Call Now to Set Up Tutoring:

(888) 888-0446

Calculus 2 : Polar Calculations

Study concepts, example questions & explanations for Calculus 2

Create An Account

All Calculus 2 Resources

9 Diagnostic Tests 308 Practice Tests Question of the Day Flashcards Learn by Concept

Example Questions

← Previous 1 2 3 Next →

Example Question #21 : Polar Calculations

Convert 3x^2+3y^2=-4x into polar coordinates.

Possible Answers:

r=3

$r=-4cos^2\theta$

$r=\left (\frac{-4}{3} \right )cos\theta$

$r=\left (\frac{-4}{3} \right )sin\theta$

Correct answer:

$r=\left (\frac{-4}{3} \right )cos\theta$

Explanation:

Substituting the conversion formulas $x=rcos\theta$ and $y=rsin\theta$ into the cartesian equation,

3x^2+3y^2=-4x

we get

$3(rcos\theta)^2+3(rsin\theta)^2=-4rcos\theta$

$3r^2cos^2\theta+3r^2sin^2\theta=-4rcos\theta$

$3r^2(cos^2\theta+sin^2\theta)=-4rcos\theta$

Using the identity, $cos^2\theta+sin^2\theta=1$

$3r^2=-4rcos\theta$

$r=\left (\frac{-4}{3} \right )cos\theta$

Report an Error

Example Question #22 : Polar Calculations

Convert x^2+y^2=25 into polar coordinates.

Possible Answers:

$r=5cos\theta$

$r=5sin\theta$

$r=5sin\theta cos\theta$

r=5

Correct answer:

r=5

Explanation:

Substituting the conversion formulas $x=rcos\theta$ and $y=rsin\theta$ into the cartesian equation,

x^2+y^2=25

we get

$(rcos\theta)^2+(rsin\theta)^2=25$

$r^2cos^2\theta+r^2sin^2\theta=25$

$r^2(cos^2\theta+sin^2\theta)=25$

Using the identity, $cos^2\theta+sin^2\theta=1$

r^2=25

$r=\sqrt{25}=5$

Report an Error

Example Question #23 : Polar Calculations

Convert $r=4cos\theta$ into cartesian coordinates.

Possible Answers:

x^2+y^2=4x

x^2+4y^2=4x

x^2+y^2=4y

x^2+y^2=4x+4y

Correct answer:

x^2+y^2=4x

Explanation:

To make converting this expression easier, we will multiply both sides of the equation by , giving us

$r^2=4rcos\theta$

Substituting the conversion formulas r^2=x^2+y^2 and $x=rcos\theta$ into the polar equation, we get

x^2+y^2=4x

Report an Error

Example Question #171 : Polar

Convert $r=-7sin\theta$ into cartesian coordinates.

Possible Answers:

x^2+y^2=x-y

7x^2+7y^2=-y

x^2+y^2=-7x

x^2+y^2=-7y

Correct answer:

x^2+y^2=-7y

Explanation:

To make converting this expression easier, we will multiply both sides of the equation by , giving us

$r^2=-7rsin\theta$

Substituting the conversion formulas r^2=x^2+y^2 and $y=rsin\theta$ into the polar equation, we get

x^2+y^2=-7y

Report an Error

Example Question #25 : Polar Calculations

Convert $r=6cos\theta+2sin\theta$ into cartesian coordinates.

Possible Answers:

6x^2+y^2=x+2y

6x^2+2y^2=x-y

x^2+y^2=6x+2y

6x^2+2y^2=6x+2y

Correct answer:

x^2+y^2=6x+2y

Explanation:

To make converting this expression easier, we will multiply both sides of the equation by , giving us

$r^2=r(6cos\theta+2sin\theta)=6rcos\theta+2rsin\theta$

Substituting the conversion formulas r^2=x^2+y^2 , $x=rcos\theta$ and $y=rsin\theta$ into the polar equation, we get

x^2+y^2=6x+2y

Report an Error

Example Question #21 : Polar Calculations

Convert $\large \large \large (1,-1)$ into polar coordinates.

Possible Answers:

$\large \left ( -2, \frac {\pi}{4}\right )$

$\large \left ( -2, -\frac {\pi}{4}\right )$

$\large \left ( 2, \frac {\pi}{4}\right )$

$\large \left ( 2, -\frac {\pi}{4}\right )$

Correct answer:

$\large \left ( 2, -\frac {\pi}{4}\right )$

Explanation:

Screen shot 2016 01 02 at 10.52.46 am

Report an Error

Example Question #27 : Polar Calculations

Convert the following rectangular coordinates as polar coordinates:

$(1,\sqrt{3})$

Possible Answers:

$(\sqrt{2}, \frac{\pi }{6})$

$(\sqrt{2}, \frac{\pi }{3})$

$(2, \frac{\pi }{6})$

$(2, \frac{\pi }{3})$

$(\sqrt{2}, \frac{2\pi }{3})$

Correct answer:

$(2, \frac{\pi }{3})$

Explanation:

This is done by setting up a right triangle. The length of the leg along the x axis is 1 and the length of the leg along the y axis is $\sqrt{3}$ .

Thus the length of the hypotenuse can be found using Pythagorean Theorem.

$r^2=\sqrt{3}^2+1^2=4\rightarrow r=2$

We can then find theta by solving

$tan(\theta )=\frac{\sqrt{3}}{1}\rightarrow \theta=\frac{\pi }{3}$

Report an Error

Example Question #28 : Polar Calculations

Find the area inside the circle R_1 = 1 , and outside the rose $R_2 = \sin 2\theta$ .

Possible Answers:

$\pi$

$\frac{3\pi}{2} - 4$

$\frac{\pi}{8}$

$\frac{\pi}{2}$

Correct answer:

$\frac{\pi}{2}$

Explanation:

Whenever we are finding the area between two curves, we need to sketch or graph the two curves to get an idea of what they look like. The graph is as follows.

Polar plot prob 12

We need to find the area inside the circle (blue) and outside the rose (red).

Looking at the graph, we can see that the two graphs are symmetric to both x and y axes. So we can find the desired area in the first quadrant and then multiply by 4 to get the total area. To get area of the first quadrant, we simply use $\theta_1 = 0$ and $\theta_2 = \pi/2$ for the bounds of integration.

Writing out the formula for the area between two polar curves, and multiplying by 4 for symmetry, we get

$4[\frac{1}{2} \int_{0}^{\pi/2} (1)^2 - (\sin2\theta)^2 d\theta]$

Lets simplify my multiplying the 4 and 1/2 outside the integral and then using the Pythagorean Trig Identity $1 - \sin^2 x = \cos^2 x$ . Remember that in this case, $x = 2\theta$ for the sine AND the cosine.

$2 \int_{0}^{\pi/2} \cos^2 2\theta d\theta$

As it is now, we cannot integrate. We first must use the double-angle identity, $\cos^2 x = \frac{1}{2}(1 + \cos 2x)$ . Again, remember that in this problem, $x = 2\theta$ , so $2x = 4\theta$ .

Using the double-angle identity, we get

$2 \int_{0}^{\pi/2} \frac{1}{2} (1 + \cos 4\theta) d\theta$

The 2 and the 1/2 cancel leaving,

$\int_{0}^{\pi/2} 1 + \cos 4\theta d\theta$

Now we can integrate both terms. Remember that we have to account for the 4 inside the cosine.

$[\theta +\frac{1}{4}\sin4\theta]\vert_{0}^{\pi/2}$

Now we plug in the bounds and simplify.

$[(\frac{\pi}{2} + \frac{1}{4}\sin 4(\frac{\pi}{2})) - (0 + \frac{1}{4}\sin 4(0))]$

$\frac{\pi}{2} + \frac{1}{4} \sin 2\pi - \frac{1}{4} \sin 0$

$\sin 2\pi$ and $\sin 0$ both equal zero, so we can drop those terms leaving the final answer.

$\frac{\pi}{2}$

Report an Error

Example Question #29 : Polar Calculations

Find the area inside the circle, R_1 = 2 , and outside the limacon, $R_2 = 2 + \cos\theta$ .

Possible Answers:

$4 - \frac{\pi}{4}$

$\frac{\pi}{4}$

$2\pi$

$\frac{\pi}{2}$

Correct answer:

$4 - \frac{\pi}{4}$

Explanation:

The first thing we should do is graph the two curves to see what they look like.

The red curve is the limacon, $R_2 = 2 + \cos \theta$ . The blue curve is the circle, R_1 = 2

Polarplotprob 11

From the graph we can see the area inside the circle (blue) and outside the limacon (red) appears to fall between $\frac{\pi}{2}$ and $\frac{3 \pi}{2}$ . To be certain, we must set the two equations equal two each other.

R_1 = R_2

$2 = 2+ \cos\theta$

Subtract from both sides to isolate $\cos \theta$

$0 = \cos \theta$

$\cos \theta$ equals zero at $\theta = \frac{\pi}{2}, \frac{3\pi}{2}$ .

Now we know the bounds for the following integration.

To find the area between two polar curves, we use the following formula.

$\frac{1}{2} \int_{\theta_1}^{\theta_2} (R_{outer})^2 - (R_{inner})^2 d\theta$ , where $\theta_1$ and $\theta_2$ are the bounds, $R_{outer}$ is the curve with the larger radius, and $R_{inner}$ is the curve with the smaller radius.

Now we plug in the bounds and the radius curves to get,

$\frac{1}{2} \int_{\pi/2}^{3\pi/2} (2)^2 - (2+\cos\theta)^2 d\theta$

Now we simplify the inside of the integral. Exponents are the first thing we deal with. Write the $(2 + \cos \theta)^2$ as $(2+ \cos\theta)(2 + \cos\theta)$ and multiply it out. Then distribute the negative sign through the result and combine like terms.

$\frac{1}{2} \int_{\pi/2}^{3\pi/2} 4 - (2+\cos\theta)(2 + \cos \theta) d\theta$

$\frac{1}{2} \int_{\pi/2}^{3\pi/2} 4 -(4 + 4\cos\theta + \cos^2\theta)d\theta$

$\frac{1}{2} \int_{\pi/2}^{3\pi/2} 4 - 4 - 4\cos\theta - \cos^2\theta d\theta$

$\frac{1}{2} \int_{\pi/2}^{3\pi/2} - 4\cos\theta - \cos^2\theta d\theta$

Now we have two terms inside the integral. $-4 \cos \theta$ follows a basic integral form of cosine, but $-\cos^2 \theta$ doesn't. We need to use the double-angle identity, $\cos^2 \theta = \frac{1}{2}(1 + \cos 2\theta)$ , to convert it to an integrable form.

$\frac{1}{2} \int_{\pi/2}^{3\pi/2} - 4\cos\theta - \frac{1}{2}(1 + \cos 2\theta) d\theta$

Now we multiply to get the basic integral form we need.

$\frac{1}{2} \int_{\pi/2}^{3\pi/2} - 4\cos\theta - \frac{1}{2} - \frac{1}{2}\cos 2\theta d\theta$

At this point we can integrate all three terms. For the $\frac{1}{2}\cos 2\theta$ , remember to account for the inside the cosine. The result is as follows.

$\frac{1}{2}[-4 \sin \theta - \frac{1}{2}\theta - \frac{1}{4}\sin 2\theta] \vert_{\pi/2}^{3\pi/2}$

Now plug in the upper and lower bounds and simplify.

$\frac{1}{2}[(-4 \sin (\frac{3\pi}{2}) - \frac{1}{2}(\frac{3\pi}{2}) - \frac{1}{4}\sin 2(\frac{3\pi}{2}))-(-4\sin(\frac{\pi}{2}) - \frac{1}{2}(\frac{\pi}{2}) - \frac{1}{4}\sin 2(\frac{\pi}{2}))]$

$\frac{1}{2}[(-4 (-1) - \frac{3\pi}{4} - \frac{1}{4}\sin 3\pi)-(-4(1) - \frac{\pi}{4} - \frac{1}{4}\sin \pi)]$

Since $\sin 3\pi$ and $\sin \pi$ both equal zero, we can drop those terms. Then we distribute the negative through the second group.

$\frac{1}{2}[4 - \frac{3\pi}{4} +4 + \frac{\pi}{4}]$

Now simplify.

$\frac{1}{2}[8 - \frac{\pi}{2}]$

The final answer is $4 - \frac{\pi}{4}$

Report an Error

← Previous 1 2 3 Next →

View Calculus 2 Tutors

Yoonsik
Certified Tutor

Seoul National University, Bachelor of Science, Physics. University of Pennsylvania, Doctor of Philosophy, Atomic and Molecul...

View Calculus 2 Tutors

Kurosh
Certified Tutor

University of tehran, Bachelor of Engineering, Electrical Engineering.

View Calculus 2 Tutors

Filiberto
Certified Tutor

University of Arizona, Bachelor of Science, Electrical Engineering.

All Calculus 2 Resources

9 Diagnostic Tests 308 Practice Tests Question of the Day Flashcards Learn by Concept

Popular Subjects

English Tutors in Philadelphia, Math Tutors in Atlanta, SAT Tutors in Seattle, SSAT Tutors in Miami, MCAT Tutors in Philadelphia, Chemistry Tutors in Washington DC, ACT Tutors in Houston, LSAT Tutors in Denver, MCAT Tutors in San Francisco-Bay Area, SSAT Tutors in Atlanta

Popular Courses & Classes

ACT Courses & Classes in San Diego, Spanish Courses & Classes in Los Angeles, ISEE Courses & Classes in San Francisco-Bay Area, ACT Courses & Classes in Boston, ISEE Courses & Classes in Washington DC, SSAT Courses & Classes in Phoenix, GRE Courses & Classes in San Diego, LSAT Courses & Classes in Atlanta, GRE Courses & Classes in Seattle, SSAT Courses & Classes in Atlanta

Popular Test Prep

ACT Test Prep in Dallas Fort Worth, SAT Test Prep in San Diego, ISEE Test Prep in Chicago, SSAT Test Prep in Los Angeles, GRE Test Prep in Chicago, SSAT Test Prep in Atlanta, GMAT Test Prep in Miami, GMAT Test Prep in New York City, ACT Test Prep in Boston, SSAT Test Prep in San Francisco-Bay Area

DMCA Complaint

If you believe that content available by means of the Website (as defined in our Terms of Service) infringes one or more of your copyrights, please notify us by providing a written notice (“Infringement Notice”) containing the information described below to the designated agent listed below. If Varsity Tutors takes action in response to an Infringement Notice, it will make a good faith attempt to contact the party that made such content available by means of the most recent email address, if any, provided by such party to Varsity Tutors.

Your Infringement Notice may be forwarded to the party that made the content available or to third parties such as ChillingEffects.org.

Please be advised that you will be liable for damages (including costs and attorneys’ fees) if you materially misrepresent that a product or activity is infringing your copyrights. Thus, if you are not sure content located on or linked-to by the Website infringes your copyright, you should consider first contacting an attorney.

Please follow these steps to file a notice:

You must include the following:

A physical or electronic signature of the copyright owner or a person authorized to act on their behalf; An identification of the copyright claimed to have been infringed; A description of the nature and exact location of the content that you claim to infringe your copyright, in \ sufficient detail to permit Varsity Tutors to find and positively identify that content; for example we require a link to the specific question (not just the name of the question) that contains the content and a description of which specific portion of the question – an image, a link, the text, etc – your complaint refers to; Your name, address, telephone number and email address; and A statement by you: (a) that you believe in good faith that the use of the content that you claim to infringe your copyright is not authorized by law, or by the copyright owner or such owner’s agent; (b) that all of the information contained in your Infringement Notice is accurate, and (c) under penalty of perjury, that you are either the copyright owner or a person authorized to act on their behalf.

Send your complaint to our designated agent at:

Charles Cohn Varsity Tutors LLC
101 S. Hanley Rd, Suite 300
St. Louis, MO 63105

Or fill out the form below:

Do not fill in this field

Contact Information

* Full legal name

Company name

* Phone number

* Email address

Address

* Address1

Address2

* City

* State

* Zipcode

* Country

Complaint Details

* URL of copyrighted work (where your original material is located)

* Please describe the copyrighted work so that it may be easily identified

I am the owner, or an agent authorized to act on behalf of the owner of an exclusive right that is allegedly infringed.

I have a good faith belief that the use of the material in the manner complained of is not authorized by the copyright owner, its agent, or the law.

This notification is accurate.

I acknowledge that there may be adverse legal consequences for making false or bad faith allegations of copyright infringement by using this process.

* Signature (your digital signature is legally binding)

HIGH SCHOOL

GRADUATE SCHOOL

K-8

Search 50+ Tests

math tutoring

science tutoring

foreign languages

elementary tutoring

other

Search 350+ Subjects

Calculus 2 : Polar Calculations

Study concepts, example questions & explanations for Calculus 2

All Calculus 2 Resources

Example Questions

Example Question #21 : Polar Calculations

Example Question #22 : Polar Calculations

Example Question #23 : Polar Calculations

Example Question #171 : Polar

Example Question #25 : Polar Calculations

Example Question #21 : Polar Calculations

Example Question #27 : Polar Calculations

Example Question #28 : Polar Calculations

Example Question #29 : Polar Calculations

All Calculus 2 Resources

Report an issue with this question

DMCA Complaint

Contact Information

Address

Complaint Details

Email address:
Your name:
Feedback: