Volume of a frustum given the bottom radius and the top cone height. > A cone with base radius 12 cm is sliced parallel to its base, as shown, to remove a smaller cone of height 15 cm. If the height of the smaller cone is three-fourths that of the original cone, what is the volume of the remaining frustum? * * * I set the frustum's top radius as x and its height as y. Using the cone volume formula, I have $$\frac{144\pi\cdot(y+15)}{4}=\frac{15x^2\pi}{3}$$$$\implies 36 y+540=5x^2$$ I am stuck here. How should I continue?

For the height of the bigger cone: We have $h=15 = \frac{3}{4}H \implies H = 20\text {cm}$

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$$\tan z = \frac{r}{h} = \frac{R}{H}$$

We have $R = 12, H = 20 , h = 15 \text{ (all in cm) } \implies r = \frac{R}{H}h = \cdots$

Now the height of the frustrum is $H-h = \cdots$