The fathers age one year back is 4 times the age of son, after 6 years the father’s age exceeds twice the age of the son by 9. What is fathers age?33425628 About the author Rylee
Question:– The fathers age one year back is 4 times the age of son, after 6 years the father’s age exceeds twice the age of the son by 9. What is fathers age? To Find:- Find the fathers age. Given:– The fathers age one year back is 4 times the age of son, after 6 years the father’s age exceeds twice the age of the son by 9. Solution:– Let the present of father be x years Present age of son be y years According to Question:- [tex]\tt\implies \: x – 1 = 4( y – 1 ) [/ex] [tex]\tt\implies \: x – 4y = – 3 . . . . ( i ) [/tex] Now , [tex]\tt\implies \: x + 6 = 2( y + 6 ) + 9 [/tex] [tex]\tt\implies \: x – 2y = 15 . . . . ( ii ) [/tex] Now , We have to Subtract ( ii ) from ( i ) [tex]\tt\implies \: x – 4y – ( x – 2y ) = – 3 – 15 [/tex] [tex]\tt\implies \: x – 4y – x + 2y = – 18 [/tex] [tex]\tt\implies \: – 2y = – 18 [/tex] [tex]\tt\implies \: x = \cancel\dfrac { – 18 } { – 2 } [/tex] Substitute in equation ( i ) to get x value:- [tex]\tt\implies \: x – 4y = – 3 . . . . ( i ) [/tex] [tex]\tt\implies \: x = 33 [/tex] Reply
Question:–
To Find:-
Given:–
Solution:–
Let the present of father be x years
Present age of son be y years
According to Question:-
[tex]\tt\implies \: x – 1 = 4( y – 1 ) [/ex]
[tex]\tt\implies \: x – 4y = – 3 . . . . ( i ) [/tex]
Now ,
[tex]\tt\implies \: x + 6 = 2( y + 6 ) + 9 [/tex]
[tex]\tt\implies \: x – 2y = 15 . . . . ( ii ) [/tex]
Now ,
We have to Subtract ( ii ) from ( i )
[tex]\tt\implies \: x – 4y – ( x – 2y ) = – 3 – 15 [/tex]
[tex]\tt\implies \: x – 4y – x + 2y = – 18 [/tex]
[tex]\tt\implies \: – 2y = – 18 [/tex]
[tex]\tt\implies \: x = \cancel\dfrac { – 18 } { – 2 } [/tex]
Substitute in equation ( i ) to get x value:-
[tex]\tt\implies \: x – 4y = – 3 . . . . ( i ) [/tex]
[tex]\tt\implies \: x = 33 [/tex]