DETERMINE A ÁREA DO:
A) QUADRADO INSCRITO EM UM CIRCULO DE R= 5M.
B) HEXÁGONO INSCRITO EM UM CÍRCULO DE R= 6M.
C) TRIANGULO EQUILÁTERO CIRCUNSCRITO A UM CIRCULO DE R = 5M.
HELP ME PLEASE!!!
Soluções para a tarefa
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Resolvendo determinar as areas :
A) Solucao
......~~~~~~~~
diametro da circunferencia
#####################
D = 2 .x R
D = 2 x 5 m
D = 10m
diagonal do quadrado
#################
D = L x \/2
10 = L x \/2
L x \/2 = 10
L = 10
.......__
.......\/2
L = 10 x \/2
.......___....___
........\/2.......\/2
L = 10.\/2
......_____
...........2
L = 5.\/2 m
Area do quadrado
##############
A = L^2
A = (5.\/2)^2
A = (25 x 2)
A = 50m^2
B) Solucao :
.....~~~~~~~~~
1er paso calculandocom a formula da altura para encontrar a aresta :
h = 4m
h = a.\/3.
......____
..........2
4 = a.\/3
......____
..........2
4 x 2 = a.\/3
8 = a.\/3
a.\/3 = 8
a = 8
.......__
.......\/3
a = 8 x \/3
.......__......____
.......\/3........\/3
a = 8.\/3
.......____
............3
2do paso vamos calcular a area
S = 6 x \/3 x a^2
.......__________
..................4
S = 6 x \/3 x (8.\/3)^2
......._____________
....................4 x 3
S = 6 x \/3 x ( 64 x 3 )
.......______________
......................12
S = 6 x \/3 x 192
........_________
................12
S = 1.152 x \/3
.......________
................12
S = 96.\/3m^2
C) Solucao :
.....~~~~~~~~
Lado do triangulo equilatero :
######################
L = 2 x R x \/3
L = 2 x 5 x \/3
L = 10.\/3 m
Altura do triangulo equilatero
######################
(10.\/3)^2 = h^2 + (5\/3)^2
100 x 3 = h^2 + 25 x 3
300 = h^2 + 75
h^2 + 75 = 300
h^2 = 300 - 75
h^2 = 225
h = \/250
h = 15m
Area do triangulo equilatero
######################
A = b x h /2
A = 10.\/3 x 15 / 2
A = 150.\/3 / 2
A = 75.\/3m^2
A) Solucao
......~~~~~~~~
diametro da circunferencia
#####################
D = 2 .x R
D = 2 x 5 m
D = 10m
diagonal do quadrado
#################
D = L x \/2
10 = L x \/2
L x \/2 = 10
L = 10
.......__
.......\/2
L = 10 x \/2
.......___....___
........\/2.......\/2
L = 10.\/2
......_____
...........2
L = 5.\/2 m
Area do quadrado
##############
A = L^2
A = (5.\/2)^2
A = (25 x 2)
A = 50m^2
B) Solucao :
.....~~~~~~~~~
1er paso calculandocom a formula da altura para encontrar a aresta :
h = 4m
h = a.\/3.
......____
..........2
4 = a.\/3
......____
..........2
4 x 2 = a.\/3
8 = a.\/3
a.\/3 = 8
a = 8
.......__
.......\/3
a = 8 x \/3
.......__......____
.......\/3........\/3
a = 8.\/3
.......____
............3
2do paso vamos calcular a area
S = 6 x \/3 x a^2
.......__________
..................4
S = 6 x \/3 x (8.\/3)^2
......._____________
....................4 x 3
S = 6 x \/3 x ( 64 x 3 )
.......______________
......................12
S = 6 x \/3 x 192
........_________
................12
S = 1.152 x \/3
.......________
................12
S = 96.\/3m^2
C) Solucao :
.....~~~~~~~~
Lado do triangulo equilatero :
######################
L = 2 x R x \/3
L = 2 x 5 x \/3
L = 10.\/3 m
Altura do triangulo equilatero
######################
(10.\/3)^2 = h^2 + (5\/3)^2
100 x 3 = h^2 + 25 x 3
300 = h^2 + 75
h^2 + 75 = 300
h^2 = 300 - 75
h^2 = 225
h = \/250
h = 15m
Area do triangulo equilatero
######################
A = b x h /2
A = 10.\/3 x 15 / 2
A = 150.\/3 / 2
A = 75.\/3m^2
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