8.7 Exponential Growth and Decay

Similar documents
Logarithmic and Exponential Equations

CHAPTER FIVE. Solutions for Section 5.1. Skill Refresher. Exercises

Solving Exponential Equations

MAT12X Intermediate Algebra

Section 1.4. Difference Equations

Algebra 2 Unit 8 (Chapter 7) CALCULATORS ARE NOT ALLOWED

Exponential Functions. Exponential Functions and Their Graphs. Example 2. Example 1. Example 3. Graphs of Exponential Functions 9/17/2014

Solutions to Exercises, Section 4.5

Section 4.5 Exponential and Logarithmic Equations

Solving Compound Interest Problems

Section 1. Logarithms

Equations. #1-10 Solve for the variable. Inequalities. 1. Solve the inequality: Solve the inequality: 4 0

Math 120 Final Exam Practice Problems, Form: A

9 Exponential Models CHAPTER. Chapter Outline. Chapter 9. Exponential Models

Week 2: Exponential Functions

For convenience, we may consider an atom in two parts: the nucleus and the electrons.

Section 4-7 Exponential and Logarithmic Equations. Solving an Exponential Equation. log log 5. log

Pre-Session Review. Part 2: Mathematics of Finance

Dimensional Analysis and Exponential Models

Also, compositions of an exponential function with another function are also referred to as exponential. An example would be f(x) = x.

Dimensional Analysis; Exponential and Logarithmic Growth/Decay

LESSON EIII.E EXPONENTS AND LOGARITHMS

EXPONENTIAL FUNCTIONS

For additional information, see the Math Notes boxes in Lesson B.1.3 and B.2.3.

4.1 INTRODUCTION TO THE FAMILY OF EXPONENTIAL FUNCTIONS

Continuous Compounding and Discounting

1.3 Radioactivity and the age of the solar system

MATH 34A REVIEW FOR MIDTERM 2, WINTER Lines. (1) Find the equation of the line passing through (2,-1) and (-2,9). y = 5

College Algebra. George Voutsadakis 1. LSSU Math 111. Lake Superior State University. 1 Mathematics and Computer Science

4.6 Exponential and Logarithmic Equations (Part I)

Exponential Functions, Logarithms, and e

This means there are two equilibrium solutions 0 and K. dx = rx(1 x). x(1 x) dt = r

Chapter 4: Exponential and Logarithmic Functions

2 The Structure of Atoms

AP Physics 1 and 2 Lab Investigations

Student Outcomes. Lesson Notes. Classwork. Discussion (10 minutes)

Exponential, Logistic, and Logarithmic Functions

3.2 LOGARITHMIC FUNCTIONS AND THEIR GRAPHS. Copyright Cengage Learning. All rights reserved.

Simplify the rational expression. Find all numbers that must be excluded from the domain of the simplified rational expression.

5.1 Simple and Compound Interest

1.7 Graphs of Functions

Review of Fundamental Mathematics

Solutions to Midterm #1 Practice Problems

5.4 Solving Percent Problems Using the Percent Equation

2312 test 2 Fall 2010 Form B

Growth Models. Linear (Algebraic) Growth. Growth Models 95

The Method of Partial Fractions Math 121 Calculus II Spring 2015

Partial Fractions Decomposition

6.4 Logarithmic Equations and Inequalities

Chapter 7 Outline Math 236 Spring 2001

CHAPTER 5 Round-off errors

How To Understand Algebraic Equations

Curve Fitting, Loglog Plots, and Semilog Plots 1

Objectives. Materials

Linear and quadratic Taylor polynomials for functions of several variables.

MPE Review Section III: Logarithmic & Exponential Functions

Spectrophotometry and the Beer-Lambert Law: An Important Analytical Technique in Chemistry

Ch. 11.2: Installment Buying

Regents Exam Questions A2.S.7: Exponential Regression

5.1 Radical Notation and Rational Exponents

Module M1.5 Exponential and logarithmic functions

12.6 Logarithmic and Exponential Equations PREPARING FOR THIS SECTION Before getting started, review the following:

Session 29 Scientific Notation and Laws of Exponents. If you have ever taken a Chemistry class, you may have encountered the following numbers:

Section 4.1 Rules of Exponents

Geologic Time Scale Newcomer Academy Visualization Three

Solution to Exercise 7 on Multisource Pollution

Algebraic expressions are a combination of numbers and variables. Here are examples of some basic algebraic expressions.

Introduction to the Economic Growth course

Numbers 101: Growth Rates and Interest Rates

What is the difference between simple and compound interest and does it really matter?

FINAL EXAM SECTIONS AND OBJECTIVES FOR COLLEGE ALGEBRA

Math 10C: Numbers, Radicals, and Exponents PRACTICE EXAM

DERIVATIVES AS MATRICES; CHAIN RULE

23. RATIONAL EXPONENTS

Carbon-14 Dating. or, How Old Are Those M&Ms? Number of Undecayed M&Ms

Structure and Properties of Atoms

CHAPTER 2 Estimating Probabilities

Part 1 Expressions, Equations, and Inequalities: Simplifying and Solving

36 CHAPTER 1. LIMITS AND CONTINUITY. Figure 1.17: At which points is f not continuous?

PHYA5/1. General Certificate of Education Advanced Level Examination June Unit 5 Nuclear and Thermal Physics Section A

Introduction to Nuclear Physics

Objectives. PAM1014 Introduction to Radiation Physics. Constituents of Atoms. Atoms. Atoms. Atoms. Basic Atomic Theory

Eigenvalues, Eigenvectors, and Differential Equations

Midterm 2 Review Problems (the first 7 pages) Math Intermediate Algebra Online Spring 2013

Maximum Likelihood Estimation

Background Information on Exponentials and Logarithms

Radiometric Dating Lab By Vicky Jordan

Lesson 6: Earth and the Moon

16 21 Linear vs. Exponential.notebook May 14, LT 1c: I can compare linear vs. exponential change.

6.5 Applications of Exponential and Logarithmic Functions

Potassium-Argon (K-Ar) Dating

What are the place values to the left of the decimal point and their associated powers of ten?

Math 319 Problem Set #3 Solution 21 February 2002

LABORATORY 7 RADIOMETRIC DATING. This laboratory is divided into 3 parts. Part 1 is to be done BEFORE you come to your weekly laboratory class.

Writing the Equation of a Line in Slope-Intercept Form

Hats 1 are growth rates, or percentage changes, in any variable. Take for example Y, the GDP in year t compared the year before, t 1.

9.2 Summation Notation

100. In general, we can define this as if b x = a then x = log b

PART A: For each worker, determine that worker's marginal product of labor.

A.2. Exponents and Radicals. Integer Exponents. What you should learn. Exponential Notation. Why you should learn it. Properties of Exponents

Transcription:

Section 8.7 Exponential Growth and Decay 847 8.7 Exponential Growth and Decay Exponential Growth Models Recalling the investigations in Section 8.3, we started by developing a formula for discrete compound interest. This led to another formula for continuous compound interest, P (t) = P 0 e rt, (1) where P 0 is the initial amount (principal) and r is the annual interest rate in decimal form. If money in a bank account grows at an annual rate r (via payment of interest), and if the growth is continually added in to the account (i.e., interest is continuously compounded), then the balance in the account at time t years is P (t), as given by formula (1). But we can use the exact same analysis for quantities other than money. If P (t) represents the amount of some quantity at time t years, and if P (t) grows at an annual rate r with the growth continually added in, then we can conclude in the same manner that P (t) must have the form where P 0 is the initial amount at time t = 0, namely P (0). P (t) = P 0 e rt, () A classic example is uninhibited population growth. If a population P (t) of a certain species is placed in a good environment, with plenty of nutrients and space to grow, then it will grow according to formula (). For example, the size of a bacterial culture in a petri dish will follow this formula very closely if it is provided with optimal living conditions. Many other species of animals and plants will also exhibit this behavior if placed in an environment in which they have no predators. For example, when the British imported rabbits into Australia in the late 18th century for hunting, the rabbit population exploded because conditions were good for living and reproducing, and there were no natural predators of the rabbits. Exponential Growth If a function P (t) grows continually at a rate r > 0, then P (t) has the form P (t) = P 0 e rt, (3) where P 0 is the initial amount P (0). In this case, the quantity P (t) is said to exhibit exponential growth, and r is the growth rate. 1 Copyrighted material. See: http://msenux.redwoods.edu/intalgtext/

848 Chapter 8 Exponential and Logarithmic Functions Remarks 4. 1. If a physical quantity (such as population) grows according to formula (3), we say that the quantity is modeled by the exponential growth function P (t).. Some may argue that population growth of rabbits, or even bacteria, is not really continuous. After all, rabbits are born one at a time, so the population actually grows in discrete chunks. This is certainly true, but if the population is large, then the growth will appear to be continuous. For example, consider the world population of humans. There are so many people in the world that there are many new births and deaths each second. Thus, the time difference between each 1 unit change in the population is just a tiny fraction of a second, and consequently the discrete growth will act virtually the same as continuous growth. (This is analogous to the almost identical results for continuous compounding and discrete daily compounding that we found in Section 8.3; compounding each second or millisecond would be even closer.) 3. Likewise, using the continuous exponential growth formula (3) to model discrete quantities will sometimes result in fractional answers. In this case, the results will need to be rounded off in order to make sense. For example, an answer of 4.57 rabbits is not actually possible, so the answer should be rounded to 5. 4. In formula (3), if time is measured in years (as we have done so far in this chapter), then r is the annual growth rate. However, time can instead be measured in any convenient units. The same formula applies, except that the growth rate r is given in terms of the particular time units used. For example, if time t is measured in hours, then r is the hourly growth rate. In Section 8., we showed that a function of the form b t with b > 1 is an exponential growth function. Likewise, if A > 0, then the more general exponential function Ab t also exhibits exponential growth, since the graph of Ab t is just a vertical scaling of the graph of b t. However, the exponential growth function in formula (3) appears to be different. We will show below that the function P 0 e rt can in fact be written in the form Ab t with b > 1. Let s first look at a specific example. Suppose P (t) = 4e 0.8t. Using the Laws of Exponents, we can rewrite P (t) as Since e 0.8.554, it follows that P (t) = 4e 0.8t = 4(e 0.8 ) t. (5) P (t) 4(.554) t. Because the base.554 is larger than 1, this shows that P (t) is an exponential growth function, as seen in Figure 1(a)). Now suppose that P (t) is any function of the form P 0 e rt with r > 0. As in (5) above, we can use the Laws of Exponents to rewrite P (t) as P (t) = P 0 e rt = P 0 (e r ) t = P 0 b t with b = e r.

Section 8.7 Exponential Growth and Decay 849 To prove that b > 1, consider the graph of y = e x shown in Figure 1(b). Recall that e.718, so e > 1, and therefore y = e x is itself an exponential growth curve. Also, the y-intercept is (0, 1) since e 0 = 1. It follows that b = e r > 1 since r > 0 (see Figure 1(b)). Therefore, functions of the form P (t) = P 0 e rt with r > 0 are exponential growth functions. y 0 P y 5 e r y = e x t 1 r x (a) P (t) = 4e 0.8t (b) b = e r > 1 since r > 0 Figure 1. Applications of Exponential Growth We will now examine the role of exponential growth functions in some real-world applications. In the following examples, assume that the population is modeled by an exponential growth function as in formula (3). Example 6. Suppose that the population of a certain country grows at an annual rate of %. If the current population is 3 million, what will the population be in 10 years? This is a future value problem. If we measure population in millions and time in years, then P (t) = P 0 e rt with P 0 = 3 and r = 0.0. Inserting these particular values into formula (3), we obtain P (t) = 3e 0.0t. The population in 10 years is P (10) = 3e (0.0)(10) 3.66408 million. Example 7. In the same country as in Example 6, how long will it take the population to reach 5 million? As before, P (t) = 3e 0.0t. Now we want to know when the future value P (t) of the population at some time t will equal 5 million. Therefore, we need to solve the equation P (t) = 5 for time t, which leads to the exponential equation

850 Chapter 8 Exponential and Logarithmic Functions 5 = 3e 0.0t. Using the procedure for solving exponential equations that was presented in Section 8.6, 5 = 3e 0.0t = 5 3 = e0.0t isolate the exponential ( ) 5 = ln = ln(e 0.0t ) apply the natural log function 3 ( ) 5 = ln = 0.0t since ln(e x ) = x 3 = ln ( ) 5 3 0.0 = t division = t 5.5418. Thus, it would take about 5.54 years for the population to reach 5 million. The population of bacteria is typically measured by weight, as in the next two examples. Example 8. Suppose that a size of a bacterial culture is given by the function P (t) = 100e 0.15t, where the size P (t) is measured in grams and time t is measured in hours. How long will it take for the culture to double in size? The initial size is P 0 = 100 grams, so we want to know when the future value P (t) at some time t will equal 00. Therefore, we need to solve the equation P (t) = 00 for time t, which leads to the exponential equation 00 = 100e 0.15t. Using the same procedure as in the last example, 00 = 100e 0.15t = = e 0.15t isolate the exponential = ln() = ln(e 0.15t ) apply the natural log function = ln() = 0.15t since ln(e x ) = x = ln() 0.15 = t division = t 4.60981.

Section 8.7 Exponential Growth and Decay 851 Thus, it would take about 4.6 hours for the size to double. The last example deserves an additional comment. Suppose that we had started with 1000 grams instead of 100. Then to double in size would require a future value of 000 grams. Therefore, in this case, we would have to solve the equation 000 = 1000e 0.15t. But the first step is to isolate the exponential by dividing both sides by 1000 to get = e 0.15t, and this is the same as the second line of the solution in the last example, so the answer will be the same. Likewise, repeating this argument for any initial amount will lead to the same second line, and therefore the same answer. Thus, the doubling time depends only on r, not on the initial amount P 0. Exponential Decay Models We ve observed that if a quantity increases continually at a rate r, then it is modeled by a function of the form P (t) = P 0 e rt. But what if a quantity decreases instead? Although we won t present the details here, the analysis can be carried out in the same way as the derivation of the continuous compounding formula in Section 8.3. The only difference is that the growth rate r in the formulas must be replaced by r since the quantity is decreasing. The conclusion is that the quantity is modeled by a function of the form P (t) = P 0 e rt instead of P 0 e rt. Exponential Decay If a function P (t) decreases continually at a rate r > 0, then P (t) has the form P (t) = P 0 e rt, (9) where P 0 is the initial amount P (0). In this case, the quantity P (t) is said to exhibit exponential decay, and r is the decay rate. In Section 8., we showed that a function of the form b t with b < 1 is an exponential decay function. Likewise, if A > 0, then the more general exponential function Ab t also exhibits exponential decay, since the graph of Ab t is just a vertical scaling of the graph of b t. However, the exponential decay function in formula (9) appears to be different. We will show below that the function P 0 e rt can in fact be written in the form Ab t with b < 1. Let s first look at a specific example. Suppose P (t) = 4e 0.8t. Using the Laws of Exponents, we can rewrite P (t) as P (t) = 4e 0.8t = 4(e 0.8 ) t. (10)

85 Chapter 8 Exponential and Logarithmic Functions Since e 0.8 0.44933, it follows that P (t) 4(0.44933) t. Because the base 0.44933 is less than 1, this shows that P (t) is an exponential decay function, as seen in Figure (a)). Now suppose that P (t) is any function of the form P 0 e rt with r > 0. As in (10) above, we can use the Laws of Exponents to rewrite P (t) as P (t) = P 0 e rt = P 0 (e r ) t = P 0 b t with b = e r. To prove that b < 1, consider the graph of y = e x shown in Figure (b). Now ( ) 1 x e x = (e 1 ) x = e and 1/e 0.36788 < 1, so y = e x is itself an exponential decay curve. (Alternatively, you can observe that the graph of y = e x is the reflection of the graph of y = e x across the y-axis.) Also, the y-intercept is (0, 1) since e 0 = 1. It follows that b = e r < 1 since r > 0 (see Figure (b)). Therefore, functions of the form P (t) = P 0 e rt with r > 0 are exponential decay functions. P y 0 y = e x y 5 t e r 1 r x (a) P (t) = 4e 0.8t (b) b = e r < 1 since r > 0 Figure. Applications of Exponential Decay The main example of exponential decay is radioactive decay. Radioactive elements and isotopes spontaneously emit subatomic particles, and this process gradually changes the substance into a different isotope. For example, the radioactive isotope Uranium- 38 eventually decays into the stable isotope Lead-06. This is a random process for individual atoms, but overall the mass of the substance decreases according to the exponential decay formula (9). Example 11. Suppose that a certain radioactive element has an annual decay rate of 10%. Starting with a 00 gram sample of the element, how many grams will be left in 3 years?

Section 8.7 Exponential Growth and Decay 853 This is a future value problem. If we measuring size in grams and time in years, then P (t) = P 0 e rt with P 0 = 00 and r = 0.10. Inserting these particular values into formula (9), we obtain P (t) = 00e 0.10t. The amount in 3 years is P (3) = 00e (0.10)(3) 148.1636 grams. Example 1. Using the same element as in Example 11, if a particular sample of the element decays to 50 grams after 5 years, how big was the original sample? This is a present value problem, where the unknown is the initial amount P 0. As before, r = 0.10, so Since P (5) = 50, we have the equation This equation can be solved by division: P (t) = P 0 e 0.10t. 50 = P (5) = P 0 e (0.10)(5). 50 e (0.10)(5) = P 0 Finish by calculating the value of the left side to get P 0 8.43606 grams. Example 13. Suppose that a certain radioactive isotope has an annual decay rate of 5%. How many years will it take for a 100 gram sample to decay to 40 grams? Use P (t) = P 0 e rt with P 0 = 100 and r = 0.05, so P (t) = 100e 0.05t. Now we want to know when the future value P (t) of the size of the sample at some time t will equal 40. Therefore, we need to solve the equation P (t) = 40 for time t, which leads to the exponential equation 40 = 100e 0.05t. Using the procedure for solving exponential equations that was presented in Section 8.6, 40 = 100e 0.05t = 0.4 = e 0.05t isolate the exponential = ln(0.4) = ln(e 0.05t ) apply the natural log function = ln(0.4) = 0.05t since ln(e x ) = x = ln(0.4) 0.05 = t division = t 18.3581.

854 Chapter 8 Exponential and Logarithmic Functions Thus, it would take approximately 18.33 years for the sample to decay to 40 grams. We saw earlier that exponential growth processes have a fixed doubling time. Similarly, exponential decay processes have a fixed half-life, the time in which one-half the original amount decays. Example 14. the element? Using the same element as in Example 13, what is the half-life of As before, r = 0.05, so P (t) = P 0 e 0.05t. The initial size is P 0 grams, so we want to know when the future value P (t) at some time t will equal one-half the initial amount, P 0 /. Therefore, we need to solve the equation P (t) = P 0 / for time t, which leads to the exponential equation P 0 = P 0e 0.05t. Using the same procedure as in the last example, P 0 = P 0e 0.05t = 1 = e 0.05t isolate the exponential ( ) 1 = ln = ln(e 0.05t ) apply the natural log function ( ) 1 = ln = 0.05t since ln(e x ) = x = ln ( ) 1 0.05 = t division = t 13.8694. Thus, the half-life is approximately 13.86 years. The process of radioactive decay also forms the basis of the carbon-14 dating technique. The Earth s atmosphere contains a tiny amount of the radioactive isotope carbon-14, and therefore plants and animals also contain some carbon-14 due to their interaction with the atmosphere. However, this interaction ends when a plant or animal dies, so the carbon-14 begins to decay (the decay rate is 0.01%). By comparing the amount of carbon-14 in a bone, for example, with the normal amount in a living animal, scientists can compute the age of the bone.

Section 8.7 Exponential Growth and Decay 855 Example 15. Suppose that only 1.5% of the normal amount of carbon-14 remains in a fragment of bone. How old is the bone? Use P (t) = P 0 e rt with r = 0.0001, so P (t) = P 0 e 0.0001t. The initial size is P 0 grams, so we want to know when the future value P (t) at some time t will equal 1.5% of the initial amount, 0.015P 0. Therefore, we need to solve the equation P (t) = 0.015P 0 for time t, which leads to the exponential equation 0.015P 0 = P 0 e 0.0001t. Using the same procedure as in Example 14, 0.015P 0 = P 0 e 0.0001t = 0.015 = e 0.0001t isolate the exponential = ln (0.015) = ln(e 0.0001t ) apply the natural log function = ln (0.015) = 0.0001t since ln(e x ) = x = ln (0.015) 0.0001 = t division = t 34998. Thus, the bone is approximately 34998 years old. While the carbon-14 technique only works on plants and animals, there are other similar dating techniques, using other radioactive isotopes, that are used to date rocks and other inorganic matter.

2026 © DocPlayer.net Privacy Policy | Terms of Service | Feedback  | Do Not Sell My Personal Information