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Solution to Test Paper 3

From Mechanics

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Solutions
1 (a)	0=245−98tt=98245=25 seconds	(3 marks)
1 (b)	02=2452+2(−98)ss=2452298=30625 mORs=21(245+0)25=30625 m	(3 marks)
1 (c)	61.25 m	(1 marks)
		(7 marks)
2 (a)		(1 marks)
2 (b)	T = 4900 N	(1 marks)
2 (c)	T−4900=50006T=300+4900=5200 N	(3 mark)
3 (d)	4800−4900=500aa=500−100=−02 ms-202 ms−2downwards	(4 mark)
		(9 marks)
3 (a)		(1 mark)
3 (b)	F=21.8=3.6 N	(2 marks)
3 (c)	R=29.8=19.6 N	(2 marks)
3 (d)	4800−4900=500aa=500−100=−02 ms-202 ms−2downwards	(3 marks)
		(8 marks)
4 (a)		(1 mark)
4 (b)	R+Tsin30=2009.8R+0.5T=1960R=1960−0.5T	(3 marks)
4 (c)	F=Tcos30Tcos30=0.6(1960−0.5T)T(cos30+0.3)=1176T=1176(cos30+0.3)=1010 N	(4 marks)
		(8 marks)
5 (a)	5i−2j=4i+3j+10aa=110(i−5j)=0.1i−0.5j ms-2AG	(3 marks)
5 (b)	r=(4i+3j)t+0.5(0.1i−0.5j)t2	(2 marks)
5 (c)	r=(4t+0.05t2)i+(3t−0.25t2)j3t−0.25t2=0t(3−0.25t)=0t=0 or t=30.25=12 st=12 s	(3 marks)
5 (d)	v=(4+0.1t)i+(3−0.5t)j3−0.5t=0t=6 s	(3 marks)
		(11 marks)

AG: Answer Given in Question – Working must justify answer.

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