Author Topic: All Mechanics DOUBTS HERE!!!  (Read 97913 times)

Offline hesho21

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Re: All Mechanics DOUBTS HERE!!!
« Reply #75 on: May 17, 2010, 02:20:08 pm »
Guys plz question no.3 in the attached paper here . It made me madd!! Thanx in advance

nid404

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Re: All Mechanics DOUBTS HERE!!!
« Reply #76 on: May 17, 2010, 02:46:08 pm »
Here you go....

Since the system is in equilibrium, the sum of horizontal components should be equal to zero.
That is

W2sin60o- W1sin40= 0   Call this eq 1

The sum of vertical components should also be zero         
W1cos40+ W2cos60 - 5N= 0                            Call this eq 2

Now you rearrange eqn 1 to get either W1 in terms of W2 or the other way round. I'll go with the first

Eq 1 W2sin60o= W1sin40
W1=W2sin60o/ sin40

Substitute W1 in eqn 2

W2sin60o/ sin40 (cos 40)  + W2cos60= 5
 1.53 W2= 5
  W2=3.26N

Now substitute the value of W2 in eq 1

W1sin40= 3.26 sin 60
W1=4.4N




Offline immortal

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Re: All Mechanics DOUBTS HERE!!!
« Reply #77 on: May 17, 2010, 06:23:09 pm »
Ur method is confusing,what happens if dey r not in equilibrium ???
By the way is it ok 2 solve this using da data 2 form a triangle.
V wud get   5/sin80=W1 /sin60=W2/sin40.
Life is short...so live it to da fullest :)

nid404

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Re: All Mechanics DOUBTS HERE!!!
« Reply #78 on: May 17, 2010, 06:25:47 pm »
You can use the triangle method too...

Offline hesho21

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Re: All Mechanics DOUBTS HERE!!!
« Reply #79 on: May 17, 2010, 07:56:27 pm »
Thanks sooo much that really helped  :D and ure explanation was great, good luck :D

Offline solo_G

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Re: All Mechanics DOUBTS HERE!!!
« Reply #80 on: May 17, 2010, 11:20:31 pm »
okay guys i have a doubt but its for cambridge M1..its from nov 09 varient one.....Qs 6 part (iii)........i cant get why was U substituted as -2 in the equation s=Ut+1/2 at*2?! can someone explain the entire question cuz i keep getting the required time in negative....i would appreciate any help.thanx in advance
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Offline astarmathsandphysics

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Re: All Mechanics DOUBTS HERE!!!
« Reply #81 on: May 17, 2010, 11:24:38 pm »
Something wrong with that entire paper. My copy too. Just picures with no questions

Offline solo_G

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Re: All Mechanics DOUBTS HERE!!!
« Reply #82 on: May 17, 2010, 11:33:15 pm »
Something wrong with that entire paper. My copy too. Just picures with no questions
sorry about that.....imma upload another copy
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Offline solo_G

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Re: All Mechanics DOUBTS HERE!!!
« Reply #83 on: May 17, 2010, 11:43:12 pm »
sorry people but i have another doubt...its from CIE nov 08...the first question part (i) and part (ii).....i know its just a two marks question but its driving me crazy.....thanks in advance.
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Offline astarmathsandphysics

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Re: All Mechanics DOUBTS HERE!!!
« Reply #84 on: May 17, 2010, 11:59:39 pm »
Will try to answer it 1st thing in morning. To bed now

Offline hesho21

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Re: All Mechanics DOUBTS HERE!!!
« Reply #85 on: May 18, 2010, 12:06:38 am »
So for the 8N force
parallel to the 10 N force u have 8cos(theta)
perpendicular to the 10N force u have 8sin(theta)

Now u want to find the resultant
(a) parallel to the 10 N force ==> 10-8cos(theta)
(b)perpendicular is just 8sin(theta)

Hope it helped

Offline solo_G

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Re: All Mechanics DOUBTS HERE!!!
« Reply #86 on: May 18, 2010, 12:34:43 am »
So for the 8N force
parallel to the 10 N force u have 8cos(theta)
perpendicular to the 10N force u have 8sin(theta)

Now u want to find the resultant
(a) parallel to the 10 N force ==> 10-8cos(theta)
(b)perpendicular is just 8sin(theta)

Hope it helped
aha .....that was helpful hesho21.....i got it now....makes sense ;D thanks man!
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Offline falafail

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Re: All Mechanics DOUBTS HERE!!!
« Reply #87 on: May 18, 2010, 12:42:34 am »
sorry people but i have another doubt...its from CIE nov 08...the first question part (i) and part (ii).....i know its just a two marks question but its driving me crazy.....thanks in advance.

(i)(a) you have to resolve the forces horizontally, so its 10 - 8cos?
(i)(b) you have to resolve the forces vertically, so it's 8sin?

(ii) the x-component squared + the y-component squared will = the resultant squared.
(10 - 8cos?)2  +  (8sin?)2  =  82
then just simplify and you'll get cos? = 5/8

Offline solo_G

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Re: All Mechanics DOUBTS HERE!!!
« Reply #88 on: May 18, 2010, 12:57:21 am »
(i)(a) you have to resolve the forces horizontally, so its 10 - 8cos?
(i)(b) you have to resolve the forces vertically, so it's 8sin?

(ii) the x-component squared + the y-component squared will = the resultant squared.
(10 - 8cos?)2  +  (8sin?)2  =  82
then just simplify and you'll get cos? = 5/8
yeah falafail.....i got it and i did the last question just like you said....thanks for replying ...ehm ehm i wana ask smthn else....in nov09 varient 1 question 6 part(iii).......can u explain?!
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Offline falafail

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Re: All Mechanics DOUBTS HERE!!!
« Reply #89 on: May 18, 2010, 01:28:00 am »
yeah falafail.....i got it and i did the last question just like you said....thanks for replying ...ehm ehm i wana ask smthn else....in nov09 varient 1 question 6 part(iii).......can u explain?!
right okay,
so in part (ii) you found the height above the ground of P and Q, and their speed, when the string breaks.
that's sP= 3 m, sQ= 7 m, and their speed is 2 ms-1.
you use the equation s = ut + 1/2 at2, except here they're accelerating due to gravity only so a=10
so for P:
3 = 2t + 1/2 (10)t2
solving for t you get t = 0.6 or t = -1 (obviously the second is invalid)
for Q:
7 = -2t + 1/2 (10)t2
here it's -2 because it's in the opposite direction to P. remember this is velocity, you have to take into consideration the speed AND the direction.
so yeah, solve for this one you get t=1.4 or t=-1

1.4 - 0.6 = 0.8