Physics - 9203 OxfordAQA

Energy Transfers And Particle Motion

Akopọ

Walk out of a warm house on a frosty morning and take hold of the metal gate latch, then rest your other hand on the wooden gatepost beside it. The latch is painful. The post is merely chilly. Both have stood in the same air all night, so a thermometer pressed against either one would give you the same reading to within a fraction of a degree. Your hand is not measuring their temperature at all. It is measuring how quickly each of them is emptying your fingers of energy, and on that measure the two are nowhere near each other.

This lesson is about rate: not how much energy an object holds, but how fast it moves and what governs the speed. You will trace energy through a solid by vibration and by free electrons, watch a fluid carry its own energy upwards because heating has made it thinner, work out why a puddle of sweat leaves your skin colder than it found it, calculate a surface area to volume ratio and use it to explain both the fins on a motorcycle engine and the enormous ears of a desert fox, and finish with the two faces of thermal expansion: the one that buckles a bridge and the one that switches an iron off.

Awọn Afojusun

  1. Energy may be transferred by conduction and convection. Students should be able to explain, in terms of particles, how these energy transfers take place. They should understand in simple terms how the arrangement and movement of particles determine whether a material is a conductor or an insulator and understand the role of free electrons in conduction through a metal. They should be able to use the idea of particles moving apart to make a fluid less dense, to explain and apply the concept of convection.
  2. Energy may be transferred by evaporation and condensation. Students should be able to explain evaporation, and the cooling effect this causes, using kinetic theory. Students should be able to discuss the factors that affect the rate of evaporation.
  3. The rate at which an object transfers energy by heating depends on: its surface area and volume; the material from which the object is made; the nature of the surface with which the object is in contact. Students should be able to explain the design of devices in terms of energy transfer, for example cooling fins, and should be able to explain animal adaptations in terms of energy transfer, for example relative ear size of animals in cold and warm climates.
  4. The bigger the temperature difference between an object and its surroundings, the faster the rate at which energy is transferred by heating.
  5. Most substances expand when heated. Students should understand that the expansion of substances on heating may be a hazard (for example, the expansion of roofs and bridges) or useful (for example, the bi-metallic strip thermostat).

Àwòrán ọpọlọ

A ti ṣe àwòrán kókó yìí kí o lè rí bí àwọn èrò ṣe so pọ̀.

Ṣí àwòrán ọpọlọ nínú áàpù

Akọ̀wé Ẹ̀kọ́

Your skin has no sense that reports temperature. What it reports is the rate at which energy leaves it or arrives in it, which is a different quantity altogether. Grip a metal latch at 2 °C and energy pours out of your fingers, because the metal accepts it as fast as your hand can supply it and carries it away into the gate. Grip a wooden post at the same 2 °C and the wood takes energy from a thin surface layer, warms there, and then more or less stops. The temperature is a tie. The rate is not close.

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Oriire fun ipari ẹkọ lori Energy Transfers And Particle Motion. Ni bayi ti o ti ṣawari naa awọn imọran bọtini ati awọn imọran, o to akoko lati fi imọ rẹ si idanwo. Ẹka yii nfunni ni ọpọlọpọ awọn adaṣe awọn ibeere ti a ṣe lati fun oye rẹ lokun ati ṣe iranlọwọ fun ọ lati ṣe iwọn oye ohun elo naa.

Iwọ yoo pade adalu awọn iru ibeere, pẹlu awọn ibeere olumulo pupọ, awọn ibeere idahun kukuru, ati awọn ibeere iwe kikọ. Gbogbo ibeere kọọkan ni a ṣe pẹlu iṣaro lati ṣe ayẹwo awọn ẹya oriṣiriṣi ti imọ rẹ ati awọn ogbon ironu pataki.

Lo ise abala yii gege bi anfaani lati mu oye re lori koko-ọrọ naa lagbara ati lati ṣe idanimọ eyikeyi agbegbe ti o le nilo afikun ikẹkọ. Maṣe jẹ ki awọn italaya eyikeyi ti o ba pade da ọ lójú; dipo, wo wọn gẹgẹ bi awọn anfaani fun idagbasoke ati ilọsiwaju.

  1. Why is copper a much better thermal conductor than plastic? A. The particles in copper are further apart B. Copper contains free electrons that can move through it and transfer energy by collision C. Copper particles are heavier, so they vibrate more slowly D. Copper allows convection currents to form inside it Answer: B
  2. A solid metal cube has sides of 3.0 cm. What is its surface area to volume ratio? A. 0.50 per cm B. 2.0 per cm C. 27 per cm D. 54 per cm Answer: B
  3. Warm water at the bottom of a beaker rises. Why? A. Its mass decreases when it is heated B. Its particles expand when they are heated C. It expands, so its density becomes lower than that of the water around it D. Free electrons carry it upwards Answer: C
  4. Why does a liquid cool down as it evaporates? A. All the particles in the liquid slow down as some escape B. The particles that escape are the fastest ones, so the average kinetic energy of those remaining falls C. Energy is destroyed when a particle leaves the liquid D. The liquid loses mass, and less mass always means a lower temperature Answer: B
  5. A bimetallic strip made of copper joined to iron is heated. Which statement is correct? A. The strip stays straight because the two metals are joined B. The strip bends with the copper on the inside of the curve C. The strip bends with the copper on the outside of the curve, because copper expands more than iron D. The strip breaks apart because the two metals expand by different amounts Answer: C

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