Triangles - Trig: for given triangle, find 3 options equal to "a"

[mcarthyryan]

Hi, I've got a question, and if it was asking for one answer, I think I'd be correct, but it requires 3? It is a mock online test I am trying to practise with, but I don't understand how to get more than one answer:

This is the question:


I think the one I've ticked is correct, as tan& = b / a which converts to a = b / tan&

I just can't see how to work out the other two?

I thought cos& = a / c which converts to a = c.cos& might have been a correct answer, but it isn't there?

a^2 + b^2 = c^2 converted to a^2 = c^2 - b^2 isn't on the list either?


Please can you give any pointers?




Thanks a lot

 

[mmm4444bot]

Hi, I've got a question, and if it was asking for one answer, I think I'd be correct, but it requires 3? It is a mock online test I am trying to practise with, but I don't understand how to get more than one answer:

This is the question:


I think the one I've ticked is correct, as tan& = b / a which converts to a = b / tan&

I just can't see how to work out the other two?

I thought cos& = a / c which converts to a = c.cos& might have been a correct answer, but it isn't there?

a^2 + b^2 = c^2 converted to a^2 = c^2 - b^2 isn't on the list either?


Please can you give any pointers?

Thanks a lot

Hi Ryan:

Your answer is correct, so far.

a = b/tan(θ)

Your work finding a = c*cos(θ) is also correct, but, you're right; that expression is not listed.

Your work using the Pythagorean Theorem is good, but you stopped at a^2. They're asking for a.

a = sqrt(c^2 - b^2)

Too bad, that's not in the list, either.

Here are two hints for you to consider.

What is the angle between sides b and c? (It can be expressed in terms of θ.)

What is the Law of Sines?

Cheers :cool:

 

[mcarthyryan]

Hi, Thank you for the reply.


The angle between b and c would = 180 - (90 + θ) OR could it be cosθ = b/c.....sorry, that is far as I know to go?



The law of Sines is a/sin A = b/sin B = c/sin C
- which I think you could express as:
a = sin A x b / sin B
so I think in this question it would be:
a = bsin(90' - θ) / sin θ ?



Thank you

 

[mcarthyryan]

Hi Everyone,

Could anyone please point me in the right direction to get the third answer if possible? Not give me the answer, but any more pointers please?


Thank you

 

[Deleted member 4993]

Hi Everyone,

Could anyone please point me in the right direction to get the third answer if possible? Not give me the answer, but any more pointers please?


Thank you

Hint:

sin(90°-Φ) = cos(Φ)

 

[mcarthyryan]

ohhh, Ok, thank you for that!

I forgot about that rule.

Thank you for the help.