Home
Class 11
PHYSICS
Standing waves of frequency 5.0 kHz are ...

Standing waves of frequency `5.0 kHz` are produced in a tube filled with oxygen at `300k`. The separation between the consecutive nodes is `3.3 cm`. Calculate the specific heat capacities `(C_p and C_v)` of the gas.

Promotional Banner

Similar Questions

Explore conceptually related problems

Waves of frequency 1000 Hz are produced in a Kundt's tube . The total distance between 6 successive nodes is 82.5 cm . The speed of sound in the gas filled in the tube is

Waves of frequency 1000 Hz are produced in a Kundt's tube . The total distance between 6 successive nodes is 82.5 cm . The speed of sound in the gas filled in the tube is

Waves of frequency 1000 Hz are produced in a Kundt's tube . The total distance between 6 successive nodes is 82.5 cm . The speed of sound in the gas filled in the tube is

An ideal gas having density 1.7 xx 10^(-3) g cm ^(-3) at a pressure 1.5 xx 10^(5)Pa is filled in Kundt tube. When the gas is resonated at a frequency of 3.0 KHz , nodes are formed at a separation of 6.0 cm . Calculate the molar heat capacites (C_p and C_v) of the gas.

An ideal gas having density 1.7 xx 10^(-3) g cm ^(-3) at a preesure 1.5 xx 10^(5) pa is a filled Kundt tube. When the gas is resonnated at a frequency of 3.0 kHz, nodes an formed at a separation of 6.0 cm . Calculate the heat molar heat capacites (C_p and C_v) of the gas.

On producing the waves of frequency 1000 Hz in a kundt's tube the total distance between 6 successive nodes n 85 cm. Speed of sound in the gas filled in the tude is

On producing the waves of frequency 100 Hz in a kundt's tube the total distance between 6 successive nodes n 85 cm. Speed of sound in the gas filled in the tude is

On producing the waves of frequency 1000 Hz in a kundt's tube the total distance between 6 successive nodes n 85 cm. Speed of sound in the gas filled in the tude is

On producing the waves of frequency 1000 Hz in a kundt's tube the total distance between 6 successive nodes n 85 cm. Speed of sound in the gas filled in the tude is

The difference between the principal specific heats of nitrogen is 300 J/kg K and ratio of the two specific heats is 1.4. then C_P is