You can avoid the systematic error by using a better electromagnet which does not retain magnetism when turned off and random errors by keeping your eye level perpendicular to point of reading, along with using a metre ruler with low uncertainty.

with u man🤣🤣🤣🤣🤣

REALLL 😭🙏🏻🙏🏻

Mayur Which degree is that?

GCSE and A Level Physics Online can you please send me the table of your results to compare against mine also your graph which is fully plotted. This would be very much appreciated

@@abdirahman4642 lmao nice try

still need help?

I think hes using the light gate as a stopwatch to then plot a graph with x axis as time

So basically the graph will work out the acceleration for you because youre seeing the change in velocity (S/T) -y axis by the time (T) - x axis

No he mentioned that the distance 'x' was to reach the terminal velocity, so meaning there wont be a change in speed anymore. So using v2 = u2 + 2as wouldnt be useful. The point of the light gate is to act as a timer between the point at which it reached TermV and the point it reaches the Bottom

Sorry bud, but this does not work as V is a variable whose value we cannot calculate instanteously. Rather, we must use S = ut + 1/2at^2 assuming that u is 0 and that you know the displacement S.

They licensed some of my videos for their physics content!

Ah V I have! In the video description there is a link to all the required practicals for AS.

i'm going through a unit 1 physics paper and there's a question on practicals! for unit 1, will they only ask questions on the core practicals listed on your site?

this is for the IAL spec btw, I thought practical questions are supposed to be on unit 3 but they're appearing on unit 1?

You have to know the core practicals - these are slightly different for each exam board so make sure you read the specification thoroughly. But they could throw in a few other practicals - but these will be about something you will have learnt about and will be about your ability to answer practical questions or interpret data.

You dropping from distance you can do I think but you have to measure time them

And ik I'm late

Quiet smelly poo

😂thanks for the reply even tho my exams were 2 years ago😂😂

It's 0 because it starts at rest

@@amirpenkar947 no because then 2u=0 which isnt the case for this mans graph

make sure the stand cannot topple over by clamping it securely

also make sure you are measuring distance between the two lightgates from eye level .

Since the initial time doesn't start until it passes through the first gate, that is our initial reference point sonthatbis what we consider to be u. V=0 at some negative time before u

@@markm4952 so how would we find u?

it s easiest if it is zero because then in the equation you can have u (initial velocity) as 0

No my friend. As long as you have got a value for the initial velocity and the final velocity, you are able to work out the acceleration using the time and the distance between the light gates.

I think it's more more likely to stay on the electromagnet.

No 2s/t cannot reach 0, hence why the graph does not start from the origin.

he multiplied everything by 2

he got rid of the 1/2 so he needed to times everything by 2

he multiplied everything by 2 to get 2s because the graph plots 2s/t

"U" will be zero as the object starts from rest, so no

Seems good enough

I did better with a rock and 3 rulers. Bitch

Bro I got -0.5

I got 8.8🤧🤧🤧

NO WAY I GOT 14.62 LOL. I’m 7 years late though

Umamah Rehman This is just one way of doing it, so that the gradient is exactly equal to the acceleration due to gravity.

OK that makes sense. Do we need to know why the formula is arranged in this particular way? Also, we don't need to find u for this version of the experiment, do we? As long as distance x is constant, u shouldn't affect the results?

Umamah Rehman That’s correct. You don’t have to remember why the formula is like that, but it is something you should be able to follow.

Thank you very much for helping out!

So it dosent roll off or bounce when it hits the floor

You lower the bottom light gate. The top light gate, closest to the electromagnet, must be at a fixed distance from the drop height the entire time. So 'x' is kept constant.

ARYAN DHAKA No, because the initial velocity 'u' is taken to be the velocity of the object at the instant it passes through the top light gate, not the instant the object is dropped (in which case, 'u' would indeed be zero as it would be dropped from rest).

Cosmin Covrig depends exactly what version of the experiment you do. Many of them don't require the initial speed part of the equation since you don't have initial speed to take into account, in which case t^2 against h is fine, the graph should pass through the origin and the gradient is equal to 2/g. As I say, it really does depend which version you're doing as to what data you need to take into account.

Because you're plotting 2s/t (on the y axis) against t (on the x axis) so you make 2s/t the subject

I think it is because we want the acceleration to be the GRADIENT of the graph. That would not be the case if acceleration was on one of the axes. It just so happens that when you plot a graph of 2s/t (which is in itself a totally abstract concept) against the time, then the gradient equals the acceleration, which is precisely what we are trying to find in this experiment to determine the value of g. I hope I'm right?

it is the initial velocity, so it is easiest if you drop the ball just above the light gate so it is zero

he divided the whole equation by t

He corrected it afterwards anyway.