By what transfer mechanisms does energy enter and leave (a) your television set? (b) Your gasoline-powered lawn mower? (c) Your hand-cranked pencil sharpener?
By what transfer mechanisms does energy enter and leave (a) your television set? (b) Your gasoline-powered lawn mower? (c) Your hand-cranked pencil sharpener?
By what transfer mechanisms does energy enter and leave (a) your television set? (b) Your gasoline-powered lawn mower? (c) Your hand-cranked pencil sharpener?
(a)
Expert Solution
To determine
The energy transfer mechanism by which energy enter and leave the television set.
Answer to Problem 8.1QQ
The energy enters in the form of electrical energy, electromagnetic radiation and energy leaves in the form of heat, mechanical waves and electromagnetic radiation.
Explanation of Solution
In the television set, the energy enters in the form of electrical energy for the power and in the form of the electromagnetic radiation for the signal purpose.
The energy leaves by the television in different forms. First type of the energy is left in the form of the heat from the hot surfaces of the television into the air, second type of the energy is left in the form of mechanical waves as sound from the speaker and third type of energy form is left in the form of electromagnetic radiation from the television screen.
Conclusion:
Therefore, the energy enters in the form of electrical energy, electromagnetic radiation and energy leaves in the form of heat, mechanical waves and electromagnetic radiation.
(b)
Expert Solution
To determine
The energy transfer mechanism by which energy enter and leave the gasoline-powered lawn mower.
Answer to Problem 8.1QQ
The energy enters in the form of fuel energy and energy leaves in the form of heat, mechanical waves and work.
Explanation of Solution
In the gasoline-powered lawn mower, the energy enters in the form of fuel energy by using gasoline for the power.
There are three main ways in which the energy leaves the gasoline-powered lawn mower. The energy leaves in the form of the heat from the hot surfaces into air, in the form of mechanical waves as sound and in the form of work on the blades of the grass cutter.
Conclusion:
Therefore, the energy enters in the form of fuel energy and energy leaves in the form of heat, mechanical waves and work.
(c)
Expert Solution
To determine
The energy transfer mechanism by which energy enter and leave the hand-cranked pencil sharpener.
Answer to Problem 8.1QQ
The energy enters in the form of work in turning the crank and energy leaves in the form of work done on the pencil and mechanical waves as sound.
Explanation of Solution
In the hand-cranked pencil sharpener, the energy enters in the form of the form of work in turning the crank by hand.
There are two main ways in which the energy leaves the hand-cranked pencil sharpener. The energy leaves in the form of mechanical waves as sound from and in the form of work done on the pencil.
Conclusion:
Therefore, the energy enters in the form of work in turning the crank and energy leaves in the form of work done on the pencil and mechanical waves as sound.
Want to see more full solutions like this?
Subscribe now to access step-by-step solutions to millions of textbook problems written by subject matter experts!
In a scene from The Avengers (the first one) Black Widow is boosted directly upwards by Captain America, where she then grabs on to a Chitauri speeder that is 15.0 feet above her and hangs on. She is in the air for 1.04 s. A) With what initial velocity was Black Widow launched? 1 m = 3.28 ft B) What was Black Widow’s velocity just before she grabbed the speeder? Assume upwards is the positive direction.
In Dark Souls 3 you can kill the Ancient Wyvern by dropping on its head from above it. Let’s say you jump off the ledge with an initial velocity of 3.86 mph and spend 1.72 s in the air before hitting the wyvern’s head. Assume the gravity is the same as that of Earth and upwards is the positive direction. Also, 1 mile = 1609 m. A) How high up is the the ledge you jumped from as measured from the wyvern’s head? B) What is your velocity when you hit the wyvern?
A) If Yoshi flings himself downwards at 9.76 miles per hour to hit an enemy 10.5 m below him, how fast is Yoshi traveling when he hits the enemy? 1 mile = 1609 m
Need a deep-dive on the concept behind this application? Look no further. Learn more about this topic, physics and related others by exploring similar questions and additional content below.