Faraday Electrolysis Calculator
Faraday Electrolysis Calculator — calculate faraday electrolysis using standard chemistry formulas. Worked example with units.
A thermochemistry calculator computes heat transfer (q), enthalpy changes (ΔH), and calorimetry results for physical and chemical processes. It covers specific heat capacity calculations (how much energy heats a substance), calorimetry (measuring heat released or absorbed in reactions), Hess's Law (combining enthalpy changes for multi-step reactions), and standard enthalpy of formation calculations. Thermochemistry underpins energy engineering, food calorie science, materials processing, and chemical reaction design.
Used in AP and college chemistry courses, materials science, chemical engineering, food science, and environmental energy accounting.
- For heat capacity: enter mass, specific heat capacity (c), and temperature change (ΔT) — the calculator returns heat transferred (q = mcΔT).
- For calorimetry: enter the calorimeter constant, mass of solution, temperature change, and volume to find the heat of reaction.
- For enthalpy of combustion: enter the compound and the calculator uses standard formation enthalpies (Hess's Law): ΔH_rxn = Σ(ΔHf products) − Σ(ΔHf reactants).
- Check sign convention: negative ΔH means exothermic (releases heat); positive ΔH means endothermic (absorbs heat).
Thermochemistry formulas
Heat transfer: q = m × c × ΔT (mass × specific heat × temperature change)
Hess's Law: ΔH_rxn = Σ ΔHf(products) − Σ ΔHf(reactants)
Bond enthalpy approximation: ΔH_rxn ≈ Σ(bonds broken) − Σ(bonds formed)
Gibbs free energy: ΔG = ΔH − TΔS (spontaneous if ΔG < 0)
Standard specific heat capacities (c): Water = 4.184 J/g·°C; Iron = 0.449; Aluminium = 0.897; Copper = 0.385 J/g·°C
Interpreting thermochemistry results
Exothermic vs endothermic reactions
Exothermic (ΔH < 0): releases energy — combustion, neutralisation, condensation, solidification. Endothermic (ΔH > 0): absorbs energy — photosynthesis, melting, evaporation, dissolution of ammonium nitrate. Energy density benchmarks: petrol ≈ 44 MJ/kg; natural gas ≈ 55 MJ/kg; lithium-ion battery ≈ 0.72 MJ/kg; carbohydrates ≈ 17 MJ/kg; fat ≈ 38 MJ/kg (explaining why dietary fat carries more than twice the calories per gram as carbohydrate).
Chemistry tips and best practices
- Use consistent units throughout — joules and kilojoules are often mixed in published enthalpy data; check whether ΔHf values are in kJ/mol or J/mol.
- The specific heat of liquid water (4.184 J/g·°C) is exceptionally high — this is why water is an excellent heat sink and why oceans moderate climate.
- Calorimetry assumes all heat is transferred to/from the solution — real calorimeters have heat losses; use a calorimeter constant (C_cal) to correct.
- Sign convention consistency: if q_reaction is negative (exothermic), q_solution is positive (solution heats up); always use q_reaction = −q_solution.
- The combustion of methane: CH₄ + 2O₂ → CO₂ + 2H₂O, ΔH = −890 kJ/mol — burning 1 mole (16 g) of natural gas releases 890 kJ of heat.
- One food Calorie (kcal) = 4,184 J — burning 1 gram of carbohydrate releases ~4 kcal; 1 gram of fat releases ~9 kcal; 1 gram of protein releases ~4 kcal.
- The enthalpy of vaporisation of water is 2,257 kJ/kg at 100°C — this is why sweating is such an efficient cooling mechanism; evaporating just 1 gram of sweat removes 2.26 kJ of body heat.
Common mistakes to avoid
- Forgetting to include all reactants and products in Hess's Law calculations — every species in the balanced equation must be accounted for.
- Using the wrong specific heat — the specific heat of ice (2.09 J/g·°C) and steam (2.01 J/g·°C) differ from liquid water (4.184 J/g·°C); use the correct phase.
- Confusing enthalpy (ΔH) with entropy (ΔS) or Gibbs free energy (ΔG) — a reaction can be exothermic yet non-spontaneous if entropy decreases significantly.
Thermochemistry calculations are based on standard state values and ideal conditions. Industrial process design, safety calculations for exothermic reactions, and calorific value determinations for fuel standards require validated experimental data and qualified engineering review.