InterviewSolution
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InterviewSolution
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Solve the following pairs of equations (i) x + y = 3.3, "" (0.6)/(3x - 2y) = -1, 3x - 2y != 0 (ii)(x)/(3) + (y)/(4) = 4, "" (5x)/(6) - (y)/(8) = 4 (iii) 4x + (6)/(y) = 15, "" 6x - (8)/(y)= 14, y != 0 (iv) (1)/(2x) - (1)/(y) = -1, "" (1)/(x) + (1)/(2y) = 8, x, y != 0 (v) 43x + 67y = -24, "" 67x + 43y = 24 (vi) (x)/(a) + (y)/(b) = a + b , "" (x)/(a^(2)) + (y)/(b^(2)) = 2, a, b != 0 (vii) (2xy)/(x+y) = (3)/(2), "" (xy)/(2x-y) = (-3)/(10), x + y != 0, 2x - y != 0 |
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Answer» Solution :(i) Given pair of linear equations are is `" " x+y=3.3 " " ...(i)` and `{:(ul(" "0.6" ")),(3x-2y):}=-1` `rArr 0.6=-3x+2y` `rArr " " 3x-2y=-0.6 "" ...(ii)` Now, MULTIPLYING Eq. (i) by 2 and then adding with Eq. (ii), we get `rArr " " 2x+2y=6.6` `rArr " " 3x-2y=-0.6` `"" 5x=6 rArr x=(6)/(5)=1.2` Now, PUT the value of x in Eq. (i) , we get `" " 1.2+y=3.3` `rArr " " y=3.3 -1.2` `rArr " " y=2.1` Hence, the required values of x and y are 1.2 and 2.1, respectively. (ii) Given, pair of linear equations is `" " (x)/(3)+(y)/(4)=4` On multiplying both sides by LCM (3, 4)=12, we get 4X+3y=48`"" ...(i)` and `(5x)/(6)-(y)/(8)=4` On multiplying both sides by LCM (6, 8)=24, we get `20x-3y=96 " " ...(ii)` Now, adding Eqs. (i) and (ii), we get `" " 24x=144` `rArr " " x=6` Now, put the value of x in Eq. (i) , we get `4xx6+3y=48` `rArr " " 3y=48-24` `rArr " " 3y=24 rArr y=8` Hence, the required values of x and y are 6 and 8, respectively. (iii) Given, pair of linear equations are ` 4x+(6)/(y)=15 " "...(i)` and `" " 6x-(8)/(y)=14, y != 0 " " ...(ii)` Let `u=(1)/(y)`, thenabove equation becomes `4x+6u=15 " " ... (iii)` and `" " 6x-8u=14 " " ...(iv)` On multiplying Eq. (iii) by 8 and Eq. (iv) by 6 and then adding both of them, we get `32x+48u=120` `36x-48u=84 rArr 68x=204` `rArr "" x=3` Now, put the value of x in Eq. (iii), we get `" " 4xx3+ 6u=15` `rArr " " 6u=15-12 rArr 6u=3` `rArr " " u=(1)/(2)rArr(1)/(y)=(1)/(2) " " `[`:'u=(1)/(y)`] `rArr "" y=2` Hence, the required values of x and y are 3 and 2, respectively. (iv) Given pair of linear equations is `(1)/(2x)-(1)/(y)=-1 "" ...(i)` and `" " (1)/(x)+(1)/(2y)=8,x,y!=0 " " ...(ii)` Let ` u=(1)/(x)` and `v=(1)/(y)`, then the above equations becomes `(u)/(2)-v=-1` `rArr " " u-2v=-2 "" ...(iii)` and `" " u+(v)/(2)=8` `rArr " " 2u+v=16 "" ...(iv)` On, multiplying Eq. (iv) by 2 and then adding with Eq. (iii), we get `{:(4u+2v=32),(ul(u-2v=-2)),("" 5u=30):}` `rArr "" u=6` Now, put the value of u in Eq. (iv), we get `2xx6+v=16` `rArr " " v=16-12=4` `rArr " " v=4` `:. " " x=(1)/(u)=(1)/(6)` and `y=(1)/(v)=(1)/(4)` Hence, the required values of x and y are `(1)/(6)` and `(1)/(4)`, respectively. (v) Given pair of linear equations is `43x+67y=-24 " " ...(i)` and `" " 67x+43y=24 "" ...(ii)` On multiplying Eq. (i) by 43 and Eq. (ii) by 67 and then subtracting both of them, we get `{:((67)^(2)x+43xx67y=24xx67),(ul(underset(-)((43))^(2)x+underset(-)43xx67y=-underset(+)24xx43)),({(67)^(2)-(43)^(2)}x=24(67+43)):}` `rArr " " (67+43)(67-43)x=24xx110 "" `[`:' (a^(2)-b^(2))=(a-b)(a+b)`] `rArr " " 110xx24x=24xx110` `rArr "" x=1` Now, put the value of x in Eq. (i), we get `43xx1+67y=-24` `rArr " " 67y=-24-43` `rArr " " 67y=-67` `rArr "" y=-1` Hence, the required values of x and y and 1 and -1, respectively. (vi) Given pair of linear equations is `(x)/(a)+(y)/(b)=a+b "" ...(i)` and `" " (x)/(a^(2))+(y)/(b^(2))=2, a, b!=0 "" ...(ii)` On multiplying Eq. (i) by `(1)/(2)` and then subtracting from Er. (ii) , we get `{:((x)/(a^(2))+(y)/(b^(2))=2),(ul((x)/underset(-)(a^(2))+(y)/underset(-)(ab)=underset(-)1+(b)/(a))),(y((1)/(b^(2))-(1)/(ab))=2-1-(b)/(a)):}` `rArr " " y((a-b)/(ab^(2)))=1-(b)/(a)=((a-b)/(a))` `rArr " " y=(ab^(2))/(a)rArry=b^(2)` Now, put the value of y in Eq. (ii), we get `(x)/(a^(2))+(b^(2))/(b^(2))=2` `rArr " " (x)/(a^(2))=2-1=1` `rArr "" x=a^(2)` Hence, the required values ofx and y are `a^(2) ` and `b^(2)`, respectively. (vii) Given pair of equations is `(2xy)/(x+y)=(3)/(2)`, where `x+y !=0` `rArr " " (x+y)/(2xy)=(2)/(3)` `rArr " " (x)/(xy)+(y)/(xy)=(4)/(3)` `rArr " " (1)/(y)+(1)/(x)=(4)/(3) "" ...(i)` and `" " (xy)/(2x-y)=(-3)/(10)`, where `2x-y!=0` `rArr " " (2x-y)/(xy)=(-10)/(3)` `rArr " " (2x)/(xy)-(y)/(xy)=(-10)/(3)` `rArr " " (2)/(y)-(1)/(x)=(-10)/(3)` Now, put `(1)/(x)=u` and `(1)/(y)=v`, then the pair of equations becomes `v+u=(4)/(3) "" ...(iii)` and `" " 2v-u=(-10)/(3) " " ...(iv)` On adding both equations, we get `3v=(4)/(3)-(10)/(3)=(-6)/(3)` `rArr " " 3v=-2` `rArr" "v=(-2)/(3)` Now, put the value of v in Eq. (iii), we get `(-2)/(3)+u=(4)/(3)` `rArr " " u=(4)/(3)+(2)/(3)=(6)/(3)=2` `rArr " " x=(1)/(u)=(1)/(2)` and `" " y=(1)/(v)=(1)/((-2//3))=(-3)/(2)` Hence, the required values of x and `(1)/(2)`and `(-3)/(2)`, respectively. |
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