Physics Flashcards: Model Energy Transfer Computationally
Study Model Energy Transfer Computationally in Physics with focused flashcards that help you recognize the idea, recall the key rule, and apply it in practice-style prompts.
Physics
Model Energy Transfer Computationally
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QUESTION
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What is the elastic potential energy formula for a spring in computational energy tracking?
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ANSWER
Us=21kx2. Elastic PE is proportional to spring constant and displacement squared.
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This deck focuses on Model Energy Transfer Computationally, giving you a quick way to review the definitions, rules, and examples that matter most for Physics.
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Flashcard 1: What is the elastic potential energy formula for a spring in computational energy tracking?
Answer: Us=21kx2. Elastic PE is proportional to spring constant and displacement squared.
Flashcard 2: What is the work done by a constant force parallel to the displacement?
Answer: W=Fd. Work equals force times distance when parallel.
Flashcard 3: What is the net work–kinetic energy relation used to compute speed changes?
Answer: Wnet=ΔK. Work-energy theorem: net work changes kinetic energy.
Flashcard 4: What is the power definition used to model energy transfer rate?
Answer: P=ΔtΔE. Power is energy transfer rate.
Flashcard 5: Find spring energy Us for k=200N/m and x=0.10m.
Answer: 1J. Us=21(200)(0.1)2=21(200)(0.01)=1J
Flashcard 6: What is the work formula for a constant force parallel to displacement?
Answer: W=Fd. Work equals force times distance when force is parallel to motion.
Flashcard 7: What equation relates energy transferred by heating to mass, specific heat, and temperature change?
Answer: Q=mcΔT. Heat capacity relates thermal energy to temperature change.
Flashcard 8: What is the thermal energy transfer from kinetic friction over distance d on a level surface?
Answer: Eth=fkd=μkNd. Friction converts mechanical energy to thermal over distance.