Chapter 17: Problem 21

The electric potential at a distance of $20.0 \mathrm{cm}$ from a point charge is $+1.0 \mathrm{kV}$ (assuming $V=0$ at infinity). (a) Is the point charge positive or negative? (b) At what distance is the potential $+2.0 \mathrm{kV} ?$

Short Answer

Expert verified

Answer: The point charge is positive. The electric potential doubles to $+2.0 \mathrm{kV}$ at a distance of $10.0 \mathrm{cm}$ from the point charge.

Step by step solution

(a) Determine the sign of the point charge

We are given that the electric potential ($V$) at a distance of $20.0 \mathrm{cm}$ is $+1.0 \mathrm{kV}$. The electric potential will be positive when the charge ($q$) is positive and negative when the charge is negative. As $V$ is positive, the point charge must be positive.

(b) Find the initial charge ($q$)

To find the charge, we will use the formula $V = \frac{k \cdot q}{r}$ and plug in the given values. Multiply both sides by $r$ to isolate $q$: $q = \frac{V \cdot r}{k}$ Given $V = 1.0 \times 10^3 \mathrm{V}$, $r = 20.0 \mathrm{cm} = 0.2 \mathrm{m}$, and $k = 8.99 \times 10^9 \frac{Nm^2}{C^2}$, plugging in these values, we get: $q = \frac{(1.0 \times 10^3 \mathrm{V}) (0.2 \mathrm{m})}{8.99 \times 10^9 \frac{Nm^2}{C^2}}$ $q = 2.22 \times 10^{-7} \mathrm{C}$ So, the charge is approximately $2.22 \times 10^{-7}$ coulombs.

(c) Determine the distance at which the potential is $+2.0 \mathrm{kV}$

Now, we want to find the distance when the electric potential is doubled. Let's call it $r_2$ and set the potential to $2.0 \times 10^3 \mathrm{V}$: $2.0 \times 10^3 \mathrm{V} = \frac{k \cdot q}{r_2}$ $r_2 = \frac{k \cdot q}{2.0 \times 10^3 \mathrm{V}}$ Using the value of $q$ found in step (b) and the known value of $k$: $r_2 = \frac{(8.99 \times 10^9 \frac{Nm^2}{C^2}) (2.22 \times 10^{-7}\mathrm{C})}{2.0 \times 10^3 \mathrm{V}}$ $r_2 = 0.1 \mathrm{m}$ Thus, the electric potential is $+2.0 \mathrm{kV}$ at a distance of $0.1 \mathrm{m}$ or $10.0 \mathrm{cm}$ from the point charge.

Unlock Step-by-Step Solutions & Ace Your Exams!

Full Textbook Solutions
Get detailed explanations and key concepts
Unlimited Al creation
Al flashcards, explanations, exams and more...
Ads-free access
To over 500 millions flashcards
Money-back guarantee
We refund you if you fail your exam.

Start your free trial

Over 30 million students worldwide already upgrade their learning with Vaia!

Recommended explanations on Physics Textbooks

View all explanations

What do you think about this solution?

We value your feedback to improve our textbook solutions.

The electric potential at a distance of \(20.0 \mathrm{cm}\) from a point charge is \(+1.0 \mathrm{kV}\) (assuming \(V=0\) at infinity). (a) Is the point charge positive or negative? (b) At what distance is the potential $+2.0 \mathrm{kV} ?$

Short Answer

Step by step solution

(a) Determine the sign of the point charge

(b) Find the initial charge (\(q\))

(c) Determine the distance at which the potential is \(+2.0 \mathrm{kV}\)

One App. One Place for Learning.

Most popular questions from this chapter

Recommended explanations on Physics Textbooks

Dynamics

Fields in Physics

Measurements

Solid State Physics

Atoms and Radioactivity

Work Energy and Power

Study anywhere. Anytime. Across all devices.