Triangle A has an area of 24 and two sides of lengths 8 and 15 . Triangle B is similar to triangle A and has a side with a length of 12 . What are the maximum and minimum possible areas of triangle B?

1 Answer
Alexander L.
Jul 18, 2016

By the square of 12/8 or the square of 12/15

Explanation:

We know that triangle A has fixed internal angles with the given information. Right now we are only interested in the angle between lengths 8&15.

That angle is in the relationship:
Area_(triangle A)=1/2xx8xx15sinx=24
Hence:
x=Arcsin(24/60)

With that angle, we can now find the length of the third arm of triangle A using the cosine rule .

L^2=8^2+15^2-2xx8xx15cosx. Since x is already known,
L=8.3.

From triangle A, we now know for sure that the longest and shortest arms are 15 and 8 respectively.

Similar triangles will have their ratios of arms extended or contracted by a fixed ratio. If one arm doubles in length, the other arms double as well . For area of a similar triangle, if the length of arms double, the area is a size bigger by a factor of 4.

Area_(triangle B)=r^2xxArea_(triangle A).

r is the ratio of any side of B to the same side of A.

A similar triangle B with an unspecified side 12 will have a maximum area if the ratio is the largest possible hence r=12/8. Minimum possible area if r=12/15.

Therefore maximum area of B is 54 and the minimum area is 15.36.

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