| Stacy
Rae |
I cannot seem to get my head around this question at all so have given in and asking for help!! Q) 5 sin2 y = 3 find all solutions for y in degrees (0-360) and radians (0-2p). I have worked this out so far by changing the sin2 to 1-cos2 and so have come up with 5(1-cos2 y); expanding out the brackets gives me 5-5cos2 y = 3 and putting into a quadratic:- 5-5 cos2-3=0. Therefore 2-5cos2 y=0. It's here that my brain has given up. Am I on the right track at all? What's the best way to proceed on please. thanx stacy :-) p.s This is for my hnc and the last time I did anything like this was about 8 years ago at college of fe so simple would be great please!! |
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| Colin
Prue |
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| Stacy
Rae |
oh dear was it really that simple!! thanx for your help :-) |
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| David
Loeffler |
If you're looking for all solutions, remember that there is a second solution, 180° - this. David |
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| Andre
Rzym |
Don't forget that a square root has two values (positive and negative), therefore there are four solutions to your equation in the range 0..2pi . Andre |
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| Stacy
Rae |
thanks all for your help, have worked out solutions in all four quadrants, it was mainly what to do with a power against the sin function, i was working on the principle that to remove it you had to cx the sin function as well! thanx again stacy |