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the answer of b share is 2400

A:B= 2:3, B:C = 4:5(A:B)×4 and (B:C)×3then. A:B:C = 8:12:15SO A+B+C = 70008x+12x+15x = 7000 35x = 7000 x = 7000/35 x = 200so B's share = 12×200 = 2400

A:B=2.3. B:C=4:5(A;B)×4. (B:C)×3 SO. A:B:C = 8:12:15 A+B+C. =70008X+12X+15X = 700036X = 7000X=35/7000X=200B IS EQUAL TO 12×200=2,400

Length of a door = 2.5m

Breadth of the door = 1.2m

area of the door = l * b = 2.5m * 1.2m = 3m^2

∴ area of 2 doors = 2 * 3 = 6m^2

Length of the window = 1.5m

Breadth of the window = 1m

Area of the window = l * b = 1.5 * 1 = 1.5m^2

∴ area of4 windows= 4* 1.5 = 6m^2

Area of the doors + Area of the windows = 6m^2+ 6m^2= 12m^2

Length of the wall = 12.5m

Breadth of the wall = 9m

Height of the wall = 7m

Area of the wall = LSA of a cuboid = 2h(l+b)

=2 * 7 (12.5 + 9)

= 14 * 21.5 = 301m^2

Required area of the wall to be painted = Area of the wall - Area of the doors and windows

i.e., area of the wall to be painted = 301m^2- 12m^2

area of the wall to be painted = 289m^2

Cost of painting 1m^2of the wall = Rs. 3.50

Cost of painting 289m^2of the wall = Rs. (3.50 * 289)

Cost of painting the wall = Rs. 1011.5

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Where is the figure?

what was the reason for putting barriers to foreign trade and investment by the Indian government? why did it wish to remove these barriers?

sum of angles

AOD+DOC+COB = 180°... (linear pair)

=> x+10+x+x+20 = 180°=> 3x+30 = 180°=> 3x = 180-30 = 150°=> x = 150/3 = 50°

now, angle AOD = x+10 = 60° angle DOC = 50°angle BOC = x+20 = 70°

12= 2*2*324= 2*2*2*330= 2*2*5LCM= 2*2*2*2*3*5= 240

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Let ( x₁,y₁ = A( 2 , 0 ) ,

( x₂ , y₂ ) = B ( 0 , 2/9 ) ;

midpoint of joining of A and B = ( x₁+ x₂/2, y₁+ y₂ /2 )

( 1 , p/ 3 ) = ( 0 + 2 /2 , 0 + 2/9 / 2 )

= ( 1 , 1/9 )

p/3 = 1/9

[∵ If ( a , b ) = ( c , d ) then a = c and b = d ]

p = 1/3 --- ( 1 )

according to the problem given ,

put ( -1 , 3p ) in the equation 5x + 3y + 2 =0

5 ( -1 ) + 3× ( 3p ) + 2 = 0

-5 + 3× 3 ( 1/3 ) + 2 =0 [ from ( 1 ) ]

-5 + 3 + 2 =0

0 = 0 [ true ]

Therefore ,

5x + 3y + 2 =0 line passes through the

point ( -1 , 3p ) .

a. m=7 n=195b. m=30 n=2

Circumference of circle=2π35 cm

circumference=70*22/7=220 cm

circumference of circle=perimeter of square

220cm=perimeter of square

220cm=4*side

55cm=side

area =55*55cm^2

area of square=3025 cm^2

Find amount remaining after leakage:

leakage = 1/7 x 35000 = 5000

Remaining = 35000 - 5000 = 30000

.

Amount earned from the good wheat:

10% Gain = 10% x 30000 = 0.1 x 30000 = 3000

Total gain = 30000 + 3000 = 33 000

.

Amount gain from the spoilt wheat:

25% loss = 25% x 5000 = 0.25 x 5000 = 1250

Total wheat sold = 5000 - 1240 = 3750

.

Find total amount :

Total amount = 33 000 + 3750 = 36750

.

Find gain percentage:

Gain = 36750 - 35000 = 1750

Gain percentage = 1750/35000 x 100 = 5%

Answer: The gain was 5%

My question is another

wrong answer is710 2/7

The angle in the major segment is obtuse

Let the center of circle be O.Let the radii of the sector be OA and OB.Given∠AOB = 60°. In theΔAOB, OA=OB, So it is isosceles. => ∠OAB = OBA = [180° -∠AOB ] /2 = 60°Hence,ΔAOB is equilateral. Hence, AB = OA = 14 cm.

Area ofΔAOB =√3/4 * R²Area of sector OAB =π R² * (60°/360°) =π R² / 6

Area of minor segment AB : πR²/ 6 -√3/4 R² = 22/7 * 14² /6 - √3 /4 * 14² cm² = 17.75 cm²

Radius of circle = 35 cm see attachment , you can say that , major segment is the sum of right angled triangle and 3/4 th part of circle { as you know, centre of circle is 360° ,means area of complete circle is πr² , means for 360° , area of circle =πr², so, for 270° , area of circular part = 270°/360° πr² = 3/4 πr²}

area of major segment = area of triangle + 3/4 area of circle = 1/2 height × base + 3/4 πr² = 1/2 × r × r + 3/4πr² = r²/4( 2 + 3π)= r²/4 × (2 + 66/7) = 35 × 35/4 × 80/7 = 35 × 5/4 × 80= 35 × 5 × 20 = 3500 cm²

Hence, area of major segment is 3500 cm²

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? =(9984 ÷384)^2 =(26)^2 =676

STEPS OF CONSTRUCTION:

1.Draw a line segment AB = 9 CM2. Draw a circle with Centre O and radius 5 cm and the circle with Centre B and radius 3 cm.3. Now bisect AB. Let O be the midpoint of AB.4. Take O as Centre and AO as radius and draw a dotted circle which intersects the two given circles at N, Q, M and P.5. Join AN, AQ,BM and BP. These are the required tangents to each circle from the centre of the Other circle.

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Radius of circle = 35 cm you can say that , major segment is the sum of right angled triangle and 3/4 th part of circle { as you know, centre of circle is 360° ,means area of complete circle is πr² , means for 360° , area of circle =πr², so, for 270° , area of circular part = 270°/360° πr² = 3/4 πr²}

area of major segment = area of triangle + 3/4 area of circle = 1/2 height × base + 3/4 πr² = 1/2 × r × r + 3/4πr² = r²/4( 2 + 3π)= r²/4 × (2 + 66/7) = 35 × 35/4 × 80/7 = 35 × 5/4 × 80= 35 × 5 × 20 = 3500 cm²

Hence, area of major segment is 3500 cm²

Since, a and 1/a are the zeroes of the polynomial given, therefore a* 1/a = (k+7)/4. [ Product of zeroes= c/a]Therefore, (k+7)/4=1Ie,. k+7=4So,. k= -3

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difference is increasing by double so answer is 162

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Ar(ABC)/ar(PQR)=K²

K IS CONSTANT

K=3/2

SINCE TRIANGLES ARE SIMILAR

BC/PR=K

PR=BC/KPR=15x2/3

PR=10cm

2πr-r=37r=37/(2π-1)radius=7m

Circumference=2π7=14π=44m

12x 12 =144, 13x12 = 156; 14x12 =168, 15×12 = 180; 16x12 =192; 17x12 =204; 18x12 = 216, 19x12 = 228; 20x12 = 240

12×12=244, 13×12=156; 14×12=168, 15×12=180; 16×12=192; 17×12=204; 18×12=216; 19×12=228;20×12=240 answer

144156168180192204216228240

1. 1442.1563.1684.1805.1926.2047.2168.2289.240

Let original radius beRcm. Then, original circumference=2πR=cm.

New radius = (175%ofR)cm=(175/100×R)=7R/4cm.

New circumference=(2π×7R/4)cm==7πR/2cm

Increase in circumference=(7πR/2−2πR)cm=3πR/2cm.

Increase %=(3πR/2×1/2πR×100)% =75%.

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Volume of spher=(4/3)πr³=(4/3)(22/7)(10)³ cm³=4190.48 cm³

Volume of cone=4190.48 cm³(1/3)r²h=4190.48r²=4190.48(3)/(10)r²=1257.14r=35.45 cm

Therefore diameter of cone=70.9 cm

mam option mey 10 , 20, 40, 80 hai

If x = 3 is one root of the quadratic equation x2 – 2kx – 6 = 0, then find the value of k.

If x = 3 is one root of the quadratic equation x2 – 2kx – 6 = 0, then find the value of k.