【sin(a-b)cosa-cos(b-a)sina=3/5,b是第三象限角,求sin(b+5π/4),tan(b+5π/4)的值】
<p>问题:【sin(a-b)cosa-cos(b-a)sina=3/5,b是第三象限角,求sin(b+5π/4),tan(b+5π/4)的值】<p>答案:↓↓↓<p class="nav-title mt10" style="border-top:1px solid #ccc;padding-top: 10px;">吕艳辉的回答:<div class="content-b">网友采纳 根据sin(A-B)=sinAcosB-sinBcosAcos(b-a)=cosAcosB+sinAsinB; 简化得到sinB=-3/5可以得到cosB=-4/5tanB=3/4 所以sin(B+5π/4)=sinBcos5π/4+cosBsin5π/4=-的根号2除以10; tan(b+5π/4)=(tan5π/4+tanB)/(1-tan5π/4tanB)=5/8
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