已知A:B:C:D=1:2:4:8,且A+B+C+D=2π,求cosAcosBcosCcosD的值

来源：学生作业帮助网编辑：作业帮时间：2024/11/30 15:26:47

x��)�{�}��K��\l ��L�,t��bkt�A��Ʀ��bG vbg vy>��i��"}J��/��;^,_l�f��IN�F�:ζ&�:.�� `�035��M�-4��U�B�`R��Q�t{�� @&D!�acX��f`Tm�Qqf\5am��H:ba�E�:H�kD�f�[��È��@� �4¡��Fh��!�U�Va�ohf�_\��gJ��1�

已知A:B:C:D=1:2:4:8,且A+B+C+D=2π,求cosAcosBcosCcosD的值
已知A:B:C:D=1:2:4:8,且A+B+C+D=2π,求cosAcosBcosCcosD的值

已知A:B:C:D=1:2:4:8,且A+B+C+D=2π,求cosAcosBcosCcosD的值
解:A:B:C:D=1:2:4:8→B=2A,C=4A,D=8A
A+B+C+D=(1+2+4+8)A=2π,→15A=2π,A=2π/15
∴cosAcosBcosCcosD
= cos2π/15cos4π/15cos8π/15cos16π/15
= [2sin2π/15cos2π/15cos4π/15cos8π/15cos16π/15]/[2sin2π/15]
= [sin4π/15ccos4π/15cos8π/15cos16π/15]/[2sin2π/15]
= [2sin4π/15ccos4π/15cos8π/15cos16π/15]/[4sin2π/15]
= [sin8π/15cos8π/15cos16π/15]/[4sin2π/15]
= [2sin8π/15cos8π/15cos16π/15]/[8sin2π/15]
= [sin16π/15cos16π/15]/[8sin2π/15]
= [2sin16π/15cos16π/15]/[16sin2π/15]
= [sin32π/15]/[16sin2π/15]
= [sin(2π+2π/15)]/[16sin2π/15]
= [sin(2π/15)]/[16sin2π/15]
= 1/16