The equation of the plane passing through the point 1,1,1) andperpendicular to the planes `2x+y-2z=5a n d3x-6y-2z=7,`is`14 x+2y+15 z=3``14 x+2y-15 z=1``14 x+2y+15 z=31``14 x-2y+15 z=27`A. `14x+2y+15x=31`B. `14x+2y-15z=1`C. `14x+2y+15x=3`D. `14x-2y+15z=27`

The equation of the plane passing through the point 1,1,1) andperpendi

1.	The equation of the plane passing through the point 1,1,1) andperpendicular to the planes `2x+y-2z=5a n d3x-6y-2z=7,`is`14 x+2y+15 z=3``14 x+2y-15 z=1``14 x+2y+15 z=31``14 x-2y+15 z=27`A. `14x+2y+15x=31`B. `14x+2y-15z=1`C. `14x+2y+15x=3`D. `14x-2y+15z=27`
Answer» Correct Answer - A (a) given that required plane is perpendicular to the given two planes , therefore , the ormal vector of required plane I sperpendicular to the normal to the given planes . therefore , the normal vector of required plane is parallel to the vector : `\|{:(hati,hatj,hatk),(2,1,-2),(3,-6,-2):}\|=-14hati-2hatj-15hatk` thus , the equation of required of required plane passing through (1,1,1) will be : `-14(x-1)-2(y-1)-15(z-1)=0` `implies 14x+2y+15z=31`

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The equation of the plane passing through the point 1,1,1) andperpendicular to the planes `2x+y-2z=5a n d3x-6y-2z=7,`is`14 x+2y+15 z=3``14 x+2y-15 z=1``14 x+2y+15 z=31``14 x-2y+15 z=27`A. `14x+2y+15x=31`B. `14x+2y-15z=1`C. `14x+2y+15x=3`D. `14x-2y+15z=27`

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