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Trignometry
17 Apr 2008 15:19:53 IST
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Q1. Find the area of the smaller portion of the disc of radius 10 cm cut off by a chord AB which subtends an angle of45/2 degree at the circumfrence.
Q2. given A+B-C=pi ,prove that sin^2A +sin^2B +sin^2C=2sinAsinBsinC
Q3. for all values of A in [0,pi/2] ,show that cos(sinA)>=sin(cosA)
Q4.The larger value of cos(log A) and log(cosA) if e^ -pi/2<A<pi/2 is.............
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ashish banga
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Joined: 16 Dec 2006
Posts: 1362
17 Apr 2008 15:26:09 IST
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in second it should be A+ B + C = pi
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r^2/16.If we cut the circle into 16 equal parts,each subtends an angle of 45/2 at the centre
17 Apr 2008 16:58:08 IST
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1) the chord subtends an angle of 45 at the centre(it is a theorem)
area of the sector=(45/180) * pie *R^2=(pie/4)*R^2
remaining area=pie*R^2-(pie/4)*R^2=(3pie/4)*R^2
area of the triangle made by the chord at the centre=
(1/2)*R^2*1/root 2
net area=(3pie/4)*R^2-R^2/2 root 2
plz correct me if m wrong
!!!!!!!!!!!!!!!!!!!
area of the sector=(45/180) * pie *R^2=(pie/4)*R^2
remaining area=pie*R^2-(pie/4)*R^2=(3pie/4)*R^2
area of the triangle made by the chord at the centre=
(1/2)*R^2*1/root 2
net area=(3pie/4)*R^2-R^2/2 root 2
plz correct me if m wrong
!!!!!!!!!!!!!!!!!!!
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