load force divided by effort force
A trebuchet is a Class 1 lever since the fulcrum is placed between the effort (pulling the counterweight) and the load (the projectile). This lever type allows for a mechanical advantage that enables the trebuchet to launch projectiles with great force and distance.
The trebuchet is a type of lever simple machine. It uses a long arm to create a mechanical advantage, allowing for the launch of heavy projectiles over great distances.
you have to divide idk * * * * * You can find the ideal mechanical advantage of a wheel and axle by dividing the radius of the wheel by the radius of the axle.
The mechanical advantage of a ramp is calculated by dividing the length of the ramp by the vertical rise. This ratio represents how much less force is required to move an object up the ramp compared to lifting it straight up. The formula for mechanical advantage of a ramp is: Mechanical Advantage = Length of ramp / Vertical rise.
In a mechanical advantage system, the force is multiplied by the factor of the mechanical advantage. The formula for mechanical advantage is MA = output force / input force. This means the force can be multiplied by the mechanical advantage value.
A trebuchet is a Class 1 lever since the fulcrum is placed between the effort (pulling the counterweight) and the load (the projectile). This lever type allows for a mechanical advantage that enables the trebuchet to launch projectiles with great force and distance.
The trebuchet is a type of lever simple machine. It uses a long arm to create a mechanical advantage, allowing for the launch of heavy projectiles over great distances.
you have to divide idk * * * * * You can find the ideal mechanical advantage of a wheel and axle by dividing the radius of the wheel by the radius of the axle.
mechanical advantage= output force over input force
The "Ideal Mechanical Advantage" of a simple machine isIMA = output force /input force . To find the 'actual' or real-world mechanical advantage,multiply the IMA by the machine's efficiency.
more power than a human could provide
you have to divide idk * * * * * You can find the ideal mechanical advantage of a wheel and axle by dividing the radius of the wheel by the radius of the axle.
In theory a wheel and axle has only one mechanical advantage. You can find the ideal mechanical advantage of a wheel and axle by dividing the radius of the wheel by the radius of the axle.
the higher you place the pivot point on the lever, the higher the stone will go. the lower you place it the lower the stone will go.
You can find the ideal mechanical advantage of a wheel and axle by dividing the radius of the wheel by the radius of the axle.
The mechanical Advantage is FORCE TIMES DISTANCE
The actual mechanical advantage is usually less, due to losses.