alevel物理-匀加速运动知识点

2024-04-26

来源: 易伯华教育

alevel物理-匀加速运动知识点

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alevel物理-匀加速运动知识点

alevel物理 英国留学 国际课程

Motion I Uniform AccelerationCourse1This Factsheet will cover:1the basic definitions of speed, velocity and acceleration2 the use of the equations of motion for uniform acceleration3 the application of the equations of motion to projectile motion1. Basic ConceptsSpeed and velocity. Speed is the rate of change of distance.The speed of a body at any instant is equal to the magnitude of itsvelocity at that instant. However, this is not generally the case foraverage speed and average velocity. To see why this is, imagine walking 5 m North in 2 s, then 5 m South in 2 s. Since you end up at the point where you started, your overalldisplacement is zero so your average velocity is zero. However, you have travelled a distance of 10 m in 4 s, so your average speed is: 10 /4 = 2.5 ms-1.The average speed will only be the magnitude of the average velocity ifthe body concerned is moving in a straight line, without reversing itsdirection since then, the distance it moves will always be equal to themagnitude of its displacement.2. Equations of motion for uniform accelerationv = u + at u = initial velocityv2 = u2 + 2as v = final velocitys = ut + ½at2 a = accelerations = ½ (u + v)t s = displacement from the starting pointt = time 3. Approach to problems using equations of motion1. Check that the body is moving with constant acceleration!2. Write down any of u, v, a, s, t that you know3. Note down which of u, v, a, s and t that you want (e.g. write a = ?)4. Decide which equation to use by looking at which of the variablesyou have got written down in steps 2 and 3. For example, if youhave got values for u, t and s, and you want a value for v, then youlook for the equation with u, t, s and v in it.5. Substitute the values you know in, then rearrange.6. Check that the answer makes sense.Course2Typical example of MotionExample 1.A particle is moving in a straight line with constant acceleration. It passes point P with speed 2 ms-1. Ten seconds later, it passes point Q. The distance between P and Q is 40 metres. Find the speed of the particle as it passes point Q.We know: u = 2ms-1 s = 40 m t = 10 sWe want: v = ?Since we have u, s, t and v involved, use s = ½ (u + v)tSubstituting in:40 = ½ (2 + v)1040 = 5(2 + v)40 = 10 + 5v30 = 5vv = 6 ms-1Example 2.A particle is moving in a straight line with constant acceleration 0.2 ms-2. After it has moved a total of 20m, its speed is 8ms-1. Find its initial speeda = 0.2 ms-2 s = 20m v = 8 ms-1 u = ?So use v2 = u2 + 2as82 = u2 + 2(0.2)(20)64 = u2 + 856 = u2u = 7.48 ms-1 (3SF)Tips:1. It is usually easier to put the values in before rearranging theequations.2. Take particular care with negative values. On manycalculators, if you type in 22, you will get the answer 4,rather than the correct value of 4. This is because thecalculator squares before “noticing” the minus sign.

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