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JEE Main and Advanced5 min readSep 4, 2026Updated Sep 5, 2026

Work and the Four Processes: The Gas’s Four Moods

Work and the Four Processes: The Gas’s Four Moods
5 min read · 990 words

JEE/NEET Physics · Thermodynamics series · Part 2 of 6 · All parts →

✪ Key points — the 30-second version

  • Work done by gas = area under the P-V curve — always
  • Isothermal (constant T): W = nRT ln(V₂/V₁) — slow, heat bath connected
  • Isobaric (constant P): W = PΔV — simplest, and Q = nC_pΔT
  • Isochoric (constant V): W = 0 — all heat goes to U
  • Cyclic process: net work = area enclosed by the loop on P-V

A gas can change its state in four characteristic moods — hold temperature, pressure, or volume fixed, or hold heat out entirely. Each mood spends and stores energy differently, and the P-V graph tells you everything. Part 2 of the Thermodynamics series.

In this card

  1. Work = area under the curve
  2. Isothermal: the patient mood
  3. Isobaric and isochoric: the simple moods
  4. The four-mood table
  5. Cycles: loops pay net
  6. Solved examples
  7. Common mistakes
  8. This physics in your daily life
  9. Practice set
  10. Recap

Work = Area Under the Curve

W = ∫P dV: on a P-V diagram, the work done by the gas is literally the area under the path. Higher path, more work; steeper path, different trade. This geometric picture solves half of all thermodynamics questions.

Isothermal: The Patient Mood

W = nRT ln(V₂/V₁)constant T — needs slow change + perfect thermal contact

Temperature pinned means ΔU = 0, so every joule of heat in converts to work out — the gas is a perfect conduit. But it must happen slowly enough for heat to keep flowing in from the bath.

Isobaric and Isochoric: The Simple Moods

Constant pressure: W = P(V₂ − V₁), a rectangle’s area — and the gas needs extra heat for both work and warming: Q = nC_pΔT with C_p = C_v + R. Constant volume: W = 0 (no piston motion), so Q = ΔU = nC_vΔT — the purest heating.

The Four-Mood Table

ProcessHeld fixedWorkHeat
IsothermalTnRT ln(V₂/V₁)= W exactly
IsobaricPPΔVnC_pΔT
IsochoricV0nC_vΔT (all to U)
AdiabaticQ (heat!)(next part)0

Cycles: Loops Pay Net

Return the gas to its start (a closed loop on P-V) and ΔU = 0 — the net work over the cycle is the area enclosed by the loop. Clockwise loop: gas does net work (engines). Anticlockwise: work done ON gas (refrigerators).

Solved Examples

✎ Easy — isobaric. Gas at 10⁵ Pa expands 2×10⁻³ m³ at constant pressure. Work?

W = PΔV = 10⁵ × 2×10⁻³ = 200 J.

Answer: 200 J

✎ Exam level — isothermal. 2 moles at 300 K expand to triple volume. W? (ln3 ≈ 1.1)

W = nRT ln(V₂/V₁) = 2 × 8.3 × 300 × 1.1 ≈ 5.5 kJ.

And Q = 5.5 kJ too — the isothermal identity. ✔

Answer: ≈5.5 kJ (= Q in)

✎ JEE level — the loop. A cycle encloses 40 J of area on P-V, run clockwise. Net work and net Q?

W_net = +40 J (clockwise = engine direction); ΔU = 0 over the cycle → Q_net = +40 J.

The gas converted 40 J of heat to work over one lap — a miniature engine. ✔

Answer: W = Q = +40 J

⚠ Mistakes students make — and how to avoid them

  • Using PΔV for isothermal work. Pressure changes throughout — only the logarithm formula survives.
  • Reading area on the wrong side. Work is area UNDER the curve (down to the V-axis), not between arbitrary lines.
  • C_p vs C_v swap. Constant pressure uses C_p = C_v + R; constant volume uses C_v — the ‘+R’ is the piston’s share.
  • Assuming fast = isothermal. Fast processes are adiabatic (no time for heat); isothermal needs glacial slowness.

This Physics in Your Daily Life

◎ This physics in your daily life

  • Petrol engine strokes — intake/expansion/exhaust at roughly constant pressure phases: isobaric-ish bookkeeping under your bonnet.
  • A syringe capped and squeezed — volume barely changes: near-isochoric, pressure climbs steeply (feel it).
  • Cooking gas expanding through a regulator — roughly isothermal thanks to heat from surroundings: the patient mood on demand.
  • Weather balloons rising — air packets expand isothermally-ish in slow rise (or adiabatically in fast convection: the next part).
  • Every engine rating in kW — the loop area per cycle × cycles per second: power is literally enclosed P-V area, spun fast.
One idea, three doors — open whichever clicks for you
Same concept (why the four processes exist), three different ways of seeing it. If one door confuses you, try the next — at least one will stick.
Door 1 · The story way

A gas has three dials — pressure, volume, temperature — linked by PV = nRT. Hold each in turn (or hold heat itself) and you get the characteristic processes: not four arbitrary recipes, but the four natural ways to let a three-dial machine evolve. Every real process is a blend of these four pure moods.

Door 2 · The numbers way

Isothermal doubling at 300 K, 1 mol: W = 2490 ln2 ≈ 1727 J, fully paid by heat. Same doubling adiabatically (next part): gas does MORE work per initial pressure but pays from savings — temperature drops ~120 K. Two moods, two invoices.

Door 3 · The picture way

On the P-V canvas: isotherms are hyperbolas (PV = const); steeper-than-isotherm curves are adiabatics. Isochoric is a vertical line (zero area — no work); isobaric a horizontal one (rectangular area). The four moods are four SHAPES, and the shapes do the arithmetic.

Why is this happening at all? Why classify at all? Because each fixed quantity turns the first law into a simpler equation: fix T and Q = W; fix V and Q = ΔU; fix Q and W = −ΔU; fix P and everything stays tidy. Constraint breeds simplicity — the four processes are the four ways the receipt collapses to one term.

Practice set (answers hidden — try first)

(NEET-level) Isochoric process: work =
Zero.
(JEE Main-level) 3 mol at 400 K double volume isothermally: W ≈
3×8.3×400×0.69 ≈ 6.9 kJ.
(NEET-level) C_p − C_v =
R (per mole).
(Concept) Clockwise P-V loop: the system
Does net work — an engine.
(JEE Main-level) Isobaric P = 2×10⁵ Pa, ΔV = 10⁻³ m³: W =
200 J.
🧠 Memory tricks & everyday anchors — the 20-second revision

  • W = area under P-V curve
  • isothermal: W = nRT ln(V₂/V₁), Q = W
  • isobaric: W = PΔV, Q = nC_pΔT
  • isochoric: W = 0
  • cycle: net W = enclosed loop area
  • 🔁 four processes table
  • 🔁 work formulas for each
  • 🔁 area reading on P-V
▶ Recap card — save for revision week

  • 🧠 Chant: ‘T-slow, P-rectangle, V-nothing, Q-nothing (next!)’.
  • 🧠 C_p = C_v + R — ‘the +R is the piston’s tip’.
  • 🏠 Daily: engine kW = loop area × laps per second.
  • 🏠 Daily: capped syringe = isochoric squeeze.

Quick revision

  • Work done by gas = area under the P-V curve — always
  • Isothermal (constant T): W = nRT ln(V₂/V₁) — slow, heat bath connected
  • Isobaric (constant P): W = PΔV — simplest, and Q = nC_pΔT
  • Isochoric (constant V): W = 0 — all heat goes to U
  • Cyclic process: net work = area enclosed by the loop on P-V
  • Work = area under the curve
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