已知角ab sin(a+b)=-3/5 sin(b-π/4)=12/13 求cos(a+π/4)) 答案是-56/65

来源：学生作业帮助网编辑：作业帮时间：2024/08/07 01:35:42

x��P�N�@��YZp2A(�>ĸ��Mi��4"��Q�1�X�/�s�S� kV�ޓs�99�U��x:5(�W�-#K�*/��#�֬��"A�_��G�IQ��?b��'LVU��b��(�I�D��o�2q��U�.�d��S<|��#��M `6�O�#��G+R��o��j��#�>x�Y��Y�Z>�"�{,8�ބ��@�旇�#~�g��2�uD�؎��mA�h,��r�^�H�2��_ݚ<*53mQ��Ӷ��%Ip��D��p<>��0��

已知角ab sin(a+b)=-3/5 sin(b-π/4)=12/13 求cos(a+π/4)) 答案是-56/65
已知角ab sin(a+b)=-3/5 sin(b-π/4)=12/13 求cos(a+π/4)) 答案是-56/65

已知角ab sin(a+b)=-3/5 sin(b-π/4)=12/13 求cos(a+π/4)) 答案是-56/65
cos(a+pi/4) = cos(a+b-b+pi/4) = cos(a+b)cos(b-pi/4)+sin(a+b)sin(b-pi/4) = -4/5*5/13-3/5*12/13 =-56/65
问题是如何得到cos(a+b) and cos(b-pi/4)
我尝试了一下从范围推到,但是好像不可以,你的角ab有其他限制吗?例如都是三角形的内角?

con(a+π/4)=con[(a+b)-(b-π/4)]=cos(a+b)cos(b-π/4)+sin(a+b)sin(b-π/4)=代入数值