Sagot:
Tingnan ang sagot sa ibaba …
Paliwanag:
# sqrt3 / (cos2A) -1 / (sin2A) = 4 #
# => sqrt3 cdot sin2A-cos2A = 4 cdot sin2A cdot cos2A #
# => sqrt3 / 2 cdot sin2A-1 / 2cos2A = 2 cdot sin2A cdot cos2A #
# => sin2A cdot cos30 ^ @ - cos2A cdot sin30 ^ @ = sin4A #
# => sin (2A-30 ^ @) = sin4A #
# => 2A-30 ^ @ = 4A #
# => 2A = -30 ^ @ #
# => A = -15 ^ @ # SANA MAKATULONG ITO…
SALAMAT…
Ipakita na cos²π / 10 + cos²4π / 10 + cos² 6π / 10 + cos²9π / 10 = 2. Ako ay medyo nalilito kung gumawa ako Cos²4π / 10 = cos² (π-6π / 10) & cos²9π / 10 = cos² (π-π / 10), ito ay magiging negatibo bilang cos (180 ° -theta) = - costheta sa ang pangalawang kuwadrante. Paano ko mapapatunayan ang tanong?
Mangyaring tingnan sa ibaba. LHS = cos ^ 2 (pi / 10) + cos ^ 2 ((4pi) / 10) + cos ^ 2 ((6pi) / 10) + cos ^ 2 ((9pi) / 10) 10) + cos ^ 2 (4pi) / 10) + cos ^ 2 (pi- (4pi) / 10) + cos ^ 2 (pi- (pi) / 10) = cos ^ 2 (pi / 10) + cos ^ 2 (pi / 10) + cos ^ 2 ((4pi) / 10) = 2 * [cos ^ 2 (pi / 10) + cos ^ 2 ((4pi) 10)] = 2 * [cos ^ 2 (pi / 2- (4pi) / 10) + cos ^ 2 ((4pi) / 10)] = 2 * [sin ^ 2 ((4pi) / 10) + cos ^ 2 ((4pi) / 10)] = 2 * 1 = 2 = RHS
Cos ^ 2 π / 8 + cos ^ 2 3π / 8 + Cos ^ 2 5π / 8 + cos ^ 2 7π / 8 Solve And Answer The Value?
2 (pi / 8) + cos ^ 2 ((3pi) / 8) + cos ^ 2 ((5pi) / 8) cos ^ 2 ((7pi) / 8) = 2 rarrcos ^ + cos ^ 2 ((3pi) / 8) + cos ^ 2 ((5pi) / 8) + cos ^ 2 ((7pi) / 8) 8) cos ^ 2 (pi- (3pi) / 8) cos ^ 2 (pi-pi / 8) = cos ^ 2 (pi / 8) + cos ^ 2 ((3pi) / 8) + cos ^ 2 (pi / 8) = 2 * [cos ^ 2 (pi / 8) + cos ^ 2 ((3pi) / 8) 8) + sin ^ 2 (pi / 2- (3pi) / 8)] = 2 * [cos ^ 2 (pi / 8) + sin ^ 2 (pi / 8)] = 2 * 1 =
Solve ... 5 - x = sqrt (x + sqrt (x + sqrt (x + sqrtx))) Hanapin ang x?
Ang sagot ay = 5-sqrt5 Hayaan y = sqrt (x + sqrt (x + sqrt (x + sqrt (x + ....)))) Squaring, y ^ 2 = x + sqrt (x + sqrt (x + sqrt (x + sqrt (x + ....)))) y ^ 2 = x + y Tulad ng, y = 5-xy ^ 2 = x + 5-x = 5 y = + - sqrt5 Samakatuwid, y ^ 2 = + y 5 = x + sqrt5 x = 5-sqrt5