Log3(4√9.3√9×37 find it

1.	Log3(4√9.3√9×37 find it
Answer» Answer: STEPS: 1: On a numberline mark AB = 9.3 unit & BC= 1 unit. 2: Mark O the mid POINT of AC 3: Draw a semicircle with O as centre & OA as radius 4: At B draw a perpendicular BD. 5: BD = √9.3 unit 6: Now, B as centre, BD as radius, draw an arc, MEETING the numberline at E. Now, with BD or BE = √9.3 as radius , with 0 ( origin) of the number line as centre, draw an arc on the the number line, intersecting at point ‘k’. And this point ‘k' lies between INTEGERS 3 & 4, & represents √9.3 JUSTIFICATION: BD = √ {(10.3/2)² - (8.3/2)²} => BD = √{10.3²- 8.3²)/4 } => BD = √{(10.3+8.3)(10.3–8.3)/4} => BD = √{18.6*2/4} => BF = √{37.2/4} => BD = √9.3 = BE I hope it helps you please follow me

Answer»

Answer:

STEPS: 1: On a numberline mark AB = 9.3 unit & BC= 1 unit.

2: Mark O the mid POINT of AC

3: Draw a semicircle with O as centre & OA as radius

4: At B draw a perpendicular BD.

5: BD = √9.3 unit

6: Now, B as centre, BD as radius, draw an arc, MEETING the numberline at E.

Now, with BD or BE = √9.3 as radius , with 0 ( origin) of the number line as centre, draw an arc on the the number line, intersecting at point ‘k’. And this point ‘k' lies between INTEGERS 3 & 4, & represents √9.3

JUSTIFICATION:

BD = √ {(10.3/2)² - (8.3/2)²}

=> BD = √{10.3²- 8.3²)/4 }

=> BD = √{(10.3+8.3)(10.3–8.3)/4}

=> BD = √{18.6*2/4}

=> BF = √{37.2/4}

=> BD = √9.3 = BE

I hope it helps you please follow me

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