bantu jawab no.19-21 ya yang bisa. Makasi. GBu!
Matematika
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Pertanyaan
bantu jawab no.19-21 ya yang bisa. Makasi. GBu!
2 Jawaban
-
1. Jawaban DB45
Balok
19. Ukuran balok px lx t = 15 x 12 x 8
panjang Kerangka= K = 4 (p+ l+t)
K = 4 (15+12+8)
K = 4 (35)
K = 140 cm
20. Balok . ukuran
p = EF = 8 cm
l = AD = 6cm
t = DH = 3 cm
diagonal BD = √p² + l² =√8²+6²= √100
BD = 10 cm
21. Balok
p = 12 cm
l = 9 cm
dr = √17
√(p²+l² +t²) =(dr)
12² +9² + t² = 17²
225 +t² = 289
t² =64
t = 8
Luas permukaan balok = 2(pl+ lt + pt)
LPP = 2(12x9 + 9x8 + 12 x8)
LPP = 2 (276)
LPP = 552 cm² -
2. Jawaban whongaliem
19) panjang kawat = 4 (p + l + t)
= 4 (15 + 12 + 8)
= 4 (35)
= 140 cm ..... jawaban : A
20) BD² = EF² + AD²
= 8² + 6²
= 64 + 36
= 100
BD = √100
BD = 10 cm ..... jawaban : C
21) dr² = p² + l² + t²
17² = 12² + 9² + t²
289 = 144 + 81 + t²
289 = 225 + t²
t² = 289 - 225
t² = 64
t = √64
t = 8 cm
Lp = 2 (p.l + p.t + l.t)
= 2 (12 . 9 + 12 . 8 + 9 . 8)
= 2 (108 + 96 + 72)
= 2 (276)
= 552 cm² .... jawaban : B