\nThis represents a downward parabola, , . . This represents an upward parabola. On plotting graphs of potential energy & kinetic energy. \n"},"encodingFormat":"text/html","position":2,"text":""},"comment":{"@type":"Comment","text":"Write the equation of kinetic energy and potential energy of a body in S.H.M."},"eduQuestionType":"Multiple choice","encodingFormat":"text/markdown","learningResourceType":"Practice problem","suggestedAnswer":[{"@type":"Answer","comment":{"@type":"Comment","text":"It is a wrong option."},"encodingFormat":"text/html","position":0,"text":""},{"@type":"Answer","comment":{"@type":"Comment","text":"It is a wrong option."},"encodingFormat":"text/html","position":1,"text":""},{"@type":"Answer","comment":{"@type":"Comment","text":"It is a wrong option."},"encodingFormat":"text/html","position":3,"text":""}],"text":"For a simple pendulum, a graph is plotted between its kinetic energy (K.E.) and potential energy (P.E.) against its displacement d. which one of the following represents these correctly? (graphs are schematic and not drawn to scale)"},"name":"Quiz on Simple Harmonic Motion","typicalAgeRange":"10-17","url":"https://www.embibe.com/questions/For-a-simple-pendulum%2C-a-graph-is-plotted-between-its-kinetic-energy-%28K.E.%29-and-potential-energy-%28P.E.%29-against-its-displacement-d.-which-one-of-the-following-represents-these-correctly%3F-%28graphs-are-schematic-and-not-drawn-to-scale%29/EM0099998"}
For a simple pendulum, a graph is plotted between its kinetic energy (K.E.) and potential energy (P.E.) against its displacement d. which one of the following represents these correctly? (graphs are schematic and not drawn to scale)
An object of mass is executing simple harmonic motion. It amplitude is and time period (T) is . What will be the potential energy of the object at an instant starting from mean position. Assume that the initial phase of the oscillation is zero.
A particle is executing simple harmonic motion of amplitude along the -axis, about When its potential Energy equals kinetic energy the position of the particle will be:
An object of mass is attached to a spring which is fixed at one end on a rigid support and the mass-spring system is kept on a frictionless table. The object is allowed to execute simple harmonic motion along - direction. The force constant of the spring is and the spring is stretched initially a distance of , the total energy stored in the system is
A potential is given by for and for . The schematic variation of oscillation period for a particle performing periodic motion in this potential as a function of its energy is:
In a simple harmonic oscillation, what fraction of total mechanical energy is in the form of kinetic energy, when the particle is midway between mean and extreme position.
A simple pendulum of length has mass and it oscillates freely with amplitude . At the extreme position, its potential energy is ( = acceleration due to gravity)
A particle starts executing simple harmonic motion of amplitude and total energy At any instant, its kinetic energy is , then its displacement is given by:
A particle of mass is hanging from a spring of force constant The mass is pulled slightly downward and released so that it executes free simple harmonic motion with time period The minimum time when the kinetic energy and potential energy of the system will become equal, is The value of is ________.
A mass of is connected to a spring. The potential energy curve of the simple harmonic motion executed by the system is shown in the figure. A simple pendulum of length has the same period of oscillation as the spring system. What is the value of acceleration due to gravity on the planet where these experiments are performed ?
The maximum value attained by the tension in the string of a swinging pendulum is four times the minimum value it attains. There is no slack in the string. The angular amplitude of the pendulum is
A particle is executing simple harmonic motion with a time period . At time , it is at its position of equilibrium. The kinetic energy - time graph of the particle will look like: