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1, (b^2 - c^2)cotA+(c^2 -a^2)cotB+(a^2 -b^2) cotC=0
2, cotA-cotB= b^2 -a^2 /absinC
A maths
2007-05-03 4:32 am
回答 (1)
2007-05-03 9:37 am
✔ 最佳答案
1.LHS= (b^2 - c^2)cotA+(c^2 -a^2)cotB+(a^2 -b^2) cotC
=(b^2 - c^2)cosA/sinA + (c^2 - a^2)cosB/sinB + (a^2 - b^2)cosC/sinC
=(b^2 - c^2)(b^2 + c^2 - a^2)/2bcsinA + (c^2 - a^2)(a^2 + b^2 - c^2)/2ac (bsinA/a ) + (a^2 - b^2)(a^2 + c^2 - b^2)/2ab (csinA/a)
= 1/2bcsinA *{ (b²-c²)(b²+c²-a²) + (c²-a²)(c²+a²-b²) + (a²-b²)(a²+b²-c²) }
= 1/2bcsinA *{ (b²-c²)(b²+c²) -a²(b²+c²) + (c²-a²)(c²+a²) - b²(c²+a²) + (a²-b²)(a²+b²) -c²(a²+b²) }
= 1/2bcsinA * (b^4-c^4-a^2b^2+a^2c^2+c^4-a^4-b^2c^2+a^2b^2+a^4-b^4-a^2c^2+b^2c^2)
=0
=RHS
2.
LHS=cotA-cotB
=cosA/sinA - cosB/sinB
= cosAsinB-sinAcosB/sinAsinB
={sinB (b²+c²-a²/2bc) - sinA(a²+c²-b²/2ac)}/sinAsinB
=sinA[(b²+c²-a²)/2bc * b/a - (a²+c²-b²)/2ac]/sinAsinB
=(b²+c²-a²-a²+b²)/2acsinB
=2(b²-a²)/[2ac*(bsinC/c)]
=(b²-a²)/absinC
=RHS
參考: simple calculations
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