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Physics Pp:3-Variant 2- Discussing Answers!!

Did you finish the whole paper in time??

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B333

B333

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It was about how the wavefront in the shallow water changed and you had to give a reason for your answer
 
BumbleBEA

BumbleBEA

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Oh :)

I'm not wholly sure but since there was to visible change, I said that they made the depth of water in both areas equal so that no refraction would take place :p

That was a tough paper... hope I get an A* :D (call me Asian, but yeah ;) )
 
Chucky

Chucky

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BumbleBEA said:
The half life actually IS 1.6 days.

The count rate started at 52, so yes you deduct background radiation which is 14.
52-14=38
The half life of the sample means that the rate count for the radiation emitted by the sample should halve
38/2=19
Thus, you must deduct 19 from the initial count rate of 52, since background radiation is always present
52-19=33
So you find the x-axis equivalent when y=33
It came out to be 1.6 days.

Note: An alternative way would be to add back the background radiation, which is what I did
19+14=33

It comes out to be the same. :)
Click to expand...


yes i know, i forgot to add background radiation back again!
 
B333

B333

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No the refractive index was 1.56
i think it was 1/sin 40 because n=1/sin C and the critical angle was 40
Sorry
 
BumbleBEA

BumbleBEA

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Jay Jun said:
I wrote region P and Q was the same depth for the next page question.


Isn't the refractive index 1.305? n=1/Sin(C)
Click to expand...

No... I don't think so. :(

Refer to my answer to some other person above/in a previous page.

Note:

n=1/sin 40=1.56 (3 significant figures)
 
kboss

kboss

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BumbleBEA said:
Oh :)

I'm not wholly sure but since there was to visible change, I said that they made the depth of water in both areas equal so that no refraction would take place :p

That was a tough paper... hope I get an A* :D (call me Asian, but yeah ;) )
Click to expand...
hi5 again!!!! :p
regarding that asian thing....most of those on XPC are Asians....:p
 
Chucky

Chucky

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Jay Jun said:
I wrote region P and Q was the same depth for the next page question.


Isn't the refractive index 1.305? n=1/Sin(C)
Click to expand...

the index is something around 1.6

refractive index air/refractive index of glass = sin 90/sin 40

since it goes from an optically denser to a medium less dense the equation reverses.

and the reasoning for the region question is correct.
 
J

Jay Jun

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I was using this formula for half life because I thought background radiation was excluded. A=A(o)e^-(ln(2)/half life)(time)
My answer was 3.00998 = 3.01 days
 
B333

B333

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What about the tidal question? What was the quality those stations had to get electricity when the tide is low or something like that?
 
J

Jay Jun

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Chucky said:
the index is something around 1.6

refractive index air/refractive index of glass = sin 90/sin 40

since it goes from an optically denser to a medium less dense the equation reverses.

and the reasoning for the region question is correct.
Click to expand...
The refractive index question, dint they give you a new graph? the angle of incidence was 40
 
BumbleBEA

BumbleBEA

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Chucky said:
yes i know, i forgot to add background radiation back again!
Click to expand...

That's a shame, but I'm sure you'll get some effort marks! :)

I made quite careless mistakes as well. :(

For the lightbulb question, I made it all the way until 40-31.7, and my idiot self calculates wrong and wrote:

40=31.7=9.3 <---FOR THE LOVE OF GOD, WHY?!

Haha... so I put 9. What a shame. :(
 
kboss

kboss

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Chucky said:
the index is something around 1.6

refractive index air/refractive index of glass = sin 90/sin 40

since it goes from an optically denser to a medium less dense the equation reverses.

and the reasoning for the region question is correct.
Click to expand...
yo...where u frm??
 
J

Jay Jun

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B333 said:
What about the tidal question? What was the quality those stations had to get electricity when the tide is low or something like that?
Click to expand...
The generator can turn both ways. (clockwise,anti-clockwise)
 
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