Triangle Segments

Question

In a triangle $ABC$, $AB=5$, $BC=16$, $AC= \sqrt{153}$, and $D$ is on segment $BC$. Compute the sum of all possible integral measures of $AD$.

I've been having trouble trying to solve this problem and any help would be greatly appreciated. If you can provide a solution for me to study, thank you in advance.

Answer 1

Since $BC^2 = 256 > 178 = AB^2+AC^2$, triangle $ABC$ is obtuse with $\angle BAC > 90^{\circ}$. If a different angle was obtuse, the solution below would be slightly different.

The shortest possible value for $AD$ will be when $AD \perp BC$, i.e. $AD$ is the altitude to side $BC$. Use Heron's formula to find the area of the triangle. Then, this altitude satisfies $\dfrac{1}{2} \cdot AD \cdot BC = \text{Area}$.

The longest possible value for $AD$ will occur either when $D$ is an endpoint of $BC$. It should be obvious which endpoint yields the largest value.

Now, you just have to add up all the integers between the smallest and largest values of $AD$.

Answer 2

$AC = \sqrt{153} = 12.xxxxx$

∴ the largest integral value of AD is 12

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By cosine law, $\cos \angle ABC = … = 0.8$

∴ $\sin ABC = … = 0.6$

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The shortest value of AD is $AB \sin \angle ABC = ... = 3$ (why?)

Hence, $3 \le integral- value -of (AD) \le 12$