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Test: Equations Reducible to Quadratic Form - CA Foundation MCQ


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10 Questions MCQ Test Quantitative Aptitude for CA Foundation - Test: Equations Reducible to Quadratic Form

Test: Equations Reducible to Quadratic Form for CA Foundation 2024 is part of Quantitative Aptitude for CA Foundation preparation. The Test: Equations Reducible to Quadratic Form questions and answers have been prepared according to the CA Foundation exam syllabus.The Test: Equations Reducible to Quadratic Form MCQs are made for CA Foundation 2024 Exam. Find important definitions, questions, notes, meanings, examples, exercises, MCQs and online tests for Test: Equations Reducible to Quadratic Form below.
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Test: Equations Reducible to Quadratic Form - Question 1

Ruhi’s mother is 26 years older than her. The product of their ages (in years) 3 years from now will be 360. Form a Quadratic equation so as to find Ruhi’s age​

Detailed Solution for Test: Equations Reducible to Quadratic Form - Question 1

Ruhi’s mother is 26 years older than her
So let Ruhi’s age is x
So mother’s age is x+26
The product of their ages 3 years from now will be 360
So After three years , Ruhi’s age will be x+3
Mother’s age will be x+26+3=x+29
Product of their ages =(x + 3)(x + 29)=360
x2+(3+29)x+87=360
x2+32x-273=0

Test: Equations Reducible to Quadratic Form - Question 2

Divide 16 into two parts such that twice the square of the larger part exceeds the square of the smaller part by 164.​

Detailed Solution for Test: Equations Reducible to Quadratic Form - Question 2

Let x and (16 - x) are two parts of 16 where (16 - x) is longer and x is smaller .
A/C to question,
2 × square of longer = square of smaller + 164
⇒ 2 × (16 - x)² = x² + 164
⇒ 2 × (256 + x² - 32x ) = x² + 164
⇒ 512 + 2x² - 64x = x² + 164
⇒ x² - 64x + 512 - 164 = 0
⇒ x² - 64x + 348 = 0
⇒x² - 58x - 6x + 348 = 0
⇒ x(x - 58) - 6(x - 58) = 0
⇒(x - 6)(x - 58) = 0
⇒ x = 6 and 58

But x ≠ 58 because x < 16
so, x = 6 and 16 - x = 10

Hence, answer is 6 and 10.

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Test: Equations Reducible to Quadratic Form - Question 3

If ax2 + bx + c, a ≠ 0 is factorizable into product of two linear factors, then roots of ax2 + bx + c = 0 can be found by equating each factor to

Detailed Solution for Test: Equations Reducible to Quadratic Form - Question 3

Roots of the equation means a value of x such that the equation becomes zero when that value is substituted. If the equation can be represented into product of two linear equations then the roots can be found by keeping each of the equation equal to zero.We know two numbers in multiplication is equal to zero only when either of the number is zero.So we get zeros of the equation putting the two linear equations equal to 0

Test: Equations Reducible to Quadratic Form - Question 4

Reduction of a rupee in the price of onion makes the possibility of buying one more kg of onion for Rs.56. Find the original price of the onion per kg?

Detailed Solution for Test: Equations Reducible to Quadratic Form - Question 4

Test: Equations Reducible to Quadratic Form - Question 5

What are the two consecutive even integers whose squares have sum 340?​

Test: Equations Reducible to Quadratic Form - Question 6

The length of the plot in meters is 1 more than twice its breadth and the area of a rectangle plot is 528m2. Which of the following quadratic equations represents the given situation:​

Test: Equations Reducible to Quadratic Form - Question 7

Find the two consecutive odd positive integers, sum of whose square is 290

Test: Equations Reducible to Quadratic Form - Question 8

If the length of the rectangle is one more than the twice its width, and the area of the rectangle is 300 square meter. What is the measure of the width of the rectangle?

Test: Equations Reducible to Quadratic Form - Question 9

The sum of areas of two squares is 468m2. If the difference of their perimeters is 24m, then the sides of the two squares are:​

Detailed Solution for Test: Equations Reducible to Quadratic Form - Question 9

Let us say that the sides of the two squares are 'a' and 'b'
Sum of their areas = a2 + b2 = 468
Difference of their perimeters = 4a - 4b = 24
=> a - b = 6
=> a = b + 6
So, we get the equation
(b + 6)2 + b2 = 468
=> 2b2 + 12b + 36 = 468
=> b2 + 6b - 216 = 0
=> b = 12
=> a = 18
The sides of the two squares are 12 and 18.

Test: Equations Reducible to Quadratic Form - Question 10

If b2 - 4ac = 0 then The roots of the Quadratic equation ax2 + bx + c = 0 are given by :

Detailed Solution for Test: Equations Reducible to Quadratic Form - Question 10

Formula for finding the roots of a quadratic equation is

So since 
b- 4ac = 0, putting this value in the equation

So there are repeated roots

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