Some Systems Executing Simple Harmonic Motion
PHXI14:OSCILLATIONS

364325 A coin is placed on a horizontal platform which undergoes vertical simple harmonic motion of angular frequency \(\omega\). The amplitude of oscillation is gradually increased. The coin will leave contact with the platform for the first time

1 For an amplitude of \(g^{2} / \omega^{2}\)
2 For an amplitude of \(g / \omega^{2}\)
3 At the mean position of the platform
4 At the highest position of the platform
PHXI14:OSCILLATIONS

364326 Consider a liquid which fills a uniform U-tube, as shown in fig up to a height \(h\). Find angular frequency of small oscillations of the liquid in the U-tube.
supporting img

1 \(\sqrt{g / 2 h}\)
2 \(\sqrt{g / h}\)
3 \(\sqrt{2 g / h}\)
4 \(\sqrt{3 g / 2 h}\)
PHXI14:OSCILLATIONS

364327 A clock \(S\) is based on oscillation of a spring and a clock \(P\) is based on pendulum motion. Both clocks run at the same rate on the earth. On a planet having the same density as earth but twice the radius

1 \(S\) will run faster than \(P\)
2 \(P\) will run faster than \(S\)
3 both will run at the same rate as on the earth
4 both will run at the same rate which will be different from that on the earth
PHXI14:OSCILLATIONS

364328 A particle under the action of a SHM has a period of \(3\,{\rm{sec}}\) and under the effect of another it has a period \(4\,{\rm{sec}}\). What will be its period under the combined action of both the SHM's in the same direction?

1 \(7\,\sec \)
2 \(5\,\sec \)
3 \(2.4\,\sec \)
4 \(0.4\,\sec \)
PHXI14:OSCILLATIONS

364329 An air chamber of volume \(V\), has a long neck of cross-sectional area A. A ball of mass \(m\) is fitted smoothly in the neck. The bulk modulus of air is \(B\). If the ball is pressed down slightly and released, the time period of its oscillation is

1 \(\pi \sqrt{\dfrac{2 m V}{B A^{2}}}\)
2 \(2 \pi \sqrt{\dfrac{m V}{2 B A^{2}}}\)
3 \(\dfrac{\pi}{2} \sqrt{\dfrac{m}{B A^{2}}}\)
4 \(2 \pi \sqrt{\dfrac{m V}{B A^{2}}}\)
PHXI14:OSCILLATIONS

364325 A coin is placed on a horizontal platform which undergoes vertical simple harmonic motion of angular frequency \(\omega\). The amplitude of oscillation is gradually increased. The coin will leave contact with the platform for the first time

1 For an amplitude of \(g^{2} / \omega^{2}\)
2 For an amplitude of \(g / \omega^{2}\)
3 At the mean position of the platform
4 At the highest position of the platform
PHXI14:OSCILLATIONS

364326 Consider a liquid which fills a uniform U-tube, as shown in fig up to a height \(h\). Find angular frequency of small oscillations of the liquid in the U-tube.
supporting img

1 \(\sqrt{g / 2 h}\)
2 \(\sqrt{g / h}\)
3 \(\sqrt{2 g / h}\)
4 \(\sqrt{3 g / 2 h}\)
PHXI14:OSCILLATIONS

364327 A clock \(S\) is based on oscillation of a spring and a clock \(P\) is based on pendulum motion. Both clocks run at the same rate on the earth. On a planet having the same density as earth but twice the radius

1 \(S\) will run faster than \(P\)
2 \(P\) will run faster than \(S\)
3 both will run at the same rate as on the earth
4 both will run at the same rate which will be different from that on the earth
PHXI14:OSCILLATIONS

364328 A particle under the action of a SHM has a period of \(3\,{\rm{sec}}\) and under the effect of another it has a period \(4\,{\rm{sec}}\). What will be its period under the combined action of both the SHM's in the same direction?

1 \(7\,\sec \)
2 \(5\,\sec \)
3 \(2.4\,\sec \)
4 \(0.4\,\sec \)
PHXI14:OSCILLATIONS

364329 An air chamber of volume \(V\), has a long neck of cross-sectional area A. A ball of mass \(m\) is fitted smoothly in the neck. The bulk modulus of air is \(B\). If the ball is pressed down slightly and released, the time period of its oscillation is

1 \(\pi \sqrt{\dfrac{2 m V}{B A^{2}}}\)
2 \(2 \pi \sqrt{\dfrac{m V}{2 B A^{2}}}\)
3 \(\dfrac{\pi}{2} \sqrt{\dfrac{m}{B A^{2}}}\)
4 \(2 \pi \sqrt{\dfrac{m V}{B A^{2}}}\)
PHXI14:OSCILLATIONS

364325 A coin is placed on a horizontal platform which undergoes vertical simple harmonic motion of angular frequency \(\omega\). The amplitude of oscillation is gradually increased. The coin will leave contact with the platform for the first time

1 For an amplitude of \(g^{2} / \omega^{2}\)
2 For an amplitude of \(g / \omega^{2}\)
3 At the mean position of the platform
4 At the highest position of the platform
PHXI14:OSCILLATIONS

364326 Consider a liquid which fills a uniform U-tube, as shown in fig up to a height \(h\). Find angular frequency of small oscillations of the liquid in the U-tube.
supporting img

1 \(\sqrt{g / 2 h}\)
2 \(\sqrt{g / h}\)
3 \(\sqrt{2 g / h}\)
4 \(\sqrt{3 g / 2 h}\)
PHXI14:OSCILLATIONS

364327 A clock \(S\) is based on oscillation of a spring and a clock \(P\) is based on pendulum motion. Both clocks run at the same rate on the earth. On a planet having the same density as earth but twice the radius

1 \(S\) will run faster than \(P\)
2 \(P\) will run faster than \(S\)
3 both will run at the same rate as on the earth
4 both will run at the same rate which will be different from that on the earth
PHXI14:OSCILLATIONS

364328 A particle under the action of a SHM has a period of \(3\,{\rm{sec}}\) and under the effect of another it has a period \(4\,{\rm{sec}}\). What will be its period under the combined action of both the SHM's in the same direction?

1 \(7\,\sec \)
2 \(5\,\sec \)
3 \(2.4\,\sec \)
4 \(0.4\,\sec \)
PHXI14:OSCILLATIONS

364329 An air chamber of volume \(V\), has a long neck of cross-sectional area A. A ball of mass \(m\) is fitted smoothly in the neck. The bulk modulus of air is \(B\). If the ball is pressed down slightly and released, the time period of its oscillation is

1 \(\pi \sqrt{\dfrac{2 m V}{B A^{2}}}\)
2 \(2 \pi \sqrt{\dfrac{m V}{2 B A^{2}}}\)
3 \(\dfrac{\pi}{2} \sqrt{\dfrac{m}{B A^{2}}}\)
4 \(2 \pi \sqrt{\dfrac{m V}{B A^{2}}}\)
PHXI14:OSCILLATIONS

364325 A coin is placed on a horizontal platform which undergoes vertical simple harmonic motion of angular frequency \(\omega\). The amplitude of oscillation is gradually increased. The coin will leave contact with the platform for the first time

1 For an amplitude of \(g^{2} / \omega^{2}\)
2 For an amplitude of \(g / \omega^{2}\)
3 At the mean position of the platform
4 At the highest position of the platform
PHXI14:OSCILLATIONS

364326 Consider a liquid which fills a uniform U-tube, as shown in fig up to a height \(h\). Find angular frequency of small oscillations of the liquid in the U-tube.
supporting img

1 \(\sqrt{g / 2 h}\)
2 \(\sqrt{g / h}\)
3 \(\sqrt{2 g / h}\)
4 \(\sqrt{3 g / 2 h}\)
PHXI14:OSCILLATIONS

364327 A clock \(S\) is based on oscillation of a spring and a clock \(P\) is based on pendulum motion. Both clocks run at the same rate on the earth. On a planet having the same density as earth but twice the radius

1 \(S\) will run faster than \(P\)
2 \(P\) will run faster than \(S\)
3 both will run at the same rate as on the earth
4 both will run at the same rate which will be different from that on the earth
PHXI14:OSCILLATIONS

364328 A particle under the action of a SHM has a period of \(3\,{\rm{sec}}\) and under the effect of another it has a period \(4\,{\rm{sec}}\). What will be its period under the combined action of both the SHM's in the same direction?

1 \(7\,\sec \)
2 \(5\,\sec \)
3 \(2.4\,\sec \)
4 \(0.4\,\sec \)
PHXI14:OSCILLATIONS

364329 An air chamber of volume \(V\), has a long neck of cross-sectional area A. A ball of mass \(m\) is fitted smoothly in the neck. The bulk modulus of air is \(B\). If the ball is pressed down slightly and released, the time period of its oscillation is

1 \(\pi \sqrt{\dfrac{2 m V}{B A^{2}}}\)
2 \(2 \pi \sqrt{\dfrac{m V}{2 B A^{2}}}\)
3 \(\dfrac{\pi}{2} \sqrt{\dfrac{m}{B A^{2}}}\)
4 \(2 \pi \sqrt{\dfrac{m V}{B A^{2}}}\)
PHXI14:OSCILLATIONS

364325 A coin is placed on a horizontal platform which undergoes vertical simple harmonic motion of angular frequency \(\omega\). The amplitude of oscillation is gradually increased. The coin will leave contact with the platform for the first time

1 For an amplitude of \(g^{2} / \omega^{2}\)
2 For an amplitude of \(g / \omega^{2}\)
3 At the mean position of the platform
4 At the highest position of the platform
PHXI14:OSCILLATIONS

364326 Consider a liquid which fills a uniform U-tube, as shown in fig up to a height \(h\). Find angular frequency of small oscillations of the liquid in the U-tube.
supporting img

1 \(\sqrt{g / 2 h}\)
2 \(\sqrt{g / h}\)
3 \(\sqrt{2 g / h}\)
4 \(\sqrt{3 g / 2 h}\)
PHXI14:OSCILLATIONS

364327 A clock \(S\) is based on oscillation of a spring and a clock \(P\) is based on pendulum motion. Both clocks run at the same rate on the earth. On a planet having the same density as earth but twice the radius

1 \(S\) will run faster than \(P\)
2 \(P\) will run faster than \(S\)
3 both will run at the same rate as on the earth
4 both will run at the same rate which will be different from that on the earth
PHXI14:OSCILLATIONS

364328 A particle under the action of a SHM has a period of \(3\,{\rm{sec}}\) and under the effect of another it has a period \(4\,{\rm{sec}}\). What will be its period under the combined action of both the SHM's in the same direction?

1 \(7\,\sec \)
2 \(5\,\sec \)
3 \(2.4\,\sec \)
4 \(0.4\,\sec \)
PHXI14:OSCILLATIONS

364329 An air chamber of volume \(V\), has a long neck of cross-sectional area A. A ball of mass \(m\) is fitted smoothly in the neck. The bulk modulus of air is \(B\). If the ball is pressed down slightly and released, the time period of its oscillation is

1 \(\pi \sqrt{\dfrac{2 m V}{B A^{2}}}\)
2 \(2 \pi \sqrt{\dfrac{m V}{2 B A^{2}}}\)
3 \(\dfrac{\pi}{2} \sqrt{\dfrac{m}{B A^{2}}}\)
4 \(2 \pi \sqrt{\dfrac{m V}{B A^{2}}}\)