Difference between revisions of "1967 IMO Problems/Problem 2"

Revision as of 18:10, 13 September 2024

Prove that if one and only one edge of a tetrahedron is greater than $1$ , then its volume is $\le \frac{1}{8}$ .

Solution

Assume $CD>1$ and let $AB=x$ . Let $P,Q,R$ be the feet of perpendicular from $C$ to $AB$ and $\triangle ABD$ and from $D$ to $AB$ , respectively.

Suppose $BP>PA$ . We have that $CP=\sqrt{CB^2-BT^2}\le\sqrt{1-\frac{x^2}4}$ , $CQ\le CP\le\sqrt{1-\frac{x^2}4}$ . We also have $DQ^2\le\sqrt{1-\frac{x^2}4}$ . So the volume of the tetrahedron is $\frac13\left(\frac12\cdot AB\cdot DR\right)CQ\le\frac{x}6\left(1-\frac{x^2}4\right)$ .

We want to prove that this value is at most $\frac18$ , which is equivalent to $(1-x)(3-x-x^2)\ge0$ . This is true because $0<x\le 1$ .

The above solution was posted and copyrighted by jgnr. The original thread can be found here: [1]

Remarks (added by pf02, September 2024)

The solution above is essentially correct, and it is nice, but it is so sloppily written that it borders the incomprehensible. Below I will give an edited version of it for the sake of completeness.

Then, I will give a second solution to the problem.

A few notes which may be of interest.

The condition that one side is greater than $1$ is not really necessary. The statement is true even if all sides are $\le 1$ . What we need is that no more than one side is $> 1$ .

The upper limit of $1/8$ for the volume of the tetrahedron is actually reached. This will become clear from both solutions.

Solution

Assume $CD > 1$ and assume that all other sides are $\ le 1$ . Let $AB = x$ . Let $P, Q, R$ be the feet of perpendiculars from $C$ to $AB$ , from $C$ to the plane $ABD$ , and from $D$ to $AB$ , respectively.

Suppose $BP>PA$ . We have that $CP=\sqrt{CB^2-BT^2}\le\sqrt{1-\frac{x^2}4}$ , $CQ\le CP\le\sqrt{1-\frac{x^2}4}$ . We also have $DQ^2\le\sqrt{1-\frac{x^2}4}$ . So the volume of the tetrahedron is $\frac13\left(\frac12\cdot AB\cdot DR\right)CQ\le\frac{x}6\left(1-\frac{x^2}4\right)$ .

We want to prove that this value is at most $\frac18$ , which is equivalent to $(1-x)(3-x-x^2)\ge0$ . This is true because $0<x\le 1$ .

TO BE CONTINUED. dOING A SAVE MIDWAY SP I DON'T LOOSE WORK DONE SO FAR.

@@ Line 10: / Line 10: @@
 The above solution was posted and copyrighted by jgnr. The original thread can be found here: [https://aops.com/community/p1480514]
+==Remarks (added by pf02, September 2024)==
+The solution above is essentially correct, and it is nice, but it is
+so sloppily written that it borders the incomprehensible.  Below I
+will give an edited version of it for the sake of completeness.
+Then, I will give a second solution to the problem.
+A few notes which may be of interest.
+The condition that one side is greater than <math>1</math> is not really
+necessary.  The statement is true even if all sides are <math>\le 1</math>.
+What we need is that no more than one side is <math>> 1</math>.
+The upper limit of <math>1/8</math> for the volume of the tetrahedron
+is actually reached.  This will become clear from both solutions.
+==Solution==
+Assume <math>CD > 1</math> and assume that all other sides are <math>\ le 1</math>.
+Let <math>AB = x</math>.  Let <math>P, Q, R</math> be the feet of perpendiculars from
+<math>C</math> to <math>AB</math>, from <math>C</math> to the plane <math>ABD</math>, and from <math>D</math> to <math> AB</math>,
+respectively.
+[[File:Prob_1967_2_fig1.png|600px]]
+Suppose <math> BP>PA</math>. We have that <math> CP=\sqrt{CB^2-BT^2}\le\sqrt{1-\frac{x^2}4}</math>, <math> CQ\le CP\le\sqrt{1-\frac{x^2}4}</math>. We also have <math> DQ^2\le\sqrt{1-\frac{x^2}4}</math>. So the volume of the tetrahedron is <math> \frac13\left(\frac12\cdot AB\cdot DR\right)CQ\le\frac{x}6\left(1-\frac{x^2}4\right)</math>.
+We want to prove that this value is at most <math> \frac18</math>, which is equivalent to <math> (1-x)(3-x-x^2)\ge0</math>. This is true because <math> 0<x\le 1</math>.
+TO BE CONTINUED.  dOING A SAVE MIDWAY SP I DON'T LOOSE WORK DONE SO FAR.

1967 IMO (Problems) • Resources
Preceded by Problem 1	1 • 2 • 3 • 4 • 5 • 6	Followed by Problem 3
All IMO Problems and Solutions

Page

Toolbox

Search

Difference between revisions of "1967 IMO Problems/Problem 2"

Revision as of 18:10, 13 September 2024

Contents

Solution

Remarks (added by pf02, September 2024)

Solution

See Also