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Proof of Sine Rule and Cosine Rule of the triangle
Let, In a △ABC, the length of sides: BC=a, CA=b, and AB=c then according to the Sine Formula
a/Sin A =b/Sin B =c/Sin C =2R
Here R is the Circumradius of the △ABC.
Here is the proof of this formula.
Draw AD⟂BC, the height AD=h
In △BDA, Sin(B)=h/c
h=c.Sin(B)
Similarly, In △CDA
Sin(C)=h/b
h=b.Sin(C)
So, c.Sin(B)=b.Sin(C)
b/Sin(B)=c/Sin(C) ……………(i)
Now, Draw BE⟂AC, the height BE=k
a/Sin(A)=c/Sin(C) ……………(ii)
From the equation (i) and (ii):
a/Sin(A) =b/Sin(B) =c/Sin(C) ……………(iii)
— — — — — — — —
Draw a Circumcircle of △ABC. Here O is the Circumcenter of the triangle.
The length of Circumradius=R
So, the length of the diameter, BD=2R
∠BAC=∠BDC=∠A (Angles, subtended by the same arc at the circumference in the same segment)
∠BCD=90° (Angle made by the diameter at the Circumference)
Now in △BCD, according to Sine Rule:
BC/Sin(BDC)}= BD/Sin(90°)
a/Sin(A) =2R/1
a/Sin(A) =2R …………(iv)
From equation (iii) and (iv):
a/Sin(A) =b/Sin(B) =c/Sin(C)=2R
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Read this article for complete details
Some very useful Trigonometry formulas and Identities with proof are given here. Here we would also discuss some of the very important pract
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