First Law and PV Work Quiz: Constant Pressure + PV Area

Concept: PV work at constant pressure. For constant pressure expansion/compression, work equals pressure times volume change. This is a special case of w=∫p dv where p is constant.

Concept: Volume change sign. Expansion means final volume is larger than initial volume. Therefore Δv=v_f−v_i is positive.

Concept: Calculating Δv. Volume change is final minus initial: 5.0−2.0=3.0 L. A positive result matches expansion.

Concept: Unit conversion liters to m³. 1 L equals 10^(-3) m³. So 3.0 L becomes 3.0×10^(-3) m³.

Concept: Work from pΔv with SI units. Convert pressure: 100 kPa = 100,000 Pa, and Δv=3.0×10^(-3) m³. Then w=(100,000)(3.0×10^(-3))=300 J.

Concept: PV area as work. Work is w=∫p dv, which geometrically equals the area under the p–v curve. The sign depends on whether volume increases (positive) or decreases (negative).

Concept: First law calculation. With q=+600 J and w=+300 J, Δu=q−w=600−300=300 J. Internal energy increases because heat input exceeds work output.

Concept: Work sign for compression. Compression means Δv<0, so w=pΔv is negative (for positive pressure). Negative w indicates work is done on the gas, not by it.

Concept: pΔv with compression. Δv=-3.0 L=-3.0×10^(-3) m³ and p=200,000 Pa. w=200,000(-0.003)=-600 J, negative as expected for compression.

Concept: Subtracting a negative. If w is negative, then -w is positive. This means compression tends to increase Δu for a given q because work is effectively adding energy to the system.

Concept: Work sign and path dependence. The sign of work follows the sign of Δv for positive pressure. Work depends on the path because the pressure during the volume change can vary between processes.

Concept: Using signs for q and w. Releasing heat means q=-40, and doing work means w=+150. Δu=q−w=-40-150=-190 J, so internal energy decreases.

Concept: Meaning of Δu sign. Δu<0 means the final internal energy is lower than the initial internal energy. This typically occurs when the system does more work than the heat it absorbs, or when it releases heat.

Concept: Rearranging the first law. From Δu=q−w, solve for q: q=Δu+w. q=80+50=130 J, meaning net heat enters the system.

Concept: State function over a cycle. A cycle returns the system to its initial state, so any state function has zero net change. Since u is a state function, Δu=0 for a complete cycle.

Concept: First law for cycles. Over a cycle Δu=0, so 0=q_net−w_net. Therefore q_net = w_net, meaning net heat in equals net work out (using this convention).

Concept: Cycles and net work. A system can return to its original state (including temperature) and still do net work if it also has net heat transfer. That’s the basic idea behind heat engines.

Concept: PV area and work. Work is the area under the PV curve between the same volumes. Higher pressure at each volume means a larger area, so process A produces greater work.

Concept: Work requires opposing pressure. Mechanical work on the surroundings requires a force (pressure) opposing expansion. If external pressure is zero, there’s nothing to push against, so w=0.

Concept: Free expansion + adiabatic condition. Insulated means q=0, and expansion into a vacuum means no work is done (w=0). Therefore Δu=0, so internal energy does not change.