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I. Work Worksheet: Work & Power Problems Answer Key. A. Sample Problems: 1. F = 200 Newtons Formula: W = Fd d = 50 meters Substitution: W = (200 N)(50 m) W = ? Answer with unit of measure: W = 10,000 J. 2. F = 5 Newtons W = 75 Joules Formula: d = ? Substitution: d = W/F. Answer with unit of d = 75 J/5 N measure: d = 15 m. 3.
- Work Practice Problems Worksheet #1 - Mrs. crawford tchs
Work Practice Problems Worksheet #1 ANSWER KEY. 1) Amy uses...
- Work, Power and Energy Practice Problems - MRS. DONNELLY'S WEBSITE
Work and Power Problems. 1) How much work will you do if you...
- Work Practice Problems Worksheet #1 - Mrs. crawford tchs
This collection of problem sets and problems target student ability to use energy principles to analyze a variety of motion scenarios.
We have 20 ready-to-use problem sets on the topic of Work, Energy, and Power. These problem sets focus on the use of energy principles to mathematically analyze systems involving the motion of objects. Click a link to open a publicly-available problem set.
Work Practice Problems Worksheet #1 ANSWER KEY. 1) Amy uses 20N of force to push a lawn mower 10 meters. How much work does she do? Work = Force X Distance Work = 20N X 10m Work = 200 J. 2) How much work does an elephant do while moving a circus wagon 20 meters with a pulling force of 200N?
Work and Power Problems. 1) How much work will you do if you push a block of concrete 4.3 m along a floor with a steady force of 25 N ? 2) If your mass is 70.0 kg , how much work will you do climbing a flight of stairs 25.0 m high, moving at a steady pace? 3) Your car is stuck in the mud.
AP Physics 1- Work, Energy, & Power Practice Problems ANSWERS FACT: The amount of work done by a steady force is the amount of force multiplied by the distance an object moves parallel to that force: W = F x cos (θ).
Problems: Work, Energy, Power 1) A 10.0 kg mass sliding on a frictionless horizontal surface at 7.00 m/s hits a spring that is attached to a wall. The spring has a spring constant of 5000 N/m. a) Determine the maximum compression of the spring. At maximum compression, the box has a speed of zero.