Two point charges 410^-6C and 210^-6C are placed at the vertices A and B of a right angled triangle ABC respectively. B is the right angle, AC=2*10^-2 m and BC=10^-2m. Find the magnitude and direction of resultant electric intensity at C?

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Two point charges 410^-6C and 210^-6C are placed at the vertices A and B of a right angled triangle ABC respectively. B is the right angle, AC=2*10^-2 m and BC=10^-2m. Find the magnitude and direction of resultant electric intensity at C?

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Answer 1 · 2018-05-19T12:49:35

$sf(+2.38xx10^(8)color(white)(x) "N/C")$ at an angle of $sf(19.1^@)$ to the horizontal.

Explanation:

The electric field strength or intensity is the force that a test charge of +1C would experience at that position in the field.

I will place a +1C charge at the location specified and find the resultant force acting on it in N. By dividing this by +1C I will get the electric field strength in N/C.

The forces look like this.

MFDocs

$sf(cosBhatCA=0.01/0.02=0.5)$

$:.$ $sf(BhatCA=60^@)$

$:.$ $sf(BhatAC=30^@)$

Coulomb's Law gives:

$sf(F=k.(q_1q_2)/(r^2))$

$sf(k)$ is a constant and = $sf(9xx10^(9)color(white)(x)"Nm"^2"C"^(-2))$

$:.$ $sf(F_1=(9xx1xx2xx10^(-6))/0.01^2color(white)(x)N)$

$sf(F_1=1.8xx10^(8)color(white)(x)N)$

$sf(F_1=180color(white)(x)MN)$

$sf(F_2=(9xx10^(9)xx4xx10^(-6)xx1)/(0.02^2)color(white)(x)N)$

$sf(F_2=0.9xx10^(8)color(white)(x)N)$

$sf(F_2=90color(white)(x)MN)$

To find the resultant R of these 2 forces we can apply The Cosine Rule.

This gives:

$sf(R^2=F_1^(2)+F_2^(2)-(2xxF_1xxF_2cos120))$

$sf(R^2=180^(2)+90^(2)-(2xx180xx90cos120))$

$sf(R^2=32,400+8,100-(2xx32,400xx8,100xx-0.5)$

$sf(R^(2)=56,644)$

$sf(R=238color(white)(x)MN=2.38xx10^(8)color(white)(x)N)$

To find the electric field strength we divide by 1 N:

$sf(E=+(2.38xx10^(8))/1=+2.38xx10^(8)color(white)(x)"N""/""C")$

To find the angle $sf(theta)$ we can apply The Sine Rule :

$sf((sintheta)/180=sin120/238)$

$sf(sintheta=(0.866xx180)/238=0.6549)$

From which:

$sf(theta=40.9^@)$

From the diagram you can see that:

$sf(theta+delta=60^@)$

$:.$ $sf(delta=60-theta=60-40.9=19.1^@)$

This is a bearing of $sf(099.1^@)$

So we can say that:

$sf(E=+2.38xx10^(8)color(white)(x) "N/C")$ at an angle of $sf(19.1^@)$ to the horizontal.

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Two point charges 410^-6C and 210^-6C are placed at the vertices A and B of a right angled triangle ABC respectively. B is the right angle, AC=2*10^-2 m and BC=10^-2m. Find the magnitude and direction of resultant electric intensity at C?

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Explanation:

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Two point charges 4*10^-6C and 2*10^-6C are placed at the vertices A and B of a right angled triangle ABC respectively. B is the right angle, AC=2*10^-2 m and BC=10^-2m. Find the magnitude and direction of resultant electric intensity at C?

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Explanation:

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Two point charges 410^-6C and 210^-6C are placed at the vertices A and B of a right angled triangle ABC respectively. B is the right angle, AC=2*10^-2 m and BC=10^-2m. Find the magnitude and direction of resultant electric intensity at C?