Geometry: An Interactive Journey to Mastery

Solutions

7KHEDVHZLWKVLGHVLVDULJKWWULDQJOHͼ௘^2 ^2 = 25^2 ௘ͽDQGWKHUHIRUHKDVDUHD^12

LA

SA

V

u u u

D௘ͽ %DVHHGJH VSA ^1132 ^22
௘6HHFigure S.23.5௘ͽ
E௘ͽ 6ODQWKHLJKW V = 11,760; LA
௘6HHFigure S.23.6௘ͽ
F௘ͽ +HLJKW 6222 32 ;VSA^13 16 32 ; 16 8 32.
G௘ͽ /HWe be the base edge. Then, 10 13 ee^2 6 gives 5.
Slant height: s 636.^2 ©¹ ̈ ̧§·e^25
SA u e^2 ^12 e s

Area base u 61 3^1122332.
WDQ VR WDQ ^ |^1 h h^
Thus,
V| |^13233 2.05 1.8.

D௘ͽ RISSr^22 u NP 2
E௘ͽ $UHDRIÀRRU ʌU^2. Area of hemisphere = 21 SSrr^22 GRXEOHWKHÀRRU6RZHQHHGJDOORQV

8 10

6

Figure S.23.5

20 29

21

Figure S.23.6

Geometry: An Interactive Journey to Mastery

LA

SA

V

8 10

6

20 29

21

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