Mathematics: Post your doubts here!

[yubakkk]

|z| < |z − 2 − 2i| how to plot this in argand diagram??
please help me with expalanation

 

[redapple20]

In Nov o2 ppr 3 Q.8a plx sum1 tel me y is the value of a is not negative but positive?

 

[aliya_zad]

|z| < |z − 2 − 2i| how to plot this in argand diagram??
please help me with expalanation

Hope this helps!!

 

[Helpneeded007]

4(ii)
Friction = u*R
4cos(30)=u*[10-4sin(30)]
u=[4cos(30)/8]=0.433

5(ii)
As B continues to move for 0.3 sec , surely after those 0.3 sec B's velocity would be zero
so V=U+at
O=U -10*0.3
U=3
"3" is the speed with which A hits teh floor
So,
2as=V^2-U^2
2*2*s=3^2-O^2
s=2.25

Hope u got them

Yea got it.Thx alot man.1 more thing i actually meant 4(i) and not 4(ii) so could you tell Me how to find the value of C please.

 

[kagome]

M/J 2010 P32 Q 8(ii). How to do?? Thx...

 

[bamteck]

Please help me with the following AP questions :
1. Find the sum of all integers from 1 to 200 that are divisible by 7.
2. Find the sum of all integers from 1 to 200 inclusive that are not multiples of 5.
3. Find the sum of all multiples of 5 between 100 and 300 inclusive.
4. In a arithmetic progression of 25 terms, the 10th term is 23 and that the sum of the last 10 terms is 440. find the sum of the first 10 terms.

 

[Hassi123]

Help in mechanics!!!!!!! oct/nov 2008 q1 ii
http://www.xtremepapers.com/papers/...AS Level/Mathematics (9709)/9709_w08_qp_4.pdf
Please explain working!!

 

[hm12]

http://www.xtremepapers.com/papers/...S Level/Mathematics (9709)/9709_s10_qp_43.pdf
please explain question 7

 

[anonymous123]

9709 w07 qp 4
Q3 part ii
how do u find the ans directly? cant understand the concept behind it

plz?

 

[hm12]

This thread was quite helpful during P1 prep but i see no one helping quite a lot for M1 please someone who is good at mechanics help there are so many ppl with problems

 

[princesskt]

7i box remain at rest when <3150 sofriction component=3150
R=weight =4500 mew=3150/4500 0.7
ii)for no sliding friction component m ust be>ma
.2*2000>200 a
iii) P-F=MA
P-(0.7*4500)=450*2
a=2 used becoz no sliding

 

[princesskt]

This thread was quite helpful during P1 prep but i see no one helping quite a lot for M1 please someone who is good at mechanics help there are so many ppl with problems

i ans your ques .....................................

 

[hm12]

i ans your ques .....................................

thanks a lot i really appreciate your help

 

[leadingguy]

In Nov o2 ppr 3 Q.8a plx sum1 tel me y is the value of a is not negative but positive?

links wil be appreciated

 

[princesskt]

Help in mechanics!!!!!!! oct/nov 2008 q1 ii
http://www.xtremepapers.com/papers/CIE/Cambridge International A and AS Level/Mathematics (9709)/9709_w08_qp_4.pdf
Please explain working!!

8=underroot of (8sinx)^2+(10-8cosx)^2

solve it i hope this makes it clear.................................................

 

[Hassi123]

8=underroot of (8sinx)^2+(10-8cosx)^2

solve it i hope this makes it clear.................................................

i get it till there i just cant solve this after that, please can you show me the working to it?

 

[Sweet Princess]

Plz help me with these quex...: 9709/04/M/J/04 Q.4(ii) and Q.7(iii)......

 

[leadingguy]

M/J 2010 P32 Q 8(ii). How to do?? Thx...

z = 1 + cos 2θ + i sin 2θ

1 + cos 2θ.... this is the real part of Z

i sin 2θ ..... this is the imaginary part of Z

now for 1/Z

1/(1 + cos 2θ + i sin 2θ ) ........ solving fractions to get ans in frm of x +yi needs the multiplicatioon of numenatr and denominatr by conjugate base.

so nw mutiply by cnjugate base

1*( 1 + cos 2θ - i sin 2θ )/(1 + cos 2θ + i sin 2θ ) *(1 + cos 2θ - i sin 2θ)

( 1 + cos 2θ - i sin 2θ )/(1 + cos 2θ + i sin 2θ ) *(1 + cos 2θ - i sin 2θ) ...... now solve fr the denominator to simplify.

there are more than one method fr simplifiyng the denominator... we wil uise (a)^2 -(b)^2

consider
1 + cos 2θ = a
i sin 2θ = b
now look the denominator .... (1 + cos 2θ + i sin 2θ ) *(1 + cos 2θ - i sin 2θ) = (1 + cos 2θ )^2 -( i sin 2θ)^2

now open the denominator

( 1 + cos 2θ - i sin 2θ )/(1 + cos 2θ )^2 - ( i sin 2θ)^2

( 1 + cos 2θ - i sin 2θ )/ (1 +2cos2θ + cos^22θ) - (-1sin^22θ)

( 1 + cos 2θ - i sin 2θ )/ (1 +2cos2θ + cos^22θ +sin^22θ)


now separate the real and imaginary parts

(1 + cos 2θ)/(1 +2cos2θ + cos^22θ +sin^22θ) - ( i sin 2θ )/ (1 +2cos2θ + cos^22θ +sin^22θ)

real part we get is (1 + cos 2θ)/(1 +2cos2θ + cos^22θ +sin^22θ)

substitute values of θ in this part u wil get the same ans. every time this shows that the real part is constant at every value of θ

 

[princesskt]

i get it till there i just cant solve this after that, please can you show me the working to it?

ok see..........
8^2=64sin^2x+(100-160cosx+64cos^2x)
64=64(cos^2x+sin^2x)+100-160cosx
64=64+100-160cosx
100/160=cosx
cosx=5/8

 

[reina81]

MJ2011 P31 Q10 i, How did they get 2 for the values of A and B when it was split into partial fractions before integrating?

http://www.xtremepapers.com/papers/...S Level/Mathematics (9709)/9709_s11_qp_31.pdf
http://www.xtremepapers.com/papers/...S Level/Mathematics (9709)/9709_s11_ms_31.pdf