QUESTION IMAGE
Question
- write the equation for the plane with normal $\vec{n}$ which passes through the point $p$. do this in the form $(x,y,z) - p \cdot \vec{n} = 0$ and also in the form $ax + by + cz = d$. (a) $\vec{n} = \langle 1, 2, 3 \
angle$, $p = (4, 5, 6)$. (b) $\vec{n} = \langle 0, 2, 5 \
angle$, $p = (1, 3, 6)$.
Part (a)
Step 1: Write the vector form
We know that the vector form of the plane equation is \([(x,y,z)-P]\cdot\vec{n} = 0\). Given \(P=(4,5,6)\) and \(\vec{n}=\langle1,2,3
angle\), and \((x,y,z)-P=\langle x - 4,y - 5,z - 6
angle\)
The dot product \(\langle x - 4,y - 5,z - 6
angle\cdot\langle1,2,3
angle=0\)
So the vector form is \([(x,y,z)-(4,5,6)]\cdot\langle1,2,3
angle = 0\)
Step 2: Expand the dot product to get the standard form
We expand \(\langle x - 4,y - 5,z - 6
angle\cdot\langle1,2,3
angle\)
Using the formula for dot product \(\vec{a}\cdot\vec{b}=a_1b_1 + a_2b_2+a_3b_3\)
\((x - 4)\times1+(y - 5)\times2+(z - 6)\times3=0\)
\(x-4 + 2y-10+3z - 18=0\)
\(x + 2y+3z-(4 + 10+18)=0\)
\(x + 2y+3z=32\)
Part (b)
Step 1: Write the vector form
We know that the vector form of the plane equation is \([(x,y,z)-P]\cdot\vec{n}=0\). Given \(P=(1,3,6)\) and \(\vec{n}=\langle0,2,5
angle\), and \((x,y,z)-P=\langle x - 1,y - 3,z - 6
angle\)
The dot product \(\langle x - 1,y - 3,z - 6
angle\cdot\langle0,2,5
angle = 0\)
So the vector form is \([(x,y,z)-(1,3,6)]\cdot\langle0,2,5
angle=0\)
Step 2: Expand the dot product to get the standard form
We expand \(\langle x - 1,y - 3,z - 6
angle\cdot\langle0,2,5
angle\)
Using the formula for dot product \(\vec{a}\cdot\vec{b}=a_1b_1+a_2b_2 + a_3b_3\)
\((x - 1)\times0+(y - 3)\times2+(z - 6)\times5=0\)
\(0+2y-6 + 5z-30=0\)
\(2y+5z-(6 + 30)=0\)
\(2y + 5z=36\) (and since the coefficient of \(x\) is \(0\), the equation is \(0x+2y + 5z=36\))
Final Answers
Part (a)
- Vector form: \(\boldsymbol{[(x,y,z)-(4,5,6)]\cdot\langle1,2,3
angle = 0}\)
- Standard form: \(\boldsymbol{x + 2y+3z=32}\)
Part (b)
- Vector form: \(\boldsymbol{[(x,y,z)-(1,3,6)]\cdot\langle0,2,5
angle=0}\)
- Standard form: \(\boldsymbol{0x + 2y+5z=36}\) (or \(\boldsymbol{2y + 5z=36}\))
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Part (a)
Step 1: Write the vector form
We know that the vector form of the plane equation is \([(x,y,z)-P]\cdot\vec{n} = 0\). Given \(P=(4,5,6)\) and \(\vec{n}=\langle1,2,3
angle\), and \((x,y,z)-P=\langle x - 4,y - 5,z - 6
angle\)
The dot product \(\langle x - 4,y - 5,z - 6
angle\cdot\langle1,2,3
angle=0\)
So the vector form is \([(x,y,z)-(4,5,6)]\cdot\langle1,2,3
angle = 0\)
Step 2: Expand the dot product to get the standard form
We expand \(\langle x - 4,y - 5,z - 6
angle\cdot\langle1,2,3
angle\)
Using the formula for dot product \(\vec{a}\cdot\vec{b}=a_1b_1 + a_2b_2+a_3b_3\)
\((x - 4)\times1+(y - 5)\times2+(z - 6)\times3=0\)
\(x-4 + 2y-10+3z - 18=0\)
\(x + 2y+3z-(4 + 10+18)=0\)
\(x + 2y+3z=32\)
Part (b)
Step 1: Write the vector form
We know that the vector form of the plane equation is \([(x,y,z)-P]\cdot\vec{n}=0\). Given \(P=(1,3,6)\) and \(\vec{n}=\langle0,2,5
angle\), and \((x,y,z)-P=\langle x - 1,y - 3,z - 6
angle\)
The dot product \(\langle x - 1,y - 3,z - 6
angle\cdot\langle0,2,5
angle = 0\)
So the vector form is \([(x,y,z)-(1,3,6)]\cdot\langle0,2,5
angle=0\)
Step 2: Expand the dot product to get the standard form
We expand \(\langle x - 1,y - 3,z - 6
angle\cdot\langle0,2,5
angle\)
Using the formula for dot product \(\vec{a}\cdot\vec{b}=a_1b_1+a_2b_2 + a_3b_3\)
\((x - 1)\times0+(y - 3)\times2+(z - 6)\times5=0\)
\(0+2y-6 + 5z-30=0\)
\(2y+5z-(6 + 30)=0\)
\(2y + 5z=36\) (and since the coefficient of \(x\) is \(0\), the equation is \(0x+2y + 5z=36\))
Final Answers
Part (a)
- Vector form: \(\boldsymbol{[(x,y,z)-(4,5,6)]\cdot\langle1,2,3
angle = 0}\)
- Standard form: \(\boldsymbol{x + 2y+3z=32}\)
Part (b)
- Vector form: \(\boldsymbol{[(x,y,z)-(1,3,6)]\cdot\langle0,2,5
angle=0}\)
- Standard form: \(\boldsymbol{0x + 2y+5z=36}\) (or \(\boldsymbol{2y + 5z=36}\))