damo676767
Member
7 a i
does any one have that question/ the answer
any help would be grealty appreaciated
does any one have that question/ the answer
any help would be grealty appreaciated
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question from catholic trail 05 (1 Viewer)
- Thread starter damo676767
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evette13
Member
Yes, the projectile one?
evette13
Member
q7ai is the easy part...do u mean 7b?
damo676767
Member
the simple harmonic one
at some point we had to convert an equation with both sin and cos in it, in to just cos
at some point we had to convert an equation with both sin and cos in it, in to just cos
evette13
Member
Thats question 6 a:
"a partivle is performing SHM about a fixed point O on a straight line. At time t seconds it has displacement x metres from O gien by x= cos2x-sin2t
i) Express x in the form Rcos(2t+@) for som R>0 and 0<@<pi/2
ii) find the amplitude and period
iii) determine whether the particle is initially moving towards O or away from O and whether it is initially speeding up or slowing down
iv) find the time at which the particle first returns to its starting point
"a partivle is performing SHM about a fixed point O on a straight line. At time t seconds it has displacement x metres from O gien by x= cos2x-sin2t
i) Express x in the form Rcos(2t+@) for som R>0 and 0<@<pi/2
ii) find the amplitude and period
iii) determine whether the particle is initially moving towards O or away from O and whether it is initially speeding up or slowing down
iv) find the time at which the particle first returns to its starting point
damo676767
Member
evette13 said:x= cos2x-sin2t
thanyou very much
but is this corect, or is it x = cost 2t - sin 2t
evette13
Member
Answer?
Rcos(2t+@) ....therefore R=sqroot (1^2 +1^2) = sqroot 2
Tan @ = -1/1=-1 therefore @ = 3pi/4, 7pi/4 (etc)
For @ btw 0 and pi on 2, @ must equal pi/4
Thus, substituted in Rcos (2t-@)
Therefore, x=sqroot2 cos (2t+pi/4)
Tan @ = -1/1=-1 therefore @ = 3pi/4, 7pi/4 (etc)
For @ btw 0 and pi on 2, @ must equal pi/4
Thus, substituted in Rcos (2t-@)
Therefore, x=sqroot2 cos (2t+pi/4)
evette13
Member
Sorry it is cos2t-sin2t
damo676767
Member
thats cool, i just didn't want to make the problem ia hold lot harder, if it was cos2x then that would be insane
evette13
Member
oh by the way that is wat i wrote and got 2 marks, the catholic answers said:
x= cos2t-Sin2t
x= sqroot2 (1/sqroot2 cos2t - 1/sqroot2 sin2t)
= sqroot2 (cos pi/4*cos2t - sin pi/4*sin2t)
=srroot2 cos(2t+pi/4)
x= cos2t-Sin2t
x= sqroot2 (1/sqroot2 cos2t - 1/sqroot2 sin2t)
= sqroot2 (cos pi/4*cos2t - sin pi/4*sin2t)
=srroot2 cos(2t+pi/4)
damo676767
Member
evette13 said:oh by the way that is wat i wrote and got 2 marks, the catholic answers said:
x= cos2t-Sin2t
x= sqroot2 (1/sqroot2 cos2t - 1/sqroot2 sin2t)
= sqroot2 (cos pi/4*cos2t - sin pi/4*sin2t)
=srroot2 cos(2t+pi/4)
could you please explain that, i have no idea what your doing there
thankyou
x=cos2t - sin2tdamo676767 said:could you please explain that, i have no idea what your doing there
thankyou
= √2/√2 (cos2t - sin2t) (multiply top and bottom by √2)
= √2 (1/√2 x cos2t - 1/√2 x sin2t)
= √2 (cos(pi/4)xcos2t - sin(pi/4)xsin2t) since cos(pi/4)=1/√2 and sin(pi/4)=1/√2
= √2 (cos(2t+pi/4)) using the trig identity cos(a+b)=cosaxcosb-sinaxsinb
= √2 cos(2t+pi/4)
damo676767
Member
ingenious
thakyou all very much
thakyou all very much