Difference between revisions of "2008 iTest Problems/Problem 32"

Latest revision as of 12:30, 28 February 2020

Problem

A right triangle has perimeter $2008$ , and the area of a circle inscribed in the triangle is $100\pi^3$ . Let A be the area of the triangle. Compute $\lfloor A\rfloor$ .

Solution

We know the perimeter and area of incircle, so we can find the semiperimeter of the triangle and radius of the incircle and plug the values into the area formula $A = sr.$

The semiperimeter of the triangle is $\tfrac{2008}{2} = 1004.$ The radius of the incircle is $\sqrt{100 \pi^2} = 10\pi$ . That means the area of the triangle is $1004 \cdot 10\pi = 10040\pi.$

By noting that $\pi \approx 3.14159265$ (or by using a calculator), the value $10040\pi$ is around $31541.59,$ so $\lfloor A \rfloor = \boxed{31541}$ .

2008 iTest (Problems)
Preceded by: Problem 31	Followed by: Problem 33
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Revision as of 19:55, 4 August 2018 (view source) Rockmanex3 (talk \| contribs) m (→‎Solution) ← Older edit		Latest revision as of 12:30, 28 February 2020 (view source) Rockmanex3 (talk \| contribs) (Problem is more of an introductory geo problem.)
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	{{2008 iTest box\|num-b=31\|num-a=33}}		{{2008 iTest box\|num-b=31\|num-a=33}}

−	[[Category:~~Intermediate~~ Geometry Problems]]	+	[[Category:Introductory Geometry Problems]]

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Difference between revisions of "2008 iTest Problems/Problem 32"

Latest revision as of 12:30, 28 February 2020

Problem

Solution

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