Difference between revisions of "1970 IMO Problems/Problem 5"

Latest revision as of 22:35, 18 July 2016

Problem

In the tetrahedron $ABCD$ , angle $BDC$ is a right angle. Suppose that the foot $H$ of the perpendicular from $D$ to the plane $ABC$ in the tetrahedron is the intersection of the altitudes of $\triangle ABC$ . Prove that

$( AB+BC+CA )^2 \leq 6( AD^2 + BD^2 + CD^2 )$ .

For what tetrahedra does equality hold?

Solution

Let us show first that angles $ADB$ and $ADC$ are also right. Let $H$ be the intersection of the altitudes of $ABC$ and let $CH$ meet $AB$ at $X$ . Planes $CED$ and $ABC$ are perpendicular and $AB$ is perpendicular to the line of intersection $CE$ . Hence $AB$ is perpendicular to the plane $CDE$ and hence to $ED$ . So $BD^2 = DE^2 + BE^2.$ Also $CB^2 = CE^2 + BE^2.$ Therefore $CB^2 - BD^2 = CE^2 - DE^2.$ But $CB^2 - BD^2 = CD^2,$ so $CE^2 = CD^2 + DE^2$ , so angle $CDE = 90^{\circ}$ . But angle $CDB = 90^{\circ}$ , so $CD$ is perpendicular to the plane $DAB$ , and hence angle $CDA$ = $90^{\circ}$ . Similarly, angle $ADB = 90^{\circ}$ . Hence $AB^2 + BC^2 + CA^2 = 2(DA^2 + DB^2 + DC^2)$ . But now we are done, because Cauchy's inequality gives $(AB + BC + CA)^2 = 3(AB^2 + BC^2 + CA^2).$ We have equality if and only if we have equality in Cauchy's inequality, which means $AB = BC = CA.$

1970 IMO (Problems) • Resources
Preceded by Problem 4	1 • 2 • 3 • 4 • 5 • 6	Followed by Problem 6
All IMO Problems and Solutions

@@ Line 9: / Line 9: @@
 ==Solution==
-Let us show first that angles ADB and ADC are also right. Let H be the intersection of the altitudes
+Let us show first that angles <math>ADB</math> and <math>ADC</math> are also right. Let <math>H</math> be the intersection of the altitudes
-of ABC and let CH meet AB at X. Planes CED and ABC are perpendicular and AB is perpendicular to
+of <math>ABC</math> and let <math>CH</math> meet <math>AB</math> at <math>X</math>. Planes <math>CED</math> and <math>ABC</math> are perpendicular and <math>AB</math> is perpendicular to
-the line of intersection CE. Hence AB is perpendicular to the plane CDE and hence to ED. So BD^2 =
+the line of intersection <math>CE</math>. Hence <math>AB</math> is perpendicular to the plane <math>CDE</math> and hence to <math>ED</math>. So <math>BD^2 =
-DE^2 + BE^2. Also CB^2 = CE^2 + BE^2. Therefore CB^2 - BD^2 = CE^2 - DE^2. But CB^2 - BD^2
+DE^2 + BE^2.</math> Also <math>CB^2 = CE^2 + BE^2.</math> Therefore <math>CB^2 - BD^2 = CE^2 - DE^2.</math> But <math>CB^2 - BD^2
-= CD^2, so CE^2 = CD^2 + DE^2, so angle CDE = 90°. But angle CDB = 90°, so CD is perpendicular to
+= CD^2,</math> so <math>CE^2 = CD^2 + DE^2</math>, so angle <math>CDE = 90^{\circ}</math>. But angle <math>CDB = 90^{\circ}</math>, so <math>CD</math> is perpendicular to
-the plane DAB, and hence angle CDA = 90°. Similarly, angle ADB = 90°.
+the plane <math>DAB</math>, and hence angle <math>CDA</math> = <math>90^{\circ}</math>. Similarly, angle <math>ADB = 90^{\circ}</math>.
-Hence AB^2 + BC^2 + CA^2 = 2(DA^2 + DB^2 + DC^2). But now we are done, because Cauchy's
+Hence <math>AB^2 + BC^2 + CA^2 = 2(DA^2 + DB^2 + DC^2)</math>. But now we are done, because Cauchy's
-inequality gives (AB + BC + CA)^2 = 3(AB^2 + BC^2 + CA^2). We have equality if and only if
+inequality gives <math>(AB + BC + CA)^2 = 3(AB^2 + BC^2 + CA^2).</math> We have equality if and only if
-we have equality in Cauchy's inequality, which means AB = BC = CA.
+we have equality in Cauchy's inequality, which means <math>AB = BC = CA.</math>
@@ Line 23: / Line 23: @@
 [[Category:Olympiad Geometry Problems]]
+[[Category:3D Geometry Problems]]

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Difference between revisions of "1970 IMO Problems/Problem 5"

Latest revision as of 22:35, 18 July 2016

Problem

Solution