific") is the total energy needed to heat a particular object or quantity by one degree, found by multiplying specific heat capacity by the actual mass involved.
How accurate are these conversions?
Every conversion factor used here is the exact, internationally recognized relationship between the underlying energy, mass, and temperature units (e.g. 1 cal (IT) = exactly 4.1868 joules) — results are limited only by floating-point display precision, not by rounded conversion constants.