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NCERT Exemplar · Q7

Q.A sound wave is passing through air column in the form of compression and rarefaction. In consecutive compressions and rarefactions,

(a) density remains constant.
(b) Boyle's law is obeyed.
(c) bulk modulus of air oscillates.
(d) there is no transfer of heat.
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Sound propagation through air is an adiabatic process (too fast for heat exchange), so density is not constant, Boyle's law (isothermal) does not apply, and the local bulk modulus B=γPB=\gamma P oscillates in phase with the local pressure PP. The correct options are (C) bulk modulus of air oscillates, and (D) there is no transfer of heat.

Why the process is adiabatic

As a sound wave passes, it creates rapidly alternating regions of compression (higher pressure, higher density) and rarefaction (lower pressure, lower density). There isn't time for heat to flow between them, or to/from the surroundings. So the process is adiabatic, not isothermal.

Checking each option

(A) "density remains constant" -- False. Compressions and rarefactions are, by definition, regions of higher and lower density.

(B) "Boyle's law is obeyed" -- False. Boyle's law (PV=constantPV=\text{constant}) describes an isothermal process. Since sound propagation is adiabatic, the correct relation is instead PVγ=constantPV^\gamma=\text{constant}.

(C) "bulk modulus of air oscillates" -- True. For an adiabatic process, PVγ=constantPV^\gamma=\text{constant}. Differentiating this with respect to VV gives the adiabatic bulk modulus:

Badiabatic=−VdPdV=γPB_{\text{adiabatic}} = -V\frac{dP}{dV} = \gamma P

Since the local pressure PP itself oscillates between compressions and rarefactions, and B=γPB=\gamma P tracks PP directly, the bulk modulus oscillates in phase with the pressure. …

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