Skip to content
Answer the following questions · Q1

Q.A mixture of hydrogen and oxygen is enclosed in a rigid insulating cylinder. It is ignited by a spark. The temperature and the pressure both increase considerably. Assume that the energy supplied by the spark is negligible, what conclusions may be drawn by application of the first law of thermodynamics?

Maharashtra MsbshseTextbookSubjectiveImportance★★★★★
22% · 15/68 Questions
✓ Free question

Step 1. The cylinder is rigid, so its volume cannot change: ΔV=0\Delta V = 0, which means W=pΔV=0W = p\Delta V = 0 (Section 4.7.3.4).

Step 2. The cylinder is insulated, and the spark's own energy is stated to be negligible, so essentially no heat crosses the boundary: Q≈0Q \approx 0.

Step 3. By the First Law, ΔU=Q−W=0−0=0\Delta U = Q - W = 0 - 0 = 0 — the TOTAL internal energy of the system (H₂ + O₂ + reaction products) is conserved.

Step 4. The observed rise in temperature and pressure is therefore not due to any external energy entering the system — it is due to the conversion of the gas mixture's own stored chemical (bond) potential energy into thermal (kinetic) internal energy of the product molecules as the combustion reaction proceeds, all within the same closed, isolated total-energy budget.

✓Final answer

ΔU = 0 for the system: rigid walls give W = 0 and insulation with a negligible spark gives Q ≈ 0, so total internal energy is conserved — the temperature/pressure rise is due to the H₂+O₂ mixture's own stored chemical energy converting into thermal internal energy, not to any external energy input.

Unlock everything free for 14 days

  • Full step-by-step solutions
  • Concept-first explanations
  • Methods, shortcuts & mistakes
  • PYQ mapping + timed mock tests

Full access for 14 days. No credit card required.