JAWAPAN SOALAN
FORMULA A+
Latihan ms 111-113
◦ SOALAN 1 JAWAPAN C
Bukan nombor perdana ialah KAD M
27 bukan nombor perdana sebab 27 boleh dibahagi dengan nombor lain
selain 1 dan dirinya sendiri tanpa baki
27 ÷ 1 = 27
27 ÷ 3 = 9
27 ÷ 9 = 3
27 ÷ 27 = 1
◦ SOALAN 2 JAWAPAN A perseribu
4.019
persepuluh perseratus
◦ SOALAN 3 JAWAPAN D
8.35 p.m = Jam 2035 Jam Minit
8 35
00
+ 12 35
20
◦ SOALAN 4 JAWAPAN A
Yang mana betul
2×2 4
1 5 × 2 = 1 10 = 1.4
1.4 x 10 = 14 mm
◦ SOALAN 5 JAWAPAN D 6 6 600
8 8 × 100% = 8 % = %
◦ Nilai K dalam peratusan 2
8 K1
1 1×2
8 ◦4 × 2
◦ SOALAN 6 JAWAPAN B
Bundar kepada perseratus menjadi 52
+1
51.996 = 52
◦ SOALAN 7 JAWAPAN A
1 7 ÷ 4 = 16 ÷ 4
9 91
4
= 16 × 1
94
=
◦ SOALAN 8 JAWAPAN C 96 000
100 000
96 ribu + 1 ratus ribu + 40 ratus + 4 000
96 000 + 1 00 000 + 40 00 200 000
2 00 000
◦ SOALAN 9 JAWAPAN B 1.075
x8
1.075 × 8 = 8.6 = 86 = 8 6 = 8 6÷2 =
8.600
10 10 10÷2
◦ SOALAN 10 JAWAPAN B
408 850÷ 17 =24 050 24 050
17 408 850
- 34
68
- 68
8
-0
85
- 85
0
◦ SOALAN 11 JAWAPAN B
251.800
+ 102.500
353.300
- 78.496
275.804
◦ SOALAN 12 JAWAPAN B 3.94
3.94 km + 80 m + 2 km 70 m 0.08
+ 2.07
80 ÷ 1000 2 km 70 ÷ 1000 6.09
= 0.08 km =2km + 0.07km
= 2.07 km
◦ SOALAN 13 JAWAPAN C
Tukar Tali P → 3.07 m kepada cm → 3.07 x 100 = 307 cm
Tali Q = 307 – 20 = 287
Tali R = 287 – 26 =261
Min = 307+287+261 = 855 =
33
◦ SOALAN 14 JAWAPAN D 11 liter= 1.5 liter
Biru = 13 liter 2
Hijau = 13.0 liter – 1.5 liter = 11.5 liter
Merah = 13.0 liter – 2.4 liter = 9.087 liter
Kuning = Lebih 9.087 liter
Maka Bekas Merah air yang paling sedikit
◦ SOALAN 15 JAWAPAN D
3 Objek P = 2.01 kg = 2.01 x 1000 = 2010 g Bacaan dari
Maka jisim 1 objek P = 2010 ÷3 = 670 g alat timbang
Jisim 3 objek P dan 1 objek R = 2.6 kg = 2.6 x 1000 = 2600 g
Oleh itu jisim objek R = 2600 – 2010 = 590 g
Maka beza jisim objek P dan R = 670 – 590 = 80 g
◦ SOALAN 16 JAWAPAN B
8.4 8.4 × 5 42
8.4% × 50 = 100 × 50 = 10 = 10 = 4.2 = 4.20
Maka jawapan B adalah betul
◦ SOALAN 17 JAWAPAN D
Wang Suhana pada mulanya = RM724 + RM89.60 = RM813.60
Wang Ayu = 5 x wang Suhana = 5 x RM813.60 = RM4 068
◦ SOALAN 18 JAWAPAN C
3+6
68
3×8 + 6×6 = 24 + 36 = 60÷6 = 10 = 5
6×8 8×6 48 48 48÷6 8 4
5 → 5 × 100% = 500 % = %
4 44
◦ SOALAN 19 JAWAPAN A Baki
Jumlah telur yang dibeli adalah Gred A Gred B Gred C
60 x 8 bahagian = 480 biji
◦ SOALAN 20 JAWAPAN C
180
180÷3=60
RM315÷ 9 = RM35
Danial Emran Firas
RM35 Rm35 x 2 = RM70 RM35 x 6 = RM210
Lebihnya wang Firas daripada wang Danial = RM210 – RM35 = RM175
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SLIDE JWP MAT 5 NOV
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