- #1
AN630078
- 242
- 25
- Homework Statement
- Hello, I have been practising reciprocal trigonometric equations and have found a question to solve;
cot^2θ+5cosecθ=4 giving all answers in the range 0 °<θ<360 °
I am not actually struggling to solve the equation, but rather how to find the solutions in the given range.
- Relevant Equations
- cot^2θ+5cosecθ=4
cot^2θ+5cosecθ=4
cot^2θ+5cosecθ-4=0
cosec^2θ+5cosec-4-1=0
cosec^2θ+5cosec-5=0
Let u=cosecθ
u^2+5u-5=0
Solve using the quadratic formula;
u=(-5± 3√5)/2
u=(-5+ 3√5)/2=0.8541...
Substitute cosecθ=u
Therefore, cosecθ=0.8541
1/sinθ=0.8541
sinθ=1/0.8541=1.170... which is not true since sin x cannot be greater than 1 for real solutions.
u=(-5-3√5)/2=-5.8541...
cosecθ=-5.8541...
1/sinθ=(-5-3√5)/2
1*2=(-5-3√5)*sinθ
2=(-5-3√5)*sinθ
2/(-5-3√5)=sinθ
Multiply by the conjugate;
2*(-5+3√5)/(-5-3√5)(-5+3√5)=2*(-5+3√5)/-20=-(-5+3√5)/10
sinθ=-(-5+3√5)/10
My difficulty is solving this last part, do I then take the arcsin of -(-5+3√5)/10?
θ=arcsin(-(-5+3√5)/10)
θ=-0.17166 + 2πn, θ=π+0.17166+2πn
Since the solutions should be in the range 0 °<θ<360 ° should I convert this from radians to degrees?
θ=-0.17166=-9.8353935.. °~-9.84 °which falls outside the specified range, but -9.84 °+360 °=350.16° (which is within the range)
and θ=π+0.17166=3.31325 rad=189.835... ° ~ 189.8 ° to 1.d.p
Other solutions 189.8 °+360 °=549.8° (which lies outside the given range)
So would the solutions in the range 0 °<θ<360 ° be θ=189.8 °and θ=350.16°?
I would be very grateful of any advice
cot^2θ+5cosecθ-4=0
cosec^2θ+5cosec-4-1=0
cosec^2θ+5cosec-5=0
Let u=cosecθ
u^2+5u-5=0
Solve using the quadratic formula;
u=(-5± 3√5)/2
u=(-5+ 3√5)/2=0.8541...
Substitute cosecθ=u
Therefore, cosecθ=0.8541
1/sinθ=0.8541
sinθ=1/0.8541=1.170... which is not true since sin x cannot be greater than 1 for real solutions.
u=(-5-3√5)/2=-5.8541...
cosecθ=-5.8541...
1/sinθ=(-5-3√5)/2
1*2=(-5-3√5)*sinθ
2=(-5-3√5)*sinθ
2/(-5-3√5)=sinθ
Multiply by the conjugate;
2*(-5+3√5)/(-5-3√5)(-5+3√5)=2*(-5+3√5)/-20=-(-5+3√5)/10
sinθ=-(-5+3√5)/10
My difficulty is solving this last part, do I then take the arcsin of -(-5+3√5)/10?
θ=arcsin(-(-5+3√5)/10)
θ=-0.17166 + 2πn, θ=π+0.17166+2πn
Since the solutions should be in the range 0 °<θ<360 ° should I convert this from radians to degrees?
θ=-0.17166=-9.8353935.. °~-9.84 °which falls outside the specified range, but -9.84 °+360 °=350.16° (which is within the range)
and θ=π+0.17166=3.31325 rad=189.835... ° ~ 189.8 ° to 1.d.p
Other solutions 189.8 °+360 °=549.8° (which lies outside the given range)
So would the solutions in the range 0 °<θ<360 ° be θ=189.8 °and θ=350.16°?
I would be very grateful of any advice
