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Class 10 > Learn Exercise 4.3 > Sum of the areas of two squares is 468 m2 . If the...

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Sum of the areas of two squares is 468 m2 . If the difference of their perimeters is 24 m, find the sides of the two squares.

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Let the sides of first and second square be X and Y . Area of first square = (X)²And,Area of second square = (Y)²According to question,(X)² + (Y)² = 468 m² ------------(1).Perimeter of first square = 4 × Xand,Perimeter of second square = 4 × YAccording...
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Let the sides of first and second square be X and Y .


Area of first square = (X)²

And,

Area of second square = (Y)²

According to question,

(X)² + (Y)² = 468 m² ------------(1).

Perimeter of first square = 4 × X

and,

Perimeter of second square = 4 × Y

According to question,

4X - 4Y = 24 -----------(2)

From equation (2) we get,

4X - 4Y = 24

4(X-Y) = 24

X - Y = 24/4 

X - Y = 6

X = 6+Y ---------(3)

Putting the value of X in equation (1)

(X)² + (Y)² = 468

(6+Y)² + (Y)² = 468

(6)² + (Y)² + 2 × 6 × Y + (Y)² = 468

36 + Y² + 12Y + Y² = 468

2Y² + 12Y - 468 +36 = 0

2Y² + 12Y -432 = 0

2( Y² + 6Y - 216) = 0

Y² + 6Y - 216 = 0

Y² + 18Y - 12Y -216 = 0

Y(Y+18) - 12(Y+18) = 0

(Y+18) (Y-12) = 0

(Y+18) = 0 Or (Y-12) = 0

Y = -18 OR Y = 12

Putting Y = 12 in EQUATION (3)

X = 6+Y = 6+12 = 18

Side of first square = X = 18 m

and,

Side of second square = Y = 12 m.
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Math Educator for Std.11th ,12th , Engineering Entrance and Degree Level with 11+ Years Experience

Area of square of side 18m + area of square of side 12m = 18 square + 12 square = 468 Perimeter of square of side 18m = 4x18 = 72, Perimeter of square of side 12m= 4x12 = 48 Difference = 72 - 48 = 24 Therefore , square of smaller side - 12m , square of bigger side - 18m
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Area of square of side 18m  + area of square of side 12m = 18 square + 12 square = 468 

Perimeter of square of side 18m = 4x18 = 72,

Perimeter of square of side 12m= 4x12 = 48

Difference = 72 - 48 = 24

Therefore , square of smaller side   - 12m , square of bigger side - 18m

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B.Tech, M.Tech, Delhi, 15 yrs teaching experience

18m and 12m
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Maths teacher (11 &12,board+iit jee+quant. Aptitude for cat) .Vedantu jee, unacademy.

let sides of first and second square be a and b . Area of first and second square = a *a and b*b units.given(a)² + (b)² = 468 m² eq (1).also , Perimeter of first square = 4 aPerimeter of second square = 4 bA/q4a - 4b = 24 ...
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let sides of first and second square be a and b .


Area of first and second  square = a *a and b*b units.

given

(a)² + (b)² = 468 m²                          eq (1).

also ,
Perimeter of first square = 4 a

Perimeter of second square = 4 b

A/q

4a - 4b = 24                             eq--(2)


a- b = 24/4 

a - b = 6

a = 6+b     eq   -(3)

from  equation (1)

(a)² + (b)² = 468

(6+b)² + (b)² = 468


simplify 

2b² + 12b -432 = 0


b² + 18b - 12b -216 = 0

b(b+18) - 12(b+18) = 0

(b+18) (b-12) = 0



b = -18 ,b = 12

Put  b = 12 in EQ (3)

a = 6+b 
6+12 = 18

Side of first square  is a = 18 m

thus

Side of second square, b = 12 m.
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Maths || Science || Excel is Fun

Let us assume side of square 1 is A and side of square 2 is B. Area of square 1 = A2 Area of square 2 = B2 As per statement 1: A2 + B2 = 468 (area of a square = side2 As per statement 2: 4A + 4B = 24
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Trainer

Let 'a' and 'b' be sides of two squares. so -----------(1) and difference in their perimeters is 24 => 4a-4b =24-------(2) On solving 1 and 2 eq. we get: a=18 and b=12
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Let 'a' and 'b' be sides of two squares.

so  -----------(1)

and difference in their perimeters is 24 => 4a-4b =24-------(2)

On solving 1 and 2 eq. we get:

a=18 and b=12

 

 

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Maths || Science || Excel is Fun

As per statement 2: 4A - 4B = 24 i.e. A - B = 6 Solving the two equations will be A = 18 , B = 12
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NOURISH YOUR FUNDAMENTALS TO LEARN COMPLEX CONCEPTS WITH EASE.

Sides of square are 12 m and 18m.
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Tutor for a better future.

Side of smaller square = 12m Side of larger square = 18m
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Computer Programming Languages Trainer (Javascript , Python etc)

Let the sides of first and second square be a and b. Area of first square = (a)² And, Area of second square = (b)²According to question,(a)² + (b)² = 468 m² ------------(1).Perimeter of first square = 4 × aand,Perimeter of second square = 4 × bAccording...
read more

Let the sides of first and second square be a and b.

Area of first square = (a)²

And,


Area of second square = (b)²

According to question,

(a)² + (b)² = 468 m² ------------(1).

Perimeter of first square = 4 × a

and,

Perimeter of second square = 4 × b

According to question,

4a - 4b = 24 -----------(2)

From equation (2) we get,

4a - 4b = 24

4(a-b) = 24

a - b = 24/4 

a - b = 6

a = 6+b ---------(3)

Putting the value of a in equation (1)

(a)² + (b)² = 468

(6+b)² + (b)² = 468

(6)² + (b)² + 2 × 6 × b + (b)² = 468

36 + b² + 12b + b² = 468

2b² + 12b - 468 +36 = 0

2b² + 12b -432 = 0

2( b² + 6b - 216) = 0

b² + 6b - 216 = 0

b² + 18b - 12b -216 = 0

b(b+18) - 12(b+18) = 0

(b+18) (b-12) = 0

(b+18) = 0 Or (b-12) = 0

b = -18 OR b = 12

Putting b = 12 in EQUATION (3)

a = 6+b = 6+12 = 18

Side of first square = a = 18 m

and,

Side of second square = b = 12 m
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