Combined Science Double Award - 9204 OxfordAQA

Energy Transfers, Conservation And Dissipation Of Energy

Gbogbo ọrọ náà

Push a shopping trolley along a level floor and let go. It rolls, slows and stops. Something was clearly spent to get it moving, and a moment later that something has gone. Where? Not out of existence: the wheel bearings, the axle and a thin sheet of air along the floor are all a fraction of a degree warmer than they were, and if you added up every one of those warmings you would recover, to the last joule, exactly what the trolley had. Nothing was lost. It was scattered so thinly that no machine you could build would ever gather it back.

That is the whole of this lesson in one sentence, and it is one of the few ideas in physics that never has an exception. You will learn to treat any object or group of objects as a system and say precisely when and where its energy moved, to follow an object that falls and trades height for speed, to separate the part of a transfer that does the job you wanted from the part that merely warms the room, and to turn that split into a number using efficiency. By the end you will be able to draw the accounting out as a Sankey diagram, where the width of every arrow is the size of a transfer and the widths coming out must always add up to the width going in. Every statement in this topic is printed in the ordinary light face of the specification, so none of it is held back for one tier: Core Tier and Extension Tier candidates sit all six statements.

Ebumnobi

  1. When a system changes, energy is transferred. A system is an object or group of objects. Students should be able to identify when and where energy has been transferred using concepts such as kinetic energy, gravitational potential energy and elastic potential energy.
  2. Energy can be transferred usefully, stored or dissipated, but cannot be created or destroyed.
  3. When energy is transferred only part of it may be usefully transferred; the rest is dissipated so that it is stored in less useful ways. This energy is often described as being ‘wasted’.
  4. Friction and air resistance are forces that dissipate energy by heating the surroundings.
  5. The efficiency of a device can be calculated using: useful energy out efficiency = (× 100 %) (total energy in) and useful power out efficiency = (× 100 %) (total power in) Students may be required to calculate efficiency as a decimal or as a percentage.
  6. The energy flow in a system can be represented using Sankey diagrams. Students should be able to draw and interpret Sankey diagrams to show how the overall energy in a system is redistributed when the system is changed but there is no net change to the total energy.

Maapụ uche

E seela isiokwu a ka ị hụ otu echiche si ejikọta.

Mepee maapụ uche na ngwa

Akwụkwọ Ọmụmụ

Rub your palms together hard for ten seconds and they get warm. You can feel the energy arriving, and you know where it came from: your arms did work against friction. Now try to get it back. Hold your warm hands still and wait. The warmth spreads into the air, into your sleeves, into the room, and within a minute there is no measurable trace of it anywhere. Not one joule has gone missing. Every one of them is still sitting in the room, sharing itself out among a few kilograms of air that are now a few thousandths of a degree warmer, and that is precisely why you can never use them again.

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Nnyocha Ọmụmụ

Ekele diri gi maka imecha ihe karịrị na Energy Transfers, Conservation And Dissipation Of Energy. Ugbu a na ị na-enyochakwa isi echiche na echiche ndị dị mkpa, ọ bụ oge iji nwalee ihe ị ma. Ngwa a na-enye ụdị ajụjụ ọmụmụ dị iche iche emebere iji kwado nghọta gị wee nyere gị aka ịmata otú ị ghọtara ihe ndị a kụziri.

Ị ga-ahụ ngwakọta nke ụdị ajụjụ dị iche iche, gụnyere ajụjụ chọrọ ịhọrọ otu n’ime ọtụtụ azịza, ajụjụ chọrọ mkpirisi azịza, na ajụjụ ede ede. A na-arụpụta ajụjụ ọ bụla nke ọma iji nwalee akụkụ dị iche iche nke ihe ọmụma gị na nkà nke ịtụgharị uche.

Jiri akụkụ a nke nyocha ka ohere iji kụziere ihe ị matara banyere isiokwu ahụ ma chọpụta ebe ọ bụla ị nwere ike ịchọ ọmụmụ ihe ọzọ. Ekwela ka nsogbu ọ bụla ị na-eche ihu mee ka ị daa mba; kama, lee ha anya dị ka ohere maka ịzụlite onwe gị na imeziwanye.

  1. A device is supplied with 500 J of energy and usefully transfers 150 J of it. What is the efficiency of the device? A. 0.30 B. 0.35 C. 3.3 D. 350 Answer: A
  2. What happens to the energy that a device does not transfer usefully? A. It is destroyed B. It is dissipated into the surroundings and stored in less useful ways C. It is returned to the electricity supply D. It is converted into extra mass Answer: B
  3. A ball is held still above the ground and then released. Which statement about the ball at the instant it is released is correct? A. Its kinetic energy is at a maximum and its gravitational potential energy is zero B. Its gravitational potential energy is at a maximum and its kinetic energy is zero C. Both its kinetic energy and its gravitational potential energy are at a maximum D. Both its kinetic energy and its gravitational potential energy are zero Answer: B
  4. In a Sankey diagram, what does the width of an arrow represent? A. The time taken for the transfer B. The temperature of the device C. The amount of energy transferred D. The efficiency of the device Answer: C
  5. An electric motor has a useful power output of 240 W and a total power input of 800 W. What is its efficiency as a percentage? A. 3.3% B. 30% C. 33% D. 560% Answer: B

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