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  1. Oct 21, 2023 · distance = speed x time. Rate and speed are similar since they both represent some distance per unit time like miles per hour or kilometers per hour. If rate r is the same as speed s, r = s = d/t. You can use the equivalent formula d = rt which means distance equals rate times time. distance = rate x time. To solve for speed or rate use the ...

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  2. force (F) is measured in newtons (N) change in momentum (mv - mu) is measured in kilogram metres per second (kg m/s) time taken (t) is measured in seconds (s)

  3. www.omnicalculator.com › physics › velocityVelocity Calculator

    Apr 18, 2024 · velocity change = 6.95 × 4 = 27.8 m/s. Since the initial velocity was zero, the final velocity is equal to the change in speed. You can convert units to km/h by multiplying the result by 3.6: 27.8 × 3.6 ≈ 100 km/h. You can, of course, make your calculations much easier by using the average velocity calculator.

  4. a = (v fv i) / Δt; a = 2 × (Δd − v i × Δt) / Δt²; and; a = F / m. where: a — Acceleration; v i and v f are, respectively, the initial and final velocities; Δt — Acceleration time; Δd — Distance traveled during acceleration; F — Net force acting on an object that accelerates; and; m — Mass of this object. Now you know ...

  5. Oct 11, 2023 · The Impulse Momentum Calculator uses the formula FΔt = mΔv, or force F multiplied by the change in time Δt equals mass m times the change in velocity Δv. Calculate force F, change in time Δt, mass m, velocity change Δv, initial velocity v 1 or final velocity v 2. We also calculate impulse J (Δp) and provide it below the answer for all ...

  6. www.mathsisfun.com › physics › momentumMomentum - Math is Fun

    We can calculate momentum (p) using mass times velocity: p = m v. Example: What is the momentum of a 1500 kg car going at highway speed of 28 m/s (about 100 km/h or 60 mph)? p = m v. p = 1500 kg × 28 m/s. p = 42,000 kg m/s.

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  8. Linear momentum is the product of a system’s mass and its velocity. In equation form, linear momentum p is. p = mv. p = m v. You can see from the equation that momentum is directly proportional to the object’s mass (m) and velocity (v). Therefore, the greater an object’s mass or the greater its velocity, the greater its momentum.

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