Answer: Option B.
Water flowed in 1 hour through the pipe
=22/7 * 10*10*3000/10000 meter³
=660/7 meter³
Volume of circular/cylindrical cistern
=660/7 * 5*5*2 = 1100/7 meter³
= Required Time = 1100/7/660/7 = 5/3 hours
= 1 hour 2/3 * 60 minutes
= 1 hour 40 minutes

Answer:  Option D.
Distance covered by wheel in one revolution = 2Πr
∴ 5000 × 2Πr = 11 × 1000
⇒ 5000 × 2 × 22/7 × r = 11000
⇒ r =11000*7 / 5000*2*22 = 0.35 metre
= 35 cm
∴ Diameter
= 2 × radius = 2 × 35 = 70 cm

Answer: Option C.
Area grazed by all cows 180^° / 360 ^° Π r ² = Π r² = 1/2 * 22/7 *7*7 = 77 sq.metre Semi-perimeter of triangular field(s)
= 26+28+30 / 2 = 42 metre
∴ Area of the field
√s(s-a)(s-b)(s-c)
√42(42-26)(42-28)(42-30)
√42*16*14*12
= 336 sq. metre
∴ Area ungrazed by the cows = 336 - 77 = 259 sq. metre

Answer: Option D.
Let the advertised price be Rs. x. ∴ S.P. = Rs. 77x/100
∴ C.P. = Rs(77x/100 - 56)
⇒ 77x -5600/100 =(100/110 * 77x/100)
⇒77x -5600/100 = 7x/10
⇒ 7x -5600 = 70x ⇒ 7x = 5600 ⇒ x = Rs. 800

Answer: Option B.
Difference of two observations = 73 - 48 = 25
∴ New average = 13 + 25/25 = 14

Answer: Option D.
Profit percent= 10-8/8 × 100 = 25%

Answer: Option D.
Let the C.P. of article be Rs. 100. ∴ Marked price = Rs. 140 S.P. = 70% of 140 = Rs. 98

Answer: Option A
Let the man buy 24 (LCM of 8 and 12) oranges. ∴ C.P. of 24 oranges = 34/8 × 24 = Rs. 102 S.P. of 24 oranges = 57/12 × 24 = Rs. 114 Gain= 114- 102 = Rs. 12 ∵ Rs. 12≡ 24 oranges ∴ Rs. 45 ≡ 24/12 × 45 = 90 oranges

Answer: Option C.
0.121212 …. = 0.12 = 12/99 =4/33

Answer: Option C.
(3/5)³ (3/5)^-3 (3/5)^-3=(3/5)^2x-1
⇒(3/5)³ (3/5)^-3 (3/5)^-3=(3/5)^2x-1 ⇒(3/5)⁰ (3/5)^-3=(3/5)^2x-1 ⇒ 2x – 1 = - 3 ⇒ 2x = - 3 + 1 = - 2 ⇒ x = - 1