fatima96
Member
Q 17 please?
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Need help with a trig question?? (1 Viewer)
- Thread starter fatima96
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fatima96
Member
i feel so silly i uploaded the wrong qn, can u please do this one, thanks and sorryy
RealiseNothing
what is that?It is Cowpea
Draw a perpendicular line from A and B to the ground. This is the height of the balloons, let it be "h".
Let the distance from "O" to the spot where B meets the ground be some distance "k".
So the distance from the "O" to the spot where A meets the ground is "k-1000".
Use the two triangles you have formed to find a value for "k" by solving the "tan" of the known angles simultaneously.
Substitute this value into one of the original "tan" equations.
?????
Profit.
Let the distance from "O" to the spot where B meets the ground be some distance "k".
So the distance from the "O" to the spot where A meets the ground is "k-1000".
Use the two triangles you have formed to find a value for "k" by solving the "tan" of the known angles simultaneously.
Substitute this value into one of the original "tan" equations.
?????
Profit.
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Timske
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Draw a perpendicular line from point B to the line OX and lets call that line 'h' and the point 'C'
AB = 1000m
angle AOX = 14'15'
angle BOX = 10'30'
angle AOB = angle AOX - angle BOX = 3'45'
angle OAB = 104'15'
Find BO using the formula; a/sinA = b/sinB
1000/sin3'45' = BO/sin104'15'
:. (1000sin104'15')/(sin3'45') = BO
:. BO = 14, 819m
Find BC using the same formula
14819/sin90 = h/sin10'30'
:. 14819sin10'30'/sin90 = h = 2700.54m (2.d.p)
AB = 1000m
angle AOX = 14'15'
angle BOX = 10'30'
angle AOB = angle AOX - angle BOX = 3'45'
angle OAB = 104'15'
Find BO using the formula; a/sinA = b/sinB
1000/sin3'45' = BO/sin104'15'
:. (1000sin104'15')/(sin3'45') = BO
:. BO = 14, 819m
Find BC using the same formula
14819/sin90 = h/sin10'30'
:. 14819sin10'30'/sin90 = h = 2700.54m (2.d.p)
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fatima96
Member
The answers say 686m, could they be wrong?? :S Ive been trying to get the answer for a few hrs now. feelingg hopeless
fatima96
Member
appreciate ur help though, but i dont get @Realisenothing's method.
Timske
Sequential
- Joined
- Nov 23, 2011
- Messages
- 794
- Gender
- Male
- HSC
- 2012
- Uni Grad
- 2016
Draw a perpendicular line from point B to the line OX and lets call that line 'h' and the point 'C'
AB = 1000m
angle AOX = 14'15'
angle BOX = 10'30'
angle AOB = angle AOX - angle BOX = 3'45'
angle ABO = angle BOX ( AB is perpendicular to OX ) they are alternate angles.
:. angle OAB = 165'45' ((180 - (3'45' + 10'30'))
Find BO using the formula; a/sinA = b/sinB
BO/sin165'45' = 1000/sin3'45'
BO = 1000sin165'45'/sin3'45'
= 3763.63 m (2dp)
Do the same for 'h'
3763.63/sin90 = h/sin10'30'
h = 3763.63sin10'30'/sin90 = 686 m (1dp)
TADAH!
AB = 1000m
angle AOX = 14'15'
angle BOX = 10'30'
angle AOB = angle AOX - angle BOX = 3'45'
angle ABO = angle BOX ( AB is perpendicular to OX ) they are alternate angles.
:. angle OAB = 165'45' ((180 - (3'45' + 10'30'))
Find BO using the formula; a/sinA = b/sinB
BO/sin165'45' = 1000/sin3'45'
BO = 1000sin165'45'/sin3'45'
= 3763.63 m (2dp)
Do the same for 'h'
3763.63/sin90 = h/sin10'30'
h = 3763.63sin10'30'/sin90 = 686 m (1dp)
TADAH!
fatima96
Member
Thanks a lot
