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Thank you soo freaking much , this helped me out a lot :***
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Physics: Post your doubts here!
- Thread starter XPFMember
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Thank you soo freaking much , this helped me out a lot :***
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19)
Click here for solution
34)
Click here for solution
35)
What are you not getting in this ?
First resistance lagaya and realy switch close kiya...
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guyz need help 
http://papers.xtremepapers.com/CIE/...nd AS Level/Physics (9702)/9702_s12_qp_11.pdf
8, 12, 17, 18, 24, 34, 35
http://papers.xtremepapers.com/CIE/...nd AS Level/Physics (9702)/9702_s12_qp_11.pdf
8, 12, 17, 18, 24, 34, 35
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8)guyz need help
http://papers.xtremepapers.com/CIE/Cambridge International A and AS Level/Physics (9702)/9702_s12_qp_11.pdf
8, 12, 17, 18, 24, 34, 35
okay, the equation we consider here is → s = 1/2 * g * t^2
When time = T, the dist = s.
However when the time = 0.5 T →time^2 = (0.5 T)^2 →0.25 T
So, the dist is proportional to the square of time.
Thus, when the time reduces to half its original value, dist reduces to 1/4th its original value.
So, the dist covered in time = 0.5T = 0.25L.
Ans = B
12)
we'll take this problem in terms of the forces acting on the barrel and the man
for the barrel: the force due to the barrel - the tension in the rope(T) = ma (because the barrel move's down, the force due to the barrel is greater than the tension)
(120*10) - T = 120a (we dont know the acceleration of the man and the barrel)
for the man: the tension (T) - the force due to the man = ma
T - (80*a) = 80a
find the value of a using simultaneous equations, which is 2 ms^-2
using v^2=u^2 + 2as
find the final velocity of the man at 9 m, taking u as 0 ms^-1
17)
F=α*V2
so
α=F÷(v2)
α=800÷20=2kg.m−1
P=W÷t=(F*d)÷t=F*v
F=(2kg.m−1)×(40m.s−1)2=3200N
and finally
P=40m.s−1*3200=128000Watts=128KW
18)
Efficiency is given by (Useful Output Work)/(Total Input Energy) =
(Useful Output Work per Second)/(Total Input Energy per Second)
The useful output work per second = useful power output = 150 * 10^3 Joules Per Second.
Therefore, Efficiency = (150 * 10^3 Joules/Second)/(Total Input Energy per second)
Every hour, 20 liters of fuel are consumed. Therefore, every second, 20/(60 * 60) liters of fuel are consumed.
The energy in these liters is equal to [20/(60 * 60)] * 40 * 10^6 Joules.
Therefore, the efficiency is equal to
(150 * 10^3)/[20/(60 * 60)] * 40 * 10^6 = (150 * 10^3 * 60 * 60)/(20 * 40 * 10^6) = B.
24)
http://www.s-cool.co.uk/a-level/phy...finitions-of-stress-strain-and-youngs-modulus
We know that E is inversely proportional to the area, and directly proportional to the length.
Now, when we increase the length to 3L, the extension also increases 3 times → 3x.
But becoz we increase the diameter to 2D, we have increased the area by 4 times. A = π(d/2)^2 → A is now 4A.
And since extension is INVERSELY proportional to area, the extension now falls → x/4
So, the new wire's extension = 3x/4
Ans = B
34)
35)
When the switch S is closed, a current is allowed to flow through the circuit. When the current flows through the circuit, a potential difference is produced across the resistor R. This means that energy is lost in the resistor.
Also, when current goes through the internal resistance of the battery, energy is lost in that internal resistance. Therefore, some of the battery's energy and potential difference is lost in the battery itself.
However, we have to remember the definition of e.m.f - it is the total work done by the battery in driving one coulomb of current around the complete circuit. This work includes the work done by the battery in pushing the current through the internal resistance also, and it is equal to the voltage across the battery when the circuit is not closed (if you put a voltmeter across the battery when the switch S is open, the voltage measured is the rating of the battery AND the e.m.f. value).
Suppose you take internal resistance and separate it from the cells in the battery, then the energy lost in the internal resistance + the energy lost in resistor R is still equal to the e.m.f.
Remember, e.m.f. is the work done by the cells in the battery to push one coulomb through the complete circuit. They will do the same work whether there is internal resistance or not, so the e.m.f. does not change in the circuit because the cells can be assumed to be separate from the internal resistance.
So, A and B are eliminated; e.m.f. does not change at all.
But because a battery = cells + internal resistance, when S is closed, current flows through the circuit and energy is lost in the internal resistance. Also, there is a loss in potential across the internal resistance, so there is a loss in potential across the battery. Therefore, the potential across the battery changes because energy is lost in the internal resistance = C.
Note: if energy is lost in any resistance, it is because work is done against that resistance (suppose you are pushing a box on the ground, friction is the resistance, and you need to do some work against that friction resistance. Your muscles are the potential pushing the current, and some of that energy is lost when you work against friction).
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B eh?
this is how i got
power= Fv
total force is 1000 + (1000*10)
so power is 11000*0.5
5.5kw
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Yup the same way I got . _ .
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the force 'wheel friction' is constant from the graph i can tell its 8kN
and so at speed 200 the wheel friction is still 8kN and the rest is wind resistance
so 40-8=32kN is wind resistance
32/8=4
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the resistive force at speed 0 is the wheel friction, from the graph it is seen that this is 8 kn, since wheel friction is constant at 8 kn, 32(40-8) kn must be the magnitude of wind resistance, thus ratio is 32/8 = 4
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http://papers.xtremepapers.com/CIE/...nd AS Level/Physics (9702)/9702_s13_qp_11.pdf
Explain question 8 please
Explain question 8 please
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Answer is A as when displacement from mean point is max kinetic energy is zero so zero velocity, and at mean point kinetic energy is max so max Velocity.... This concept is of A2 of simple harmonic motion so might be hard to grasp...
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well distance travelled by the goods tain is S=vt, so S=10t
distance travelled by the express train s=ut+.5at^2, so s=.5(.5)t^2
when both trains meet distance and time willbe same so equate the equations 10t=.25t^2
and t = 40s
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The instantaneous velocity (at any instant, instead of an average) of any moving object is equal to the rate of change of displacement.
In this case, the displacement is only along one axis, the up-down (vertical) axis. Therefore, the only measurements needed to qualify the displacement are the magnitude of the displacement and the sign (if the object moved in 3 dimensions, we'd need a vector arrow. Here, the object moves in only 1 dimension so we do not need that).
So, the instantaneous velocity of the object is simply equal to the gradient of the displacement-time graph.
Take a look at the graph they have given for displacement versus time - initially, at the very beginning, the gradient is zero, i.e. the gradient is a flat line. Therefore, the displacement is barely changing with time at t = 0. This means that the velocity of the object at t = 0 is also zero.
This narrows the answer down to A, C or D. Let's look closer at the curve.
After the initial moment, the displacement is negative but the gradient slowly becomes more and more positive - that means the object is moving upwards, which is a positive velocity (since upwards is arbitrarily given the positive direction). So, since the gradient is positive and the change in displacement is upwards, the speed just after t = 0 is also positive (and upwards). Let's move on.
At the second scale-bar on the time axis, you can see on the displacement graph that the gradient becomes zero; this means that the velocity also becomes zero, which means that at the second bar on the time axis the velocity must be zero. This still doesn't get us any further, so we'll go a last bit along the time axis.
Right after the flat-line at the second bar on the time axis, we see that the gradient on the displacement-time graph becomes negative, i.e. the displacement becomes more negative than before. So, the velocity right after the second bar must also be negative. The only option that has a negative velocity after the second bar (from A, C and D) is A, our final answer.
Hope this helped!
Good Luck for all your exams!
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Answer is D... as From the law of conservation OF momentum we will get the final speed when objects combine, that is 2 ms^-1,
Now,
final kinetic of the system is (.5)(1+2)(2)^2= 6 J
Initial K.E= .5(2)(3^2)= 9J
By subtracing we will get change that is 3 J...
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I don't understand it.
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Thanks, but how did you get the combined speed as 2 ?
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Thankyouuu