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Math Olympiad Test: Real Numbers- 1 - Class 10 MCQ


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10 Questions MCQ Test Olympiad Preparation for Class 10 - Math Olympiad Test: Real Numbers- 1

Math Olympiad Test: Real Numbers- 1 for Class 10 2024 is part of Olympiad Preparation for Class 10 preparation. The Math Olympiad Test: Real Numbers- 1 questions and answers have been prepared according to the Class 10 exam syllabus.The Math Olympiad Test: Real Numbers- 1 MCQs are made for Class 10 2024 Exam. Find important definitions, questions, notes, meanings, examples, exercises, MCQs and online tests for Math Olympiad Test: Real Numbers- 1 below.
Solutions of Math Olympiad Test: Real Numbers- 1 questions in English are available as part of our Olympiad Preparation for Class 10 for Class 10 & Math Olympiad Test: Real Numbers- 1 solutions in Hindi for Olympiad Preparation for Class 10 course. Download more important topics, notes, lectures and mock test series for Class 10 Exam by signing up for free. Attempt Math Olympiad Test: Real Numbers- 1 | 10 questions in 10 minutes | Mock test for Class 10 preparation | Free important questions MCQ to study Olympiad Preparation for Class 10 for Class 10 Exam | Download free PDF with solutions
Math Olympiad Test: Real Numbers- 1 - Question 1
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What is the L.C.M. of 144, 180 and 192 by prime factorization method?

Detailed Solution for Math Olympiad Test: Real Numbers- 1 - Question 1

L.C.M. of 144, 180, 192
144 = 24 × 32
180 = 22 × 32 × 5
192 = 26 × 3
∴ L.C.M. = 26 × 32 × 5 = 2880

Math Olympiad Test: Real Numbers- 1 - Question 2
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What is the largest number that divides 445, 572 and 699 having remainders 4, 5, 6 respectively?

Detailed Solution for Math Olympiad Test: Real Numbers- 1 - Question 2

Here 445 - 4 = 441; 572 - 5 = 567, 699 - 6 = 693
Now we have to find H.C.F. of 441, 567, 693 is
441 = 3 × 3 × 7 × 7
567 = 3 × 3 × 3 × 3 × 7
693 = 3 × 3 × 7 × 11
The common factors are 3 × 3 × 7 = 63.

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Math Olympiad Test: Real Numbers- 1 - Question 3
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What is the largest positive integer that will divide 398, 436 and 542 leaving remainder 7, 11 and 15 respectively?

Detailed Solution for Math Olympiad Test: Real Numbers- 1 - Question 3

Solve for the HCF of the given numbers by deducting the given remainders
Subtracting the remainders from numbers we get,
⇒ 398 − 7 = 391 [As the remainder is 7]
⇒ 436 − 11 = 425 [As the remainder is 11]
⇒ 542 − 15 = 527 [As the remainder is 15]
HCF of these new numbers is the largest number that divides 398, 436, 542 leaving respective remainders.
Factors of 391 = 17 × 23
Factors of 425 = 17 × 52
Factors of 527 = 17 × 31
The HCF of 391, 425, 527 is17.
Hence, the largest positive integer that will divide 398, 436 and 542, leaving remainders7, 11 and 15 respectively is 17.

Math Olympiad Test: Real Numbers- 1 - Question 4
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What is the largest number which divides 615 and 963 leaving remainder 6 in each case?
Detailed Solution for Math Olympiad Test: Real Numbers- 1 - Question 4

In order to find the largest number which divides 615 and 963 leaving remainder 6 in each case, we need to deduct the remainder 6 from both the numbers and find their HCF.
615 − 6 = 609
963 − 6 = 957
Prime Factorising both 609 and 657 we get,
609 = 3 x 3 x 29  and
957 = 3 x 11 x 29
HCF of 609, 957 = 3 × 29
= 3 x 29 = 87
∴ The largest number which divides 615 and 963 leaving remainder 6 in each case is 87.

Math Olympiad Test: Real Numbers- 1 - Question 5
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What is the smallest number that when divided by 35, 56, and 91 leaves remainder 7 in each case?
Detailed Solution for Math Olympiad Test: Real Numbers- 1 - Question 5

The smallest number which when divided by 35, 56 and 91 = LCM of 35, 56 and 91
35 = 5 x 7
56 = 2 x 2 x 2 x 7
91 = 7 x 13
LCM = 7 x 5 x 2 x 2 x 2 x 13 = 3640
The smallest number that when divided by 35, 56, 91 leaves a remainder 7 in each case = 3640 + 7 = 3647.

Math Olympiad Test: Real Numbers- 1 - Question 6
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If the H.C.F. of 408 and 1032 is expressed in the form of 1032m - 408 × 5. What is the value of m?
Detailed Solution for Math Olympiad Test: Real Numbers- 1 - Question 6

Given H.C.F. of 408 and 1032 = 24 and
1032m - 408 × 5 = 24
⇒ 1032m = 24 + 2040
⇒ 1032m = 2064
⇒ m = 2064/1032
= 2

Math Olympiad Test: Real Numbers- 1 - Question 7
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Find the sum of the exponents of the prime factors in the prime factorization of 196.
Detailed Solution for Math Olympiad Test: Real Numbers- 1 - Question 7

Using the factor tree for prime factorization, we have:

We have 196 = 22 × 72
2 + 2  = 4

Math Olympiad Test: Real Numbers- 1 - Question 8
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If 5005 is expressed in the term of product of price factors, then which prime factor is the largest?
Detailed Solution for Math Olympiad Test: Real Numbers- 1 - Question 8

5005 can be expressed as product of prime factor as:
5005 = 5 × 7 × 11 × 13
Thus, 5005 can be expressed as product of prime factors as 5005 = 5 × 7 × 11 × 13.

Math Olympiad Test: Real Numbers- 1 - Question 9
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The H.C.F of two numbers is 145, their L.C.M. is 2175. If one number is 725, then what is the other number?
Detailed Solution for Math Olympiad Test: Real Numbers- 1 - Question 9

product of number = LCM x HCF
a x b = LCM x HCF
Other number

Math Olympiad Test: Real Numbers- 1 - Question 10
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If n  is any natural number then 6n - 5n always ends with
Detailed Solution for Math Olympiad Test: Real Numbers- 1 - Question 10

6n - 5n = 61 - 51 = 1
62 - 52 = 36 - 25 = 11 and so on

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