sin(a-b)cosa-cos(b-a)sina=12/13,求cos(5π/4-b)和cos(π/3+2b)

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sin(a-b)cosa-cos(b-a)sina=12/13,求cos(5π/4-b)和cos(π/3+2b)
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sin(a-b)cosa-cos(b-a)sina=12/13,求cos(5π/4-b)和cos(π/3+2b)
sin(a-b)cosa-cos(b-a)sina=12/13,求cos(5π/4-b)
和cos(π/3+2b)

sin(a-b)cosa-cos(b-a)sina=12/13,求cos(5π/4-b)和cos(π/3+2b)
sin(a-b)cosa-cos(a-b)sina=12/13
sin(a-b-a)=-sinb=12/13
sinb=-12/13
cos2b=1-2sin^2b=(169-288)/169=-119/169
cosb=±5/13
sin2b=2sinbcosb=120/169
cos(5π/4-b)
=cos5π/4cosb+sin5π/4sinb
=-√2/2cosb-√2/2sinb
.
cos(π/3+2b)=cosπ/3cos2b-sin(π/3)sin2b
,.

化简sin(a-b)*cosa - cos(a-b)*sina sin(a-b)cosa-cos(b-a)sina=12/13,求cos(5π/4-b)和cos(π/3+2b) 求证cos(a+b)cos(a-b)=cos^2b-sin^2a 在△ABC中,下列各表达式中为常数的是( )A.sin(A+B)+sinC B.cos(B+C)-cosA C.tan(A+B)/2×tanC/2 D.cos(B+C)×sinA/2 cosb=cos[(a+b)-a]=cos(a+b)cosa+sin(a+b)sina 证明下列恒等式:sin(a+b)*cos(a-b)=sina*cosa+sinb*cosb 关于高一数学,麻烦解答一下,谢谢sin2B-sin2C=2sin(B-C)cos(B+C)=2sin(B-C)cos【π-A】=-2sin(B-C)cosA 如何从“sin2B-sin2C”转化为“2sin(B-C)cos(B+C)”? 若a,b为两个锐角,则( ) ,A,cos (a+b)>cosa +cosb B,cos(a+b)<cosa +cosbC,cos (a+b)>sina +sinb D,cos (a+b)<sina +sin b 【说明原因】 sin(a+b)cosa-cos(a+b)sina=5/13 则sin(π-B)=? 求证:cosA°sinB°=1/2【sin(A+B)°-sin(A-B)°】 证cosA+cos(120+B)+cos(120-B)/(sinB+sin(120+A)-sin(120-A)=tan(A+B)/2 a,b为锐角 且cos(a+b)=sin(a-b),则sina-cosa= 若cos(A+B)cos(A-B)=1/3 则cos平方A-sin平方B 等于 cosa×cos(a+b)+sina乘以sin(a+b) 怎么化简..这个是原题目 2cos(a+b)cosa-cos(2a+b) 化简! 化简cosA的平方+cos(A+B)的平方-2cosAcosBcos(A+B) 在三角形ABC中,若sin(2π+A)=√2sin(π-2B),√3cosA=-√2cos(π-B),求三角形ABC的各内角的度数 sin(a-b)cosb+cos(a-b)sinb=? 化简 cos(a+b)cosa+sin(a+b)sina=_______ cos(31°-a)cos(29°+a)-cos(59°+a)cos(61°-a)