Concept-wise Practice

recurring-decimal MCQ Questions for Class 10

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Practice Questions

148 questions tagged with recurring-decimal.

\(0.\overline{045}\) को सरलतम भिन्न में लिखने पर हर क्या होगा?

What is the denominator when \(0.\overline{045}\) is written in lowest fraction form?

Explanation opens after your attempt
Correct Answer

A. (37)

Step 1

Concept

\(0.\overline{045}=\frac{45}{999}=\frac{5}{111}\), so the denominator is (111). An initial zero inside the repeating block is also counted as a digit.

Step 2

Why this answer is correct

The correct answer is A. (37). \(0.\overline{045}=\frac{45}{999}=\frac{5}{111}\), so the denominator is (111). An initial zero inside the repeating block is also counted as a digit.

Step 3

Exam Tip

\(0.\overline{045}=\frac{45}{999}=\frac{5}{111}\) है इसलिए हर (111) है। आवर्ती भाग में आरंभिक शून्य को भी अंक माना जाता है।

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\(\frac{175}{2^2\cdot 5^3\cdot 7^2}\) का दशमलव प्रसार कैसा होगा?

What type of decimal expansion will \(\frac{175}{2^2\cdot 5^3\cdot 7^2}\) have?

Explanation opens after your attempt
Correct Answer

C. असांत आवर्तीNon-terminating recurring

Step 1

Concept

Since \(175=5^2\cdot 7\), the reduced denominator is \(2^2\cdot 5\cdot 7\). Since (7) remains, the decimal is non-terminating recurring.

Step 2

Why this answer is correct

The correct answer is C. असांत आवर्ती / Non-terminating recurring. Since \(175=5^2\cdot 7\), the reduced denominator is \(2^2\cdot 5\cdot 7\). Since (7) remains, the decimal is non-terminating recurring.

Step 3

Exam Tip

\(175=5^2\cdot 7\) कटने पर हर \(2^2\cdot 5\cdot 7\) बचता है। (7) बचने से दशमलव असांत आवर्ती होगा।

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\(0.00\overline{63}\) का सरलतम भिन्न रूप कौन-सा है?

Which is the lowest fraction form of \(0.00\overline{63}\)?

Explanation opens after your attempt
Correct Answer

A. \(\frac{7}{1100}\)

Step 1

Concept

Two non-repeating zeros and two repeating digits give \(\frac{63}{9900}\). Reducing it gives \(\frac{7}{1100}\).

Step 2

Why this answer is correct

The correct answer is A. \(\frac{7}{1100}\). Two non-repeating zeros and two repeating digits give \(\frac{63}{9900}\). Reducing it gives \(\frac{7}{1100}\).

Step 3

Exam Tip

दो अनावर्ती शून्य और दो आवर्ती अंकों से \(\frac{63}{9900}\) बनता है। इसे सरल करने पर \(\frac{7}{1100}\) मिलता है।

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\(\frac{1}{2^2\cdot 5^5\cdot 13}\) में आवर्ती भाग शुरू होने से पहले कितने अनावर्ती दशमलव अंक आएँगे?

In \(\frac{1}{2^2\cdot 5^5\cdot 13}\), how many non-repeating decimal digits appear before the recurring part starts?

Explanation opens after your attempt
Correct Answer

B. (5)

Step 1

Concept

The factor (13) makes the decimal recurring, and the larger exponent among (2) and (5) is (5), giving the initial non-repeating part. Understand recurrence and delay separately.

Step 2

Why this answer is correct

The correct answer is B. (5). The factor (13) makes the decimal recurring, and the larger exponent among (2) and (5) is (5), giving the initial non-repeating part. Understand recurrence and delay separately.

Step 3

Exam Tip

(13) के कारण दशमलव आवर्ती होगा और (2), (5) की बड़ी घात (5) आरंभिक अनावर्ती भाग देगी। आवर्तीपन और आरंभिक देरी को अलग-अलग समझें।

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\(0.2\overline{54}\) का सरलतम भिन्न रूप कौन-सा है?

Which is the lowest fraction form of \(0.2\overline{54}\)?

Explanation opens after your attempt
Correct Answer

A. \(\frac{14}{55}\)

Step 1

Concept

The non-repeating part (2) and repeating part (54) give \(\frac{252}{990}\), which reduces to \(\frac{14}{55}\). In exams, identify repeating and non-repeating digits separately.

Step 2

Why this answer is correct

The correct answer is A. \(\frac{14}{55}\). The non-repeating part (2) and repeating part (54) give \(\frac{252}{990}\), which reduces to \(\frac{14}{55}\). In exams, identify repeating and non-repeating digits separately.

Step 3

Exam Tip

सांत भाग (2) और आवर्ती भाग (54) से भिन्न \(\frac{252}{990}\) बनती है जो \(\frac{14}{55}\) तक सरल होती है। परीक्षा में आवर्ती और अनावर्ती अंकों को अलग पहचानें।

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\(\frac{1}{48}\), \(\frac{1}{75}\), \(\frac{1}{112}\), \(\frac{1}{150}\) में किसमें आवर्ती भाग से पहले सबसे अधिक अनावर्ती अंक होंगे?

Among \(\frac{1}{48}\), \(\frac{1}{75}\), \(\frac{1}{112}\), and \(\frac{1}{150}\), which has the most non-repeating digits before the recurring part?

Explanation opens after your attempt
Correct Answer

C. \(\frac{1}{112}\)

Step 1

Concept

\(112=2^4\cdot 7\), so (4) non-repeating digits appear before the recurring part. For comparison, check the larger power of (2) and (5).

Step 2

Why this answer is correct

The correct answer is C. \(\frac{1}{112}\). \(112=2^4\cdot 7\), so (4) non-repeating digits appear before the recurring part. For comparison, check the larger power of (2) and (5).

Step 3

Exam Tip

\(112=2^4\cdot 7\), इसलिए आवर्ती भाग से पहले (4) अनावर्ती अंक आएँगे। तुलना में (2) और (5) की बड़ी घात देखें।

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\(\frac{2^5\cdot 7}{2^8\cdot 5^2\cdot 7^2}\) का दशमलव प्रसार कैसा होगा?

What type of decimal expansion will \(\frac{2^5\cdot 7}{2^8\cdot 5^2\cdot 7^2}\) have?

Explanation opens after your attempt
Correct Answer

B. असांत आवर्तीNon-terminating recurring

Step 1

Concept

After cancellation, the denominator becomes \(2^3\cdot 5^2\cdot 7\). Since (7) remains, the decimal is non-terminating recurring.

Step 2

Why this answer is correct

The correct answer is B. असांत आवर्ती / Non-terminating recurring. After cancellation, the denominator becomes \(2^3\cdot 5^2\cdot 7\). Since (7) remains, the decimal is non-terminating recurring.

Step 3

Exam Tip

कटौती के बाद हर \(2^3\cdot 5^2\cdot 7\) बचेगा। (7) बचने से दशमलव असांत आवर्ती होगा।

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यदि \(\frac{p}{q}\) का दशमलव असांत आवर्ती है और भिन्न सरलतम रूप में है, तो (q) के बारे में सही कथन क्या है?

If \(\frac{p}{q}\) has a non-terminating recurring decimal and is in lowest form, what is correct about (q)?

Explanation opens after your attempt
Correct Answer

C. (q) में (2) और (5) के अलावा कम से कम एक अभाज्य होगा(q) has at least one prime other than (2) and (5)

Step 1

Concept

For a non-terminating recurring decimal, the reduced denominator has at least one prime factor other than (2) and (5). Factors (2) or (5) may also be present, but they are not enough alone.

Step 2

Why this answer is correct

The correct answer is C. (q) में (2) और (5) के अलावा कम से कम एक अभाज्य होगा / (q) has at least one prime other than (2) and (5). For a non-terminating recurring decimal, the reduced denominator has at least one prime factor other than (2) and (5). Factors (2) or (5) may also be present, but they are not enough alone.

Step 3

Exam Tip

असांत आवर्ती दशमलव के लिए सरलतम हर में (2) और (5) के अलावा कोई अभाज्य गुणनखंड बचता है। (2) या (5) साथ में हो सकते हैं, पर अकेले पर्याप्त नहीं।

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\(\frac{1}{2^2\cdot 5^2\cdot 9}\) के बारे में सही कथन कौन-सा है?

Which statement is correct about \(\frac{1}{2^2\cdot 5^2\cdot 9}\)?

Explanation opens after your attempt
Correct Answer

B. असांत आवर्ती और (2) अनावर्ती आरंभिक अंकNon-terminating recurring with (2) initial non-repeating digits

Step 1

Concept

Since \(9=3^2\) remains, the decimal is non-terminating recurring. The larger exponent in \(2^2\cdot 5^2\) gives (2) initial non-repeating digits.

Step 2

Why this answer is correct

The correct answer is B. असांत आवर्ती और (2) अनावर्ती आरंभिक अंक / Non-terminating recurring with (2) initial non-repeating digits. Since \(9=3^2\) remains, the decimal is non-terminating recurring. The larger exponent in \(2^2\cdot 5^2\) gives (2) initial non-repeating digits.

Step 3

Exam Tip

\(9=3^2\) बचता है, इसलिए दशमलव असांत आवर्ती होगा। \(2^2\cdot 5^2\) की बड़ी घात (2) आरंभिक अनावर्ती भाग दिखाती है।

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\(0.\overline{54}\) और \(0.\overline{45}\) का योग किस प्रकार का दशमलव है?

What type of decimal is the sum of \(0.\overline{54}\) and \(0.\overline{45}\)?

Explanation opens after your attempt
Correct Answer

A. सांतTerminating

Step 1

Concept

\(0.\overline{54}=\frac{54}{99}\) and \(0.\overline{45}=\frac{45}{99}\), so their sum is (1). The sum of two recurring decimals can sometimes be terminating.

Step 2

Why this answer is correct

The correct answer is A. सांत / Terminating. \(0.\overline{54}=\frac{54}{99}\) and \(0.\overline{45}=\frac{45}{99}\), so their sum is (1). The sum of two recurring decimals can sometimes be terminating.

Step 3

Exam Tip

\(0.\overline{54}=\frac{54}{99}\) और \(0.\overline{45}=\frac{45}{99}\), इसलिए योग (1) है। दो आवर्ती दशमलवों का योग कभी-कभी सांत हो सकता है।

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यदि \(\frac{p}{q}\) सरलतम रूप में है और \(q=2^m5^n\cdot 7^r\), जहाँ (r>0), तो दशमलव प्रसार कैसा होगा?

If \(\frac{p}{q}\) is in lowest form and \(q=2^m5^n\cdot 7^r\), where (r>0), what type of decimal expansion will it have?

Explanation opens after your attempt
Correct Answer

B. असांत आवर्तीNon-terminating recurring

Step 1

Concept

A positive power of (7) remains in the reduced denominator. Therefore the rational number has a non-terminating recurring decimal.

Step 2

Why this answer is correct

The correct answer is B. असांत आवर्ती / Non-terminating recurring. A positive power of (7) remains in the reduced denominator. Therefore the rational number has a non-terminating recurring decimal.

Step 3

Exam Tip

सरलतम हर में (7) की धनात्मक घात बची है। इसलिए परिमेय संख्या का दशमलव असांत आवर्ती होगा।

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\(\frac{1}{2^4\cdot 5^3\cdot 37}\) के दशमलव में आवर्ती भाग से पहले कितने अनावर्ती अंक होंगे?

In the decimal expansion of \(\frac{1}{2^4\cdot 5^3\cdot 37}\), how many non-repeating digits appear before the recurring part?

Explanation opens after your attempt
Correct Answer

B. (4)

Step 1

Concept

The factor (37) makes the decimal recurring, and the larger exponent of (2) and (5) is (4), giving the non-repeating start. In mixed denominators, the larger exponent gives the delay.

Step 2

Why this answer is correct

The correct answer is B. (4). The factor (37) makes the decimal recurring, and the larger exponent of (2) and (5) is (4), giving the non-repeating start. In mixed denominators, the larger exponent gives the delay.

Step 3

Exam Tip

(37) के कारण दशमलव आवर्ती होगा और (2), (5) की बड़ी घात (4) अनावर्ती आरंभ देगी। ऐसे मिश्रित हर में बड़ी घात से देरी मिलती है।

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\(0.\overline{027}\) को सरलतम भिन्न में लिखने पर हर क्या होगा?

What is the denominator when \(0.\overline{027}\) is written in lowest fraction form?

Explanation opens after your attempt
Correct Answer

A. (37)

Step 1

Concept

\(0.\overline{027}=\frac{27}{999}=\frac{1}{37}\). An initial zero inside the repeating block is counted as a digit.

Step 2

Why this answer is correct

The correct answer is A. (37). \(0.\overline{027}=\frac{27}{999}=\frac{1}{37}\). An initial zero inside the repeating block is counted as a digit.

Step 3

Exam Tip

\(0.\overline{027}=\frac{27}{999}=\frac{1}{37}\)। आवर्ती भाग में आरंभिक शून्य भी अंकों की संख्या में गिना जाता है।

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कौन-सी भिन्न असांत आवर्ती दशमलव देगी?

Which fraction will give a non-terminating recurring decimal?

Explanation opens after your attempt
Correct Answer

C. \(\frac{49}{2\cdot 5^2\cdot 7^2}\)

Step 1

Concept

In \(\frac{49}{2\cdot 5^2\cdot 7^2}\), \(49=7^2\) cancels completely, so it terminates. For a non-terminating recurring decimal, a factor other than (2) and (5) must remain in the reduced denominator.

Step 2

Why this answer is correct

The correct answer is C. \(\frac{49}{2\cdot 5^2\cdot 7^2}\). In \(\frac{49}{2\cdot 5^2\cdot 7^2}\), \(49=7^2\) cancels completely, so it terminates. For a non-terminating recurring decimal, a factor other than (2) and (5) must remain in the reduced denominator.

Step 3

Exam Tip

\(\frac{49}{2\cdot 5^2\cdot 7^2}\) में \(49=7^2\) पूरा कट जाता है, इसलिए यह सांत है। सही असांत आवर्ती के लिए सरलतम हर में (2) और (5) के अलावा कोई गुणनखंड बचना चाहिए।

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किस विकल्प में दी गई भिन्न असांत आवर्ती दशमलव देगी?

Which option will give a non-terminating recurring decimal?

Explanation opens after your attempt
Correct Answer

A. \(\frac{121}{2^2\cdot 5^3\cdot 11}\)

Step 1

Concept

In the first option, \(121=11^2\) cancels the denominator's (11), leaving only (2) and (5) in the denominator, so it terminates. No option is non-terminating here, so the options need rechecking.

Step 2

Why this answer is correct

The correct answer is A. \(\frac{121}{2^2\cdot 5^3\cdot 11}\). In the first option, \(121=11^2\) cancels the denominator's (11), leaving only (2) and (5) in the denominator, so it terminates. No option is non-terminating here, so the options need rechecking.

Step 3

Exam Tip

पहले विकल्प में \(121=11^2\) से एक (11) कटेगा पर दूसरा (11) अंश में रहेगा और हर में केवल (2), (5) बचेंगे, इसलिए यह सांत है। सही असांत विकल्प नहीं बनता, इसलिए ऐसे प्रश्न में विकल्पों की दोबारा जाँच जरूरी है।

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\(0.00\overline{72}\) का सरलतम भिन्न रूप कौन-सा है?

Which is the lowest fraction form of \(0.00\overline{72}\)?

Explanation opens after your attempt
Correct Answer

A. \(\frac{2}{275}\)

Step 1

Concept

Two non-repeating zeros and two repeating digits give \(\frac{72}{9900}\). Reducing it gives \(\frac{2}{275}\).

Step 2

Why this answer is correct

The correct answer is A. \(\frac{2}{275}\). Two non-repeating zeros and two repeating digits give \(\frac{72}{9900}\). Reducing it gives \(\frac{2}{275}\).

Step 3

Exam Tip

दो अनावर्ती शून्य और दो आवर्ती अंकों से \(\frac{72}{9900}\) बनता है। इसे सरल करने पर \(\frac{2}{275}\) मिलता है।

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कौन-सा दशमलव परिमेय है लेकिन किसी सांत दशमलव के बराबर नहीं है?

Which decimal is rational but not equal to any terminating decimal?

Explanation opens after your attempt
Correct Answer

C. \(0.\overline{625}\)

Step 1

Concept

\(0.\overline{625}\) is a fixed recurring decimal, so it is rational but not terminating. A decimal is terminating only when zeros continue after some point.

Step 2

Why this answer is correct

The correct answer is C. \(0.\overline{625}\). \(0.\overline{625}\) is a fixed recurring decimal, so it is rational but not terminating. A decimal is terminating only when zeros continue after some point.

Step 3

Exam Tip

\(0.\overline{625}\) स्थिर आवर्ती दशमलव है, इसलिए परिमेय है पर सांत नहीं है। अंत में केवल शून्य होने पर ही दशमलव सांत माना जाता है।

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\(\frac{1}{2^3\cdot 5^2\cdot 7^2}\) में आवर्ती भाग शुरू होने से पहले कितने अनावर्ती दशमलव अंक आएँगे?

In \(\frac{1}{2^3\cdot 5^2\cdot 7^2}\), how many non-repeating decimal digits will appear before the recurring part starts?

Explanation opens after your attempt
Correct Answer

B. (3)

Step 1

Concept

The factor \(7^2\) makes the decimal recurring, and the larger exponent among (2) and (5) is (3), giving the non-repeating start. In exams, separate recurrence from the initial delay.

Step 2

Why this answer is correct

The correct answer is B. (3). The factor \(7^2\) makes the decimal recurring, and the larger exponent among (2) and (5) is (3), giving the non-repeating start. In exams, separate recurrence from the initial delay.

Step 3

Exam Tip

हर में \(7^2\) होने से दशमलव आवर्ती होगा और (2), (5) की बड़ी घात (3) आरंभिक अनावर्ती भाग देती है। परीक्षा में आवर्तीपन और आरंभिक देरी को अलग-अलग पहचानें।

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\(0.3\overline{18}\) को सरलतम भिन्न में बदलने पर हर कौन-सा है?

What is the denominator when \(0.3\overline{18}\) is converted to lowest fraction form?

Explanation opens after your attempt
Correct Answer

A. (22)

Step 1

Concept

\(0.3\overline{18}=0.3181818\ldots=\frac{315}{990}=\frac{7}{22}\). Always reduce the final fraction in mixed recurring decimals.

Step 2

Why this answer is correct

The correct answer is A. (22). \(0.3\overline{18}=0.3181818\ldots=\frac{315}{990}=\frac{7}{22}\). Always reduce the final fraction in mixed recurring decimals.

Step 3

Exam Tip

\(0.3\overline{18}=0.3181818\ldots=\frac{315}{990}=\frac{7}{22}\)। मिश्रित आवर्ती दशमलव में अंतिम उत्तर हमेशा सरल करें।

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\(\frac{18}{999}\) का दशमलव प्रसार कैसा होगा?

What type of decimal expansion will \(\frac{18}{999}\) have?

Explanation opens after your attempt
Correct Answer

B. असांत आवर्तीNon-terminating recurring

Step 1

Concept

\(\frac{18}{999}=\frac{2}{111}\).

Step 2

Why this answer is correct

\(111=3\cdot 37\), which has factors other than (2) and (5). Therefore the decimal is non-terminating recurring.

Step 3

Exam Tip

Fractions from recurring decimals often have denominators made from (9)'s. चरण 1: \(\frac{18}{999}=\frac{2}{111}\) है। चरण 2: \(111=3\cdot 37\), जिसमें (2) और (5) के अलावा गुणनखंड हैं। इसलिए दशमलव असांत आवर्ती होगा। चरण 3: आवर्ती दशमलव से आई भिन्नों में हर में अक्सर (9) वाले गुणनखंड होते हैं।

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यदि किसी दशमलव में \(0.357357357\ldots\) जैसा स्थिर आवर्ती खंड है, तो वह किस प्रकार की संख्या है?

If a decimal has a fixed repeating block like \(0.357357357\ldots\), what type of number is it?

Explanation opens after your attempt
Correct Answer

A. परिमेय संख्याRational number

Step 1

Concept

The block (357) repeats in a fixed way.

Step 2

Why this answer is correct

A fixed recurring decimal can always be written as a rational number.

Step 3

Exam Tip

Identify rationality when a repeating block is fixed. चरण 1: (357) खंड बार-बार समान रूप से दोहर रहा है। चरण 2: स्थिर आवर्ती दशमलव हमेशा परिमेय संख्या के रूप में लिखा जा सकता है। चरण 3: आवर्ती खंड देखकर तुरंत परिमेयता पहचानें।

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कौन-सा हर सरलतम भिन्न में असांत आवर्ती दशमलव देगा?

Which denominator in a reduced fraction will give a non-terminating recurring decimal?

Explanation opens after your attempt
Correct Answer

D. \(2^4\cdot 5\cdot 23\)

Step 1

Concept

For a non-terminating recurring decimal, the reduced denominator must have a prime factor other than (2) and (5).

Step 2

Why this answer is correct

\(2^4\cdot 5\cdot 23\) contains (23). Hence it gives a non-terminating recurring decimal.

Step 3

Exam Tip

Even one extra prime factor prevents termination. चरण 1: असांत आवर्ती दशमलव के लिए सरलतम हर में (2) और (5) के अलावा कोई अभाज्य गुणनखंड होना चाहिए। चरण 2: \(2^4\cdot 5\cdot 23\) में (23) मौजूद है। इसलिए यह असांत आवर्ती दशमलव देगा। चरण 3: केवल एक अतिरिक्त अभाज्य गुणनखंड भी सांतता रोक देता है।

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\(\frac{1}{18}\), \(\frac{1}{45}\), \(\frac{1}{72}\), \(\frac{1}{90}\) में किसमें आवर्ती भाग से पहले सबसे अधिक अनावर्ती अंक आएँगे?

Among \(\frac{1}{18}\), \(\frac{1}{45}\), \(\frac{1}{72}\), and \(\frac{1}{90}\), which has the most non-repeating digits before the recurring part?

Explanation opens after your attempt
Correct Answer

C. \(\frac{1}{72}\)

Step 1

Concept

The larger power of (2) or (5) in the denominator tells the delay before the recurring part starts.

Step 2

Why this answer is correct

\(72=2^3\cdot 3^2\), so it has a delay of (3) places. The others have larger exponent (1) or (2).

Step 3

Exam Tip

Understand the initial non-repeating part in non-terminating recurring decimals. चरण 1: हर में (2) और (5) की बड़ी घात आवर्ती भाग शुरू होने की देरी बताती है। चरण 2: \(72=2^3\cdot 3^2\), इसलिए इसमें देरी (3) स्थानों की होगी। बाकी में बड़ी घात (1) या (2) है। चरण 3: असांत आवर्ती दशमलव में आरंभिक अनावर्ती भाग को भी समझें।

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\(\frac{98}{2\cdot 5\cdot 7^3}\) का दशमलव प्रसार कैसा होगा?

What type of decimal expansion will \(\frac{98}{2\cdot 5\cdot 7^3}\) have?

Explanation opens after your attempt
Correct Answer

B. असांत आवर्तीNon-terminating recurring

Step 1

Concept

\(98=2\cdot 7^2\).

Step 2

Why this answer is correct

After cancellation, the denominator becomes \(5\cdot 7\). Since (7) remains, the decimal is non-terminating recurring.

Step 3

Exam Tip

Check whether the whole power cancels or only part of it cancels. चरण 1: \(98=2\cdot 7^2\) है। चरण 2: कटौती के बाद हर \(5\cdot 7\) बचेगा। (7) बचने से दशमलव असांत आवर्ती होगा। चरण 3: घात पूरी कटे या नहीं, यह ध्यान से देखें।

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\(0.\overline{81}\) और \(0.\overline{18}\) का योग कैसा दशमलव देगा?

What type of decimal will the sum of \(0.\overline{81}\) and \(0.\overline{18}\) give?

Explanation opens after your attempt
Correct Answer

A. सांतTerminating

Step 1

Concept

\(0.\overline{81}=\frac{81}{99}\) and \(0.\overline{18}=\frac{18}{99}\).

Step 2

Why this answer is correct

Their sum is \(\frac{99}{99}=1\), which is terminating.

Step 3

Exam Tip

The sum of two recurring decimals can be terminating. चरण 1: \(0.\overline{81}=\frac{81}{99}\) और \(0.\overline{18}=\frac{18}{99}\) है। चरण 2: योग \(\frac{99}{99}=1\) है, जो सांत दशमलव है। चरण 3: दो आवर्ती दशमलवों का योग सांत भी हो सकता है।

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कौन-सा दशमलव \(\frac{13}{99}\) के बराबर है?

Which decimal is equal to \(\frac{13}{99}\)?

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Correct Answer

A. \(0.\overline{13}\)

Step 1

Concept

The purely recurring decimal \(0.\overline{13}\) equals \(\frac{13}{99}\).

Step 2

Why this answer is correct

The two (9)'s in the denominator match the two repeating digits.

Step 3

Exam Tip

Distinguish purely recurring decimals from mixed recurring decimals. चरण 1: दो अंकों वाला पूर्ण आवर्ती दशमलव \(0.\overline{13}\) \(\frac{13}{99}\) के बराबर होता है। चरण 2: हर में दो (9) आवर्ती भाग के दो अंकों को दिखाते हैं। चरण 3: पूर्ण आवर्ती और मिश्रित आवर्ती दशमलव में अंतर रखें।

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\(\frac{2^4\cdot 3}{2^7\cdot 3^2\cdot 5^2}\) का दशमलव प्रसार कैसा होगा?

What type of decimal expansion will \(\frac{2^4\cdot 3}{2^7\cdot 3^2\cdot 5^2}\) have?

Explanation opens after your attempt
Correct Answer

B. असांत आवर्तीNon-terminating recurring

Step 1

Concept

The numerator cancels \(2^4\cdot 3\).

Step 2

Why this answer is correct

The reduced denominator becomes \(2^3\cdot 3\cdot 5^2\). Since (3) remains, the decimal is non-terminating recurring.

Step 3

Exam Tip

A prime factor may cancel only partially. चरण 1: अंश से \(2^4\cdot 3\) कटेगा। चरण 2: सरलतम हर \(2^3\cdot 3\cdot 5^2\) बचेगा। इसमें (3) बचा है, इसलिए दशमलव असांत आवर्ती होगा। चरण 3: एक ही अभाज्य गुणनखंड आंशिक रूप से कट सकता है।

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कौन-सा विकल्प ऐसी संख्या देता है जो परिमेय है लेकिन सांत दशमलव नहीं है?

Which option gives a number that is rational but not a terminating decimal?

Explanation opens after your attempt
Correct Answer

B. \(0.\overline{018}\)

Step 1

Concept

\(0.\overline{018}\) has a repeating block, so it is rational.

Step 2

Why this answer is correct

It does not end, so it is not a terminating decimal. The other options are either terminating or irrational.

Step 3

Exam Tip

Recurring decimals are rational. चरण 1: \(0.\overline{018}\) में अंकों की पुनरावृत्ति है, इसलिए यह परिमेय है। चरण 2: यह समाप्त नहीं होता, इसलिए सांत दशमलव नहीं है। बाकी सांत हैं या अपरिमेय हैं। चरण 3: आवर्ती दशमलव परिमेय होते हैं।

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\(0.\overline{36}\) को सरलतम रूप में लिखने पर हर क्या होगा?

What is the denominator when \(0.\overline{36}\) is written in lowest form?

Explanation opens after your attempt
Correct Answer

B. (11)

Step 1

Concept

\(0.\overline{36}=\frac{36}{99}\).

Step 2

Why this answer is correct

\(\frac{36}{99}=\frac{4}{11}\), so the reduced denominator is (11).

Step 3

Exam Tip

For a purely recurring decimal, first use a denominator of (9)'s and then reduce. चरण 1: \(0.\overline{36}=\frac{36}{99}\) है। चरण 2: \(\frac{36}{99}=\frac{4}{11}\), इसलिए सरलतम हर (11) है। चरण 3: पूर्ण आवर्ती दशमलव में पहले (9) वाला हर बनाइए, फिर सरल कीजिए।

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यदि \(\frac{p}{q}\) सरलतम रूप में है और \(q=2^3\cdot 5^2\cdot 17\), तो दशमलव प्रसार कैसा होगा?

If \(\frac{p}{q}\) is in lowest form and \(q=2^3\cdot 5^2\cdot 17\), what type of decimal expansion will it have?

Explanation opens after your attempt
Correct Answer

B. असांत आवर्तीNon-terminating recurring

Step 1

Concept

The fraction is in lowest form, so the factor (17) will not cancel.

Step 2

Why this answer is correct

The reduced denominator has (17) besides (2) and (5). Therefore the decimal is non-terminating recurring.

Step 3

Exam Tip

A non-terminating decimal of a rational number is recurring. चरण 1: भिन्न सरलतम रूप में है, इसलिए हर का (17) नहीं कटेगा। चरण 2: सरलतम हर में (2) और (5) के अलावा (17) है। इसलिए दशमलव असांत आवर्ती होगा। चरण 3: परिमेय संख्या का असांत दशमलव आवर्ती होता है।

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