• We need your support!

    We are currently struggling to cover the operational costs of Xtremepapers, as a result we might have to shut this website down. Please donate if we have helped you and help make a difference in other students' lives!
    Click here to Donate Now (View Announcement)

Mechanics M1: Post your doubt here

AhShun

AhShun

Messages
77
Reaction score
57
Points
28
when i first saw the question,it was very confusing
i drew the graph first
it says 0<t<4 it has an acceleration= +0.75(therefore the gradient of the graph must be positive)==>straight line going up
4<t<54 acceleration= 0(gradient of graph=0)
54<t<60 acceleration= -0.5(gradient negative)==> straight line goes down

I do not know the speed, I put it 'u'

0<t<4
acceleration=gradient
0.75 =(u-0)/(4-0)
u=0.75 x 4
=3
 
AhShun

AhShun

Messages
77
Reaction score
57
Points
28
bamteck said:
no. 4 both part :(
Click to expand...
distance=area under graph for velocity-time graph
=area triangle for 1st 4s + area of rectangle(4<t<54) + area triangle(54<t<60)

If you still don't understand,don't hesitate to ask again;)
 
bamteck

bamteck

Messages
389
Reaction score
202
Points
53
AhShun said:
when i first saw the question,it was very confusing
i drew the graph first
it says 0<t<4 it has an acceleration= +0.75(therefore the gradient of the graph must be positive)==>straight line going up
4<t<54 acceleration= 0(gradient of graph=0)
54<t<60 acceleration= -0.5(gradient negative)==> straight line goes down

I do not know the speed, I put it 'u'

0<t<4
acceleration=gradient
0.75 =(u-0)/(4-0)
u=0.75 x 4
=3
Click to expand...

Yeah, now its clear for me !
Thank you mate :) You are very nice :)
 
GorgeousEyes

GorgeousEyes

Messages
398
Reaction score
685
Points
103
Mr Me said:
A body will have greatest speed when its kinetic energy is highest and kinetic energy will be highest when P.E is lowest. So use mgh = 0.5mv^2. And put the lowest possible value of h i.e 2.45m. For the ii.) part use K.E = P.E lost but use h = 2.45 - 1.2 while calculating P.E because it is the actual height of N from L. Again for iii.) use the K.E that you calculated in ii.) to find out least value of v using the equation k.E = 0.5mv^2. Now I guess you ended up with all correct values.

Please hit the "Like" button if you think I helped you. ;)
Click to expand...
Why Lowest value of H is 2.45 ? isn't it 1.2 ?
 
Mr Me

Mr Me

Messages
41
Reaction score
3
Points
18
GorgeousEyes said:
Jun08 no. 1 ii
no.4 iii
Click to expand...
For 1 ii.) Use a = gSinα and replace the values of a and g then you will get the value of α.
For 4. iii.) Use the equation mgh = 0.5mv^2 and replace the values of m, and v (i.e v = 8 ) and perform the necessary calculations. Then you will get the actual value of h.
 
Asheeta

Asheeta

Messages
39
Reaction score
24
Points
18
bamteck said:
http://www.xtremepapers.com/papers/CIE/Cambridge International A and AS Level/Mathematics (9709)/9709_s11_qp_41.pdf

Please someone help me for no. 5 (ii) (iii) :(
Click to expand...

so in the first part you've already found V i.e the speed at t=600 s and it is 15m/s and T=3600 s
(ii)
so you'll find the sketch attached. AB= (1/2)*(2600+3600)*15 =46500 m
(iii)
from the pic you can see that at v=7.5 m/s there are 2 values of t, t1 and t2.
using (0,0) (t1,7.5) m=0.025, find t1, t1= 300 s
using (3200,15) (t2,7.5) m = -0.0375 find t2, t2 = 3400 s
Hope it helped
 

Attachments

  • Photo0182.jpg
    Photo0182.jpg
    383.1 KB · Views: 6
bamteck

bamteck

Messages
389
Reaction score
202
Points
53
Asheeta said:
so in the first part you've already found V i.e the speed at t=600 s and it is 15m/s and T=3600 s
(ii)
so you'll find the sketch attached. AB= (1/2)*(2600+3600)*15 =46500 m
(iii)
from the pic you can see that at v=7.5 m/s there are 2 values of t, t1 and t2.
using (0,0) (t1,7.5) m=0.025, find t1, t1= 300 s
using (3200,15) (t2,7.5) m = -0.0375 find t2, t2 = 3400 s
Hope it helped
Click to expand...
Thanks Aheeta :)
 
You must log in or register to reply here.
Top