A pyramid has a base in the shape of a rhombus and a peak directly above the base's center. The pyramid's height is #9 #, its base's sides have lengths of #5 #, and its base has a corner with an angle of #(5 pi)/8 #. What is the pyramid's surface area?

1 Answer
sankarankalyanam
Dec 25, 2017

T S A = 111.0851

Explanation:

AB = BC = CD = DA = a = 5
Height OE = h = 9
OF = a/2 = 5/2 = 2.5
# EF = sqrt(EO^2+ OF^2) = sqrt (h^2 + (a/2)^2) = sqrt(9^2+(2.5)^2) = color(red)9.3408#

Area of #DCE = (1/2)*a*EF = (1/2)*5*9.3408 = color(red)(23.3519)#
Lateral surface area #= 4*Delta DCE = 4*23.3519 = color(blue)(93.4076)#

#/_C =5 pi/8, /_C/2 = 3pi/8#
diagonal #AC = d_1# & diagonal #BD = d_2#
#OB = d_2/2 = BC*sin (C/2)=5*sin(3pi/8) = **4.6194**#

#OC = d_1/2 = BC cos (C/2) = 5*cos (3pi/8) = 1.9134

Area of base ABCD #= (1/2)*d_1*d_2 = (1/2)(2*4.6194)(2*1.9134) = color (blue)(17.6775)#

Total Surface Area #= Lateral surface area + Base area#
T S A # =93.4076 + 17.6775 = color(purple)(111.0851)#

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