In which set(s) of numbers would you find the number \sqrt{62} rational number irrational number natural number real number integer whole number

In which set(s) of numbers would you find the number \sqrt{62} rational number irrational number natural number real number integer whole number

The Correct Answer and Explanation is:

The number 62\sqrt{62}62​ is an irrational number and also a real number. Let’s break this down step by step:

1. Irrational Number:
   A rational number is one that can be expressed as the quotient of two integers (i.e., pq\frac{p}{q}qp​, where ppp and qqq are integers and q≠0q \neq 0q=0). On the other hand, an irrational number cannot be written as such a fraction. The number 62\sqrt{62}62​ is an irrational number because 62 is not a perfect square (i.e., there are no integers nnn such that n2=62n^2 = 62n2=62). Since its decimal expansion does not terminate or repeat, it cannot be expressed as a fraction.
2. Real Number:
   Real numbers include both rational and irrational numbers, as well as integers, whole numbers, and natural numbers. Because 62\sqrt{62}62​ is not imaginary, it is part of the real number set.

Now, let’s analyze the other sets mentioned:

3. Natural Number:
   Natural numbers are the set of positive integers used for counting, starting from 1. Since 62\sqrt{62}62​ is not a whole number, it is not a natural number.
4. Whole Number:
   Whole numbers are all the non-negative integers (0, 1, 2, 3, …). 62\sqrt{62}62​ is not an integer, so it is not a whole number.
5. Integer:
   Integers include all positive and negative whole numbers, as well as zero. Since 62\sqrt{62}62​ is not an integer (it’s not a whole number and not negative), it is not an integer.

Conclusion:
The number 62\sqrt{62}62​ is an irrational number and a real number, but not a natural number, whole number, or integer.