Physics (Projectile motion) (1 Viewer)

atar90plus

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Hello

Could you guys please help me with these questions. I tried to do them but I did not get the correct answer. Please show full working and correct answer

1. A cannon ball fired at an unknown velocity (v) at an angle of 30 degrees from the horizontal. It reaches a maximum height of 490m.
a) Determine the initial velocity of the cannon ball?

For my working out I found that Ux=490cos30 = 424.35 and Uy = 490sin30 =245. Then I used u^2=v^2+2as to find the initial velocity
I just guessed this question so I believe I done it wrong

6. A cannon ball fired at an angle of 25 from the horizontal in the air for 16 seconds before falling back to the ground. What was its original speed?


The correct answers for Q1 a) is 196m/s and Q6 is 185.8m/s
 
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someth1ng

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For question 1, I got 61.98ms-1 at 30 degrees against the horizontal. Is this correct?

v=u+at and s=ut+.5at^2 [use the notation in the exam]

v=u+at
0=u-9.8t
.'. u=9.8t

s(vertical)=u(vertical)t+.5at^2
490=9.8t^2+.5(-9.8)t^2
490=4.9t^2
t=10 seconds

Back to the v=u+at (vertical velocity)
0=u(vertical)-9.8*10
u(vertical)=98ms-1

v=98/sin30 ms-1
v=196mx-1(2sf)
 
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someth1ng

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For question 6, I got 185.51ms-1 at 25 degrees against the horizontal. Is this correct?

s=ut+0.5at^2
0=ut+0.5(-9.8)t^2

Since t does not equal to 0, t can be factorised out.

.'. 4.9t=u(certical)
u(vertical)=4.9x16
u(vertical)=78.4ms-1

v=78.4/sin25
v=185.51ms-1
 
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atar90plus

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I think so. For Q6 the answer is 185.8m/s and for Q1 the answer is 196m/s. The decimal point is a bit off so I am not sure. Could you please post the working out and solution please
 
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bleakarcher

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Hello

Could you guys please help me with these questions. I tried to do them but I did not get the correct answer. Please show full working and correct answer

1. A cannon ball fired at an unknown velocity (v) at an angle of 30 degrees from the horizontal. It reaches a maximum height of 490m.
a) Determine the initial velocity of the cannon ball?

For my working out I found that Ux=490cos30 = 424.35 and Uy = 490sin30 =245. Then I used u^2=v^2+2as to find the initial velocity
I just guessed this question so I believe I done it wrong

6. A cannon ball fired at an angle of 25 from the horizontal in the air for 16 seconds before falling back to the ground. What was its original speed?


The correct answers for Q1 a) is 196m/s and Q6 is 185.8m/s
I'll do a).

a) v(y)^2=u(y)^2+2a*s(y)=(v*sin(30))^2-2g*s(y)
When s(y)=490, v(y)=0, => v^2/4=2g*490
i.e. v=196 m/s taking g=9.8 m/s^2
 

someth1ng

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I think so. For Q6 the answer is 185.8m/s and for Q1 the answer is 196m/s. The decimal point is a bit off so I am not sure. Could you please post the working out and solution please
I think they didn't use exact values for that one.
 

atar90plus

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I believe you done question 6 correctly. But for question one you did it wrong. Could you please post up the working out and solution for question 6 please
 

atar90plus

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Ok. Thanks guys for your help. Now hopefully I can do the rest of the questions in my homework sheet
 

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