[Guest]

An infinite amount of spheres are placed in a cone with a half angle x (0<x<90) as in the diagram below. Find the ratio:

(total volume of spheres) / (volume of cone)

I hope this one last more than 30 minutes this time.

Edited November 8, 2009 by psychic_mind

[Guest]

Well since I made this puzzle up my self I had to work out the solution myself beforehand. That does mean that my answer may be incorrect but I have done a different method to everyone else and my answer agrees with Tuckleton.

This method uses geometric series.

Let Y = cosec(x)

RY = L+r+R

and

rY = L

RY = rY + r + R

R(Y-1) = r(Y+1)

Ratio between sphere radii = r/R = (Y-1)/(Y+1)

The height, h, of the cone is the infinite sum of diameters

h = 2R/(1-(Y-1)/(Y+1) )

h = R(Y+1)

The ratio between the volume of each sphere is (Y-1)³/(Y+1)³

The total volume taken by the spheres, Vs, is again an infinite sum

Vs = (4/3*pi*R³)/(1-(Y-1)³/(Y+1)³)

Vs = (2/3*pi*R³)(Y+1)³/(3Y² + 1)

The radius of the cube is a.

a = h*tan(x)

The volume of the cone, Vc, is a²*h*pi*1/3

Vc = h³*tan²(x)*pi*1/3

Vc = R³(Y+1)³*tan²(x)*pi*1/3

Vs/Vc = [ (2/3*pi*R³)(Y+1)³/(3Y² + 1) ] / [ R³(Y+1)³*tan²(x)pi*1/3 ]

Vs/Vc = 2 / tan²(x)(3Y² + 1)

Vs/Vc = 2 / tan²(x)(3csc²(x) + 1)

Vs/Vc = 2 / (3sec²(x) + tan²(x))

Vs/Vc = 2 / (4sec²x - 1)

I have checked Tuckleton, your answer does simplify to this.

[Guest]

My solution is

Vs/Vc = Pi/4(Cos(x)+Sin(x)Tan(x))

This may be the same as other solutions.

[Guest]

I do not understand why it would not be as following

[x[piR² / KX ]/2[0.5bh]

Where X is the infinite number of circles.

R/KX is the radius divided by the varying constant.

BH is just base times. hight area of triangle.

[Guest]

Well since I made this puzzle up my self I had to work out the solution myself beforehand. That does mean that my answer may be incorrect but I have done a different method to everyone else and my answer agrees with Tuckleton.

This method uses geometric series.

Let Y = cosec(x)

RY = L+r+R

and

rY = L

RY = rY + r + R

R(Y-1) = r(Y+1)

Ratio between sphere radii = r/R = (Y-1)/(Y+1)

The height, h, of the cone is the infinite sum of diameters

h = 2R/(1-(Y-1)/(Y+1) )

h = R(Y+1)

The ratio between the volume of each sphere is (Y-1)³/(Y+1)³

The total volume taken by the spheres, Vs, is again an infinite sum

Vs = (4/3*pi*R³)/(1-(Y-1)³/(Y+1)³)

Vs = (2/3*pi*R³)(Y+1)³/(3Y² + 1)

The radius of the cube is a.

a = h*tan(x)

The volume of the cone, Vc, is a²*h*pi*1/3

Vc = h³*tan²(x)*pi*1/3

Vc = R³(Y+1)³*tan²(x)*pi*1/3

Vs/Vc = [ (2/3*pi*R³)(Y+1)³/(3Y² + 1) ] / [ R³(Y+1)³*tan²(x)pi*1/3 ]

Vs/Vc = 2 / tan²(x)(3Y² + 1)

Vs/Vc = 2 / tan²(x)(3csc²(x) + 1)

Vs/Vc = 2 / (3sec²(x) + tan²(x))

Vs/Vc = 2 / (4sec²x - 1)

I have checked Tuckleton, your answer does simplify to this.

This doesn't make sense, because if you approach x=90 (the cone becomes a cylinder), your answer approaches 0 which geometrically does not make sense. As I said before, the solution should approach 2/3. I stand by my answer above.

[Guest]

This doesn't make sense, because if you approach x=90 (the cone becomes a cylinder), your answer approaches 0 which geometrically does not make sense. As I said before, the solution should approach 2/3. I stand by my answer above.

When x -> 90 the cylinder resembles a flat plane.

[Guest]

The angle is the angle at the apex. Sorry if I didn't make that clear. If you used the other angle you just need to substitute it for 90-x.

Edited November 11, 2009 by psychic_mind

[Guest]

Forcedhand's "Method Only" in #4 is indubitably correct. I had already spotted this simplification independently anyway.

A valid solution involves only two tangents, that of x and that of (45º - x/2), and no other trigonometric quantities.

To complete the calculation one needs to know the volume of a sphere as well as that of a truncated cone. The latter formula is 1/3 * pi * height * (r₁² + r₁*r₂ + r₂²). Here r₁ is the radius of the lower circle, while r₂ is the radius of the upper circle.

When the ancient Egyptians were building their pyramids, they seem to have known a formula for the volume of a truncated pyramid, but nowhere do they seem to have spelt out the volume of a completed one. They must have known it, but sadly there is no evidence (not even in the Rhind papyrus.)

Edited November 11, 2009 by jerbil