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Last minute preparation on MCQS 9701 and 9702. Discussion here.

Hows the preparation?

  • Awesome. (Y)

  • Yet not started. :P

  • Subtle. :)

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S

Shujaat Khan

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The Sarcastic Retard said:
I dont understand this logic?
How did this clicked to ur mind?
Click to expand...
He might have said it in a bad way, the "period" he found by dividing 0.45/0.3 is the number of cycles in 45cm of line
so 1 cycle= 0.3m
how many cycles in 0.45 m?
you just divide and get 1.5 cycles.
Which equals to 1 complete cycle and 1/2 a cycle

Just draw , you understand it right away
 
The Sarcastic Retard

The Sarcastic Retard

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Shujaat Khan said:
He might have said it in a bad way, the "period" he found by dividing 0.45/0.3 is the number of cycles in 45cm of line
so 1 cycle= 0.3m
how many cycles in 0.45 m?
you just divide and get 1.5 cycles.
Which equals to 1 complete cycle and 1/2 a cycle

Just draw , you understand it right away
Click to expand...
I figured it out something like this, There are two nodes formed at transmitter and at plate. So that is lambda/2 = 0.45. Hence lambda = 0.9m. Also I did, lambda = 3*10^8 / 1 * 10 ^9 = 0.3m.

Therefore 1 antinode in 0.3m so how many in 0.9?
Hence answer is 3.

Is it correct?

Thanks.
 
D

DarkEclipse

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The Sarcastic Retard said:
I figured it out something like this, There are two nodes formed at transmitter and at plate. So that is lambda/2 = 0.45. Hence lambda = 0.9m. Also I did, lambda = 3*10^8 / 1 * 10 ^9 = 0.3m.

Therefore 1 antinode in 0.3m so how many in 0.9?
Hence answer is 3.

Is it correct?

Thanks.
Click to expand...
No, lambda/2 is used for adjacent nodes. The two nodes in the question are not adjacent.
 
D

DarkEclipse

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The Sarcastic Retard said:
View attachment 57324
Click to expand...
Okay, first, you have to realize that X cannot be a cyclic compound. Why? Because the NH group in coniine is the reason the compound is cyclic. In its absence, the compound is a straight chain. Now notice one thing. When 'N' is removed, that leaves two ends, which is originally occupied by the two 'Br' atoms. When you draw X as a straight chain, you'll notice that the 1st Br atom attaches to the first carbon, and the 2nd Br attaches to the fifth carbon. Therefore, the compound is 1,5-dibromooctane.
Here's what I mean (sorry for the crude drawing, I'm not good at Paint):
upload_2015-10-28_17-30-48.png
The Sarcastic Retard said:
my avg score for chem is 31 and for phy is 29
what about u all???
Click to expand...
26 for Physics. Dunno about Chem.
 
saturn21

saturn21

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20151030_164630.jpg

For q29 i chose D don't remember why but the answer is C
I drew the structures..i just wanna know if they are correct

20151030_164630.jpg 20151030_164644.jpg
 
saturn21

saturn21

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Btw guys i found an uncle who solves chem p1 past papers on youtube ... it's Meta Tutor..for me his videos were realllyy helpful
 
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