3 The Qata M = - 1₂²₁ m = -₂₁ 3tx = -1 Ar 2/11 I 2603 (1) 5 x − 2x² = 5X sin (√2 + 2x) = sinfe cos (=²³*+ 2x) = cos fr = sin(x + x) = -sin & x² = tan (+2) = tan se = cos(x + ³x) = - cosef £ = tan (x + ³^²) (²) - 1²² 1²x1²= = 75 16 (8) = ²x - 2x²² = ぜ 〃 sin (-ZR² + 4x) = = sin fa x = 2^ cos (= √²/₁+4x)= _ cos fic tang=√√√√3 = sin ² = £ 2 = -sin (x+²) = 2 = COS / ² tan (- /^+4x)= - tange flu - cos (x+²) 13 2 2 = -fan (x+²) = -tan ² = -√² sin (6² ^+4x) = sin &~=== // co= (x + x) = cos & r = - = - = ( tan (14x) = tan &^= -7 -1 x Sin (F²R+ 2x) = sin & x sin (at ? 3 = -sin = = - 2√2 2 2 tan (+20, cos (F²^12x) = cos fa Cake 24 sin (-6+4x) cos (-²+4x) tan (-²+4*) 2 25 TE (5) = ²^² + 2x82 = 7² No. E 5 Date = tan (x+²) = fan² = √₂ cos (x + ²) - cos st = = = 3 tan x sin tan [13 ・3月 B B1 1 1

2630が次の値のとき, sin 0, cose, tan 0 を鋭角の三角関数で表し、 その値を求 めよ。 (1) 11 3 π *(2) 31 6 -π (3) 19 4 π 10 *(4) π 3 25 (5) — 22π 6 決