When the mass of an oscillating object increases, the period of oscillation remains the same in simple harmonic motion if the restoring force does not change. If the mass increases but the restoring force (such as spring stiffness or gravitational force) remains constant, the period will not be affected.
If the time period is increased, the frequency decreases inversely proportionally. This is because frequency is the reciprocal of the time period. So, as the time period increases, the frequency decreases.
The period of oscillation increases as the mass of the pendulum bob is increased. This is because the force required to move the heavier bob is greater, leading to a slower oscillation. The period is directly proportional to the square root of the length of the pendulum and inversely proportional to the square root of gravitational acceleration.
As altitude increases, atmospheric pressure decreases.
As the wavelength decreases, the frequency of the waves increases. This is because frequency and wavelength are inversely proportional - as one decreases, the other increases, according to the equation: speed = frequency x wavelength.
When the mass of a white dwarf increases, its size decreases. This is because the increased mass causes the white dwarf to contract under its own gravity, making it smaller and denser.
Pressure decreases.
If the time period is increased, the frequency decreases inversely proportionally. This is because frequency is the reciprocal of the time period. So, as the time period increases, the frequency decreases.
The period of oscillation increases as the mass of the pendulum bob is increased. This is because the force required to move the heavier bob is greater, leading to a slower oscillation. The period is directly proportional to the square root of the length of the pendulum and inversely proportional to the square root of gravitational acceleration.
When the temperature is increased the kinetic energy increases, and when it is decreased the kinetic energy decreases.
It decreases. This is because the same amount of energy is distributed over a larger area (wavelength increases, so fringe spacing also increases). Energy per unit area decreases and this is why intensity decreases.
When demand decreases, supply increases.
it increases
As wavelength increases the frequency decreases.
When the temperature of a gas is increased at a constant pressure, its volume increases. When the temperature of a gas is devreased at constnt pressure, its volume decreases.
increases
Its intensity decreases.
It decreases[: