Difference between revisions of "1976 USAMO Problems/Problem 4"

Revision as of 18:39, 4 January 2010

Problem

If the sum of the lengths of the six edges of a trirectangular tetrahedron $PABC$ (i.e., $\angle APB=\angle BPC=\angle CPA=90^o$ ) is $S$ , determine its maximum volume.

Solution

Let the side lengths of $AP$ , $BP$ , and $CP$ be $a$ , $b$ , and $c$ , respectively. Therefore $S=a+b+c+\sqrt{a^2+b^2}+\sqrt{b^2+c^2}+\sqrt{c^2+a^2}$ . Let the volume of the tetrahedron be $V$ . Therefore $V=\frac{abc}{6}$ .

Note that $(a-b)^2\geq 0$ implies $\frac{a^2-2ab+b^2}{2}\geq 0$ , which means $\frac{a^2+b^2}{2}\geq ab$ , which implies $a^2+b^2\geq ab+\frac{a^2+b^2}{2}$ , which means $a^2+b^2\geq \frac{(a+b)^2}{2}$ , which implies $\sqrt{a^2+b^2}\geq \frac{1}{\sqrt{2}}*(a+b)$ . Equality holds only when $a=b$ . Therefore

$S\geq a+b+c+\frac{1}{\sqrt{2}}*(a+b)+\frac{1}{\sqrt{2}}*(c+b)+\frac{1}{\sqrt{2}}*(a+c)$

$=(a+b+c)(1+\sqrt{2})$ .

$\frac{a+b+c}{3}\geq \sqrt[3]{abc}$ is true from AM-GM, with equality only when $a=b=c$ . So $S\geq (a+b+c)(1+\sqrt{2})\geq 3(1+\sqrt{2})\sqrt[3]{abc}=3(1+\sqrt{2})\sqrt[3]{6V}$ . This means that $\frac{S}{3(1+\sqrt{2})}=\frac{S(\sqrt{2}-1)}{3}\geq \sqrt[3]{6V}$ , or $6V\leq \frac{S^3(\sqrt{2}-1)^3}{27}$ , or $V\leq \frac{S^3(\sqrt{2}-1)^3}{162}$ , with equality only when $a=b=c$ . Therefore the maximum volume is $\frac{S^3(\sqrt{2}-1)^3}{162}$ .

@@ Line 3: / Line 3: @@
 ==Solution==
-{{solution}}
+Let the side lengths of <math>AP</math>, <math>BP</math>, and <math>CP</math> be <math>a</math>, <math>b</math>, and <math>c</math>, respectively. Therefore <math>S=a+b+c+\sqrt{a^2+b^2}+\sqrt{b^2+c^2}+\sqrt{c^2+a^2}</math>. Let the volume of the tetrahedron be <math>V</math>. Therefore <math>V=\frac{abc}{6}</math>.
+Note that <math>(a-b)^2\geq 0</math> implies <math>\frac{a^2-2ab+b^2}{2}\geq 0</math>, which means <math>\frac{a^2+b^2}{2}\geq ab</math>, which implies <math>a^2+b^2\geq ab+\frac{a^2+b^2}{2}</math>, which means <math>a^2+b^2\geq \frac{(a+b)^2}{2}</math>, which implies <math>\sqrt{a^2+b^2}\geq \frac{1}{\sqrt{2}}*(a+b)</math>. Equality holds only when <math>a=b</math>. Therefore
+<math>S\geq a+b+c+\frac{1}{\sqrt{2}}*(a+b)+\frac{1}{\sqrt{2}}*(c+b)+\frac{1}{\sqrt{2}}*(a+c)</math>
+<math>=(a+b+c)(1+\sqrt{2})</math>.
+<math>\frac{a+b+c}{3}\geq \sqrt[3]{abc}</math> is true from AM-GM, with equality only when <math>a=b=c</math>. So <math>S\geq (a+b+c)(1+\sqrt{2})\geq 3(1+\sqrt{2})\sqrt[3]{abc}=3(1+\sqrt{2})\sqrt[3]{6V}</math>. This means that <math>\frac{S}{3(1+\sqrt{2})}=\frac{S(\sqrt{2}-1)}{3}\geq \sqrt[3]{6V}</math>, or <math>6V\leq \frac{S^3(\sqrt{2}-1)^3}{27}</math>, or <math>V\leq \frac{S^3(\sqrt{2}-1)^3}{162}</math>, with equality only when <math>a=b=c</math>. Therefore the maximum volume is <math>\frac{S^3(\sqrt{2}-1)^3}{162}</math>.
 ==See also==

1976 USAMO (Problems • Resources)
Preceded by Problem 3	Followed by Problem 5
1 • 2 • 3 • 4 • 5
All USAMO Problems and Solutions

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Difference between revisions of "1976 USAMO Problems/Problem 4"

Revision as of 18:39, 4 January 2010

Problem

Solution

See also