English, asked by Anonymous, 5 months ago

the denominator of a rational number is less than its ne numerator than 5 if the five is added to the numerator the new number become 11 by 6 find the original rational number​ ​

Answers

Answered by ItzCaptonMack
6

\huge\mathtt{\fbox{\red{Answer✍︎}}}

\large\underline\red{GIVEN,}

\sf\dashrightarrow \blue{THE\:GIVEN\:FRACTION\:IS\:A\:RATIONAL\:NUMBER.}

\sf\dashrightarrow {\blue{\mathbb{\text{ denominator is less than its numerator by 5.}}}}

\sf\therefore \blue{let\:the\:numerator\:be\:x}

\sf\dashrightarrow \blue{denominator= x-5}

\sf\dashrightarrow \blue{\dfrac{x}{x-5}}

\sf\dashrightarrow \bold\pink{if \:5 \:is \:added\: to \:the \:numerator, \:numerator \:becomes\: ; \dfrac{11}{6}}

\sf\dashrightarrow \red{numerator= x+5}

THE EQUATION FORM IS,

\rm{\boxed{\sf{\green{ \circ\:\: \dfrac{x+5}{x-5} = \dfrac{11}{6}\:\: \circ}}}}

\large\underline\purple{TO\:FIND,}

\sf\dashrightarrow \red{\:THE\:ORIGINAL\:RATIONAL\:NUMBER}

\sf\implies \green{\dfrac{x  + 5}{x - 5}  =  \dfrac{11}{6}}

\sf\implies \green{6 \times (x+5)= 11 \times (x-5)}

\sf\implies \green{6x+30= 11x-55}

\sf\implies \green{30+55=11x-6x}

\sf\implies \green{85= 5x}

\sf\implies \green{x= \dfrac{85}{5}}

\sf\implies \green{x= \cancel  \dfrac{85}{5}}

 \sf\implies  \orange{x = 17}

\rm{\boxed{\sf{ \circ\:\: x= 17 \:\: \circ}}}

THE ORIGINAL NUMBERS ARE,

\sf\implies \red{numerator=x =17}

\sf\implies \red{d enominator= x-5}

\sf\implies \red{denominator=17-5}

\sf\implies \pink{denominator=12}

\large\underline\orange{FRACTION,}

\sf\dashrightarrow \purple{\dfrac{x}{x-5}= \dfrac{17}{12}}

\sf\dashrightarrow \purple{\dfrac{NUMERATOR}{DENOMINATOR}= \dfrac{17}{12}}

\rm\underline\blue{NUMERATOR\:IS\:17\:AND\: DENOMINATOR\:IS\:12}

\rm{\boxed{\sf{ \circ\:\: \dfrac{NUMERATOR}{DENOMINATOR}= \dfrac{17}{12} \:\: \circ}}}

Answered by Anonymous
1

Answer:

⇢THEGIVENFRACTIONISARATIONALNUMBER.</p><p></p><p>\sf\dashrightarrow {\blue{\mathbb{\text{ denominator is less than its numerator by 5.}}}}⇢ denominator is less than its numerator by 5.</p><p></p><p>\sf\therefore \blue{let\:the\:numerator\:be\:x}∴letthenumeratorbex</p><p></p><p>\sf\dashrightarrow \blue{denominator= x-5}⇢denominator=x−5</p><p></p><p>\sf\dashrightarrow \blue{\dfrac{x}{x-5}}⇢x−5x</p><p></p><p>\sf\dashrightarrow \bold\pink{if \:5 \:is \:added\: to \:the \:numerator, \:numerator \:becomes\: ; \dfrac{11}{6}}⇢if5isaddedtothenumerator,numeratorbecomes;611</p><p></p><p>\sf\dashrightarrow \red{numerator= x+5}⇢numerator=x+5</p><p></p><p>THE EQUATION FORM IS,</p><p></p><p>\rm{\boxed{\sf{\green{ \circ\:\: \dfrac{x+5}{x-5} = \dfrac{11}{6}\:\: \circ}}}}∘x−5x+5=611∘</p><p></p><p>\large\underline\purple{TO\:FIND,}TOFIND,</p><p></p><p>\sf\dashrightarrow \red{\:THE\:ORIGINAL\:RATIONAL\:NUMBER}⇢THEORIGINALRATIONALNUMBER</p><p></p><p>\sf\implies \green{\dfrac{x + 5}{x - 5} = \dfrac{11}{6}}⟹x−5x+5=611</p><p></p><p>\sf\implies \green{6 \times (x+5)= 11 \times (x-5)}⟹6×(x+5)=11×(x−5)</p><p></p><p>\sf\implies \green{6x+30= 11x-55}⟹6x+30=11x−55</p><p></p><p>\sf\implies \green{30+55=11x-6x}⟹30+55=11x−6x</p><p></p><p>\sf\implies \green{85= 5x}⟹85=5x</p><p></p><p>\sf\implies \green{x= \dfrac{85}{5}}⟹x=585</p><p></p><p>\sf\implies \green{x= \cancel \dfrac{85}{5}}⟹x=585</p><p></p><p>\sf\implies \orange{x = 17}⟹x=17</p><p></p><p>\rm{\boxed{\sf{ \circ\:\: x= 17 \:\: \circ}}}∘x=17∘</p><p></p><p>THE ORIGINAL NUMBERS ARE,</p><p></p><p>\sf\implies \red{numerator=x =17}⟹numerator=x=17</p><p></p><p>\sf\implies \red{d enominator= x-5}⟹denominator=x−5</p><p></p><p>\sf\implies \red{denominator=17-5}⟹denominator=17−5</p><p></p><p>\sf\implies \pink{denominator=12}⟹denominator=12</p><p></p><p>\large\underline\orange{FRACTION,}FRACTION,</p><p></p><p>\sf\dashrightarrow \purple{\dfrac{x}{x-5}= \dfrac{17}{12}}⇢x−5x=1217</p><p></p><p>\sf\dashrightarrow \purple{\dfrac{NUMERATOR}{DENOMINATOR}= \dfrac{17}{12}}⇢DENOMINATORNUMERATOR=1217</p><p></p><p>\rm\underline\blue{NUMERATOR\:IS\:17\:AND\: DENOMINATOR\:IS\:12}NUMERATORIS17ANDDENOMINATORIS12</p><p></p><p>\rm{\boxed{\sf{ \circ\:\: \dfrac{NUMERATOR}{DENOMINATOR}= \dfrac{17}{12} \:\: \circ}}}∘DENOMINATORNUMERATOR=1217∘</p><p></p><p>

Explanation:

⇢THEGIVENFRACTIONISARATIONALNUMBER.

\sf\dashrightarrow {\blue{\mathbb{\text{ denominator is less than its numerator by 5.}}}}⇢ denominator is less than its numerator by 5.

\sf\therefore \blue{let\:the\:numerator\:be\:x}∴letthenumeratorbex

\sf\dashrightarrow \blue{denominator= x-5}⇢denominator=x−5

\sf\dashrightarrow \blue{\dfrac{x}{x-5}}⇢

x−5

x

\sf\dashrightarrow \bold\pink{if \:5 \:is \:added\: to \:the \:numerator, \:numerator \:becomes\: ; \dfrac{11}{6}}⇢if5isaddedtothenumerator,numeratorbecomes;

6

11

\sf\dashrightarrow \red{numerator= x+5}⇢numerator=x+5

THE EQUATION FORM IS,

\rm{\boxed{\sf{\green{ \circ\:\: \dfrac{x+5}{x-5} = \dfrac{11}{6}\:\: \circ}}}}

x−5

x+5

=

6

11

\large\underline\purple{TO\:FIND,}

TOFIND,

\sf\dashrightarrow \red{\:THE\:ORIGINAL\:RATIONAL\:NUMBER}⇢THEORIGINALRATIONALNUMBER

\sf\implies \green{\dfrac{x + 5}{x - 5} = \dfrac{11}{6}}⟹

x−5

x+5

=

6

11

\sf\implies \green{6 \times (x+5)= 11 \times (x-5)}⟹6×(x+5)=11×(x−5)

\sf\implies \green{6x+30= 11x-55}⟹6x+30=11x−55

\sf\implies \green{30+55=11x-6x}⟹30+55=11x−6x

\sf\implies \green{85= 5x}⟹85=5x

\sf\implies \green{x= \dfrac{85}{5}}⟹x=

5

85

\sf\implies \green{x= \cancel \dfrac{85}{5}}⟹x=

5

85

\sf\implies \orange{x = 17}⟹x=17

\rm{\boxed{\sf{ \circ\:\: x= 17 \:\: \circ}}}

∘x=17∘

THE ORIGINAL NUMBERS ARE,

\sf\implies \red{numerator=x =17}⟹numerator=x=17

\sf\implies \red{d enominator= x-5}⟹denominator=x−5

\sf\implies \red{denominator=17-5}⟹denominator=17−5

\sf\implies \pink{denominator=12}⟹denominator=12

\large\underline\orange{FRACTION,}

FRACTION,

\sf\dashrightarrow \purple{\dfrac{x}{x-5}= \dfrac{17}{12}}⇢

x−5

x

=

12

17

\sf\dashrightarrow \purple{\dfrac{NUMERATOR}{DENOMINATOR}= \dfrac{17}{12}}⇢

DENOMINATOR

NUMERATOR

=

12

17

\rm\underline\blue{NUMERATOR\:IS\:17\:AND\: DENOMINATOR\:IS\:12}

NUMERATORIS17ANDDENOMINATORIS12

\rm{\boxed{\sf{ \circ\:\: \dfrac{NUMERATOR}{DENOMINATOR}= \dfrac{17}{12} \:\: \circ}}}

DENOMINATOR

NUMERATOR

=

12

17

okay

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