ALL CIE PHYSICS DOUBTS HERE !!!

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Thankx
and S09 Q29 if you may please?

[TJ-56]

Why is the answer A?

Momentum before = momentum after so:
mv - mv = 2mV ( the negative sign is given due to the 2 trolleys moving in opposite directions ) so
60m - 40m = 2mV (V is the speed of the 2 together, and the masses are added because they are taken as 1 trolley now)
so simplified would give 10 cm/s

[Hypernova]

Help with S09 Q29 and S08 Q26 please

S09 P1 Q29

The electron has kinetic energy = 1/2 m v²

We know that the electron travels a distance x, then stops. This means that the it lost its kinetic energy since velocity changed from something to zero.

The loss in Ke should equal the work done on the force.

F x X = 1/2 x m x v²          E = F/e
                                   F = Ee  so...
EeX = 1/2 x m x v²
  X = m x v2
        2Ee

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S09 P1 Q29

The electron has kinetic energy = 1/2 m v²

We know that the electron travels a distance x, then stops. This means that the it lost its kinetic energy since velocity changed from something to zero.

The loss in Ke should equal the work done on the force.

F x X = 1/2 x m x v²          E = F/e
                              F = Ee  so...
EeX = 1/2 x m x v²
  X = m x v2
        2Ee

+rep

[Dania]

Momentum before = momentum after so:
mv - mv = 2mV ( the negative sign is given due to the 2 trolleys moving in opposite directions ) so
60m - 40m = 2mV (V is the speed of the 2 together, and the masses are added because they are taken as 1 trolley now)
so simplified would give 10 cm/s

Thank You!

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W08 P1 Q 10, 27, 31, 36, 37 please

Sorry for all my questions!

[TJ-56]

W08 P1 Q 10, 27, 31, 36, 37 please

Sorry for all my questions!

Q10

Relative speed of approach = relative speed of separation
u1 + u2 = (-)v1 + v2
so:
u1+ u2 = v2 - v1 rearranged (v1 i given a negative sign due to its direction)

Q27

Between 2 maxima is 15 mm , so wavelength = 2 * 15 * 10^-3  (remember its a stationary wave)
so speed c = 3 * 10⁸
c=f * lambda
and f = c/wavelength
we have the 2 values required, so the frequency is calculated as 1 * 10¹⁰

Q31
Wire p has twice the diameter, not twice the area, its quadruple the area because the diameter is squared,
current I=V/R V is constant, so its a ratio of resistances, which is 4 to 1

Q36
Looked confusing to me at first, but turned out to be rly easy:
V=IR
V=7.5 (1.5 volts are lost to internal resistance)
R=15
Go for I to give 7.5/15
which is 0.5A

Q37

If we have the emf of cell E2, we could calculate pd per unit length along XY.
Im still not completely sure why i cant be response A, but B made much more sense.

Hope that helped.

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Q10

Relative speed of approach = relative speed of separation
u1 + u2 = (-)v1 + v2
so:
u1+ u2 = v2 - v1 rearranged (v1 i given a negative sign due to its direction)

Q27

Between 2 maxima is 15 mm , so wavelength = 2 * 15 * 10^-3  (remember its a stationary wave)
so speed c = 3 * 10⁸
c=f * lambda
and f = c/wavelength
we have the 2 values required, so the frequency is calculated as 1 * 10¹⁰

Q31
Wire p has twice the diameter, not twice the area, its quadruple the area because the diameter is squared,
current I=V/R V is constant, so its a ratio of resistances, which is 4 to 1

Q36
Looked confusing to me at first, but turned out to be rly easy:
V=IR
V=7.5 (1.5 volts are lost to internal resistance)
R=15
Go for I to give 7.5/15
which is 0.5A

Q37

If we have the emf of cell E2, we could calculate pd per unit length along XY.
Im still not completely sure why i cant be response A, but B made much more sense.

Hope that helped.

Thank you that did help a lot
I just have a few questions

For Q10, why cant we say u₁ + -u₂ = v₁ + v₂

[TJ-56]

Thank you that did help a lot
I just have a few questions

For Q10, why cant we say u₁ + -u₂ = v₁ + v₂

Well the original equation is
u₁ - u₂ = - (v₁ - v₂)  Which is derived by using both the principle of conservation of momentum and energy, where it is assumed all directions are the same (for example both to the left before and both with velocities to the left after)
since u1 and u2 are in different direction , its now u1 -  -u2, which is u1 + u2
and on the right hand side, -(v1 -v2) which is v2 - v1
Thats all there is to it i guess, hope that cleared it up.

[Hypernova]

Q37

If we have the emf of cell E2, we could calculate pd per unit length along XY.
Im still not completely sure why i cant be response A, but B made much more sense.

Hope that helped.

Q37)

The potentiometer!!

In this circuit,

E₂ = E₁ x resistance of XT
            resistance of XY + R


since the galvanometer is reading a null result, we know that the pd across XT is equal to E₂.
The galvanometer is basically an ammeter. 0 amps means 0 p.d which means that the p.d across XT exactly nullifies the emf produced by E₂

So we know the length of XT. All we need is E₂ and divide it by the length to find its pd per length.

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Q37)

The potentiometer!!

In this circuit,

E₂ = E₁ x resistance of XT
            resistance of XY + R


since the galvanometer is reading a null result, we know that the pd across XT is equal to E₂.
The galvanometer is basically an ammeter. 0 amps means 0 p.d which means that the p.d across XT exactly nullifies the emf produced by E₂

So we know the length of XT. All we need is E₂ and divide it by the length to find its pd per length.

Thank you that helped

Well the original equation is
u₁ - u₂ = - (v₁ - v₂)  Which is derived by using both the principle of conservation of momentum and energy, where it is assumed all directions are the same (for example both to the left before and both with velocities to the left after)
since u1 and u2 are in different direction , its now u1 -  -u2, which is u1 + u2
and on the right hand side, -(v1 -v2) which is v2 - v1
Thats all there is to it i guess, hope that cleared it up.

Many thanks that helped a lot

+rep both

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S08 Q 24, 29, 32, 34 please

[thecandydoll]

W09 VARIANT 11 P1 PHYSICS.
Q15

[thecandydoll]

may/june 2009
20/21

I dont get it

[thecandydoll]

wrong questions.

http://www.xtremepapers.net/CIE/International%20A%20And%20AS%20Level/9702%20-%20Physics/9702_w09_qp_11.pdf


Q15