
Loose-leaf Version for Calculus
14th Edition
ISBN: 9781464140051
Author: TAALMAN, Laura, Kohn, Peter
Publisher: W. H. Freeman
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Concept explainers
Question
Chapter 1, Problem 1D
To determine
The intuitive meaning of the limit statements and
.
Expert Solution & Answer

Explanation of Solution
If the values of a function approach
as
approaches
then we say that
is the limit of
as
approaches
and we write
The limit statement denotes Left hand limit and this exists if, given
interval
we can always find a sufficiently small half-neighborhood
to the left od
so that values of
that are in that left hand
interval yield values of
that are in
interval.
And similarly, the right-hand limitcan be defined.
For a limit to exist, the left- and right-hand limits must exist and be equal.
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6. The largest interval in which the solution of (cos t)y′′ +t^2y′ − (5/t)y = e^t/(t−3) , y(1) = 2, y′(1) = 0is guaranteed to exist by the Existence and Uniqueness Theorem is:A. (0, ∞) B. (π/2, 3) C. (0,π/2) D. (0, π) E. (0, 3)
12. For the differential equation in the previous question, what is the correct form for a particularsolution?A. yp = Ae^t + Bt^2 B. yp = Ae^t + Bt^2 + Ct + DC. yp = Ate^t + Bt^2 D. yp = Ate^t + Bt^2 + Ct + D
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Chapter 1 Solutions
Loose-leaf Version for Calculus
Ch. 1.1 - Prob. 1TBCh. 1.1 - Prob. 2TBCh. 1.1 - Prob. 0CCh. 1.1 - Prob. 1CCh. 1.1 - Prob. 2CCh. 1.1 - Prob. 3CCh. 1.1 - Prob. 4CCh. 1.1 - Prob. 5CCh. 1.1 - Prob. 6CCh. 1.1 - Prob. 7C
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Prob. 93PCh. 1.5 - Prob. 94PCh. 1.5 - Prob. 95PCh. 1.5 - Prob. 96PCh. 1.5 - Prob. 97PCh. 1.5 - Prob. 98PCh. 1.5 - Prob. 99PCh. 1.5 - Prob. 100PCh. 1.5 - Prob. 1TFCh. 1.5 - Prob. 2TFCh. 1.5 - Prob. 3TFCh. 1.5 - Prob. 4TFCh. 1.5 - Prob. 5TFCh. 1.5 - Prob. 6TFCh. 1.5 - Prob. 7TFCh. 1.6 - Prob. 1TBCh. 1.6 - Prob. 2TBCh. 1.6 - Prob. 0CCh. 1.6 - Prob. 1CCh. 1.6 - Prob. 2CCh. 1.6 - Prob. 3CCh. 1.6 - Prob. 4CCh. 1.6 - Prob. 5CCh. 1.6 - Prob. 6CCh. 1.6 - Prob. 7CCh. 1.6 - Prob. 8CCh. 1.6 - Prob. 9CCh. 1.6 - Prob. 10CCh. 1.6 - Prob. 11CCh. 1.6 - Prob. 12CCh. 1.6 - Prob. 13CCh. 1.6 - Prob. 14CCh. 1.6 - Prob. 15CCh. 1.6 - Prob. 16CCh. 1.6 - Prob. 17CCh. 1.6 - Prob. 18CCh. 1.6 - Prob. 19CCh. 1.6 - Prob. 20CCh. 1.6 - Prob. 21CCh. 1.6 - Prob. 22CCh. 1.6 - Prob. 23SCh. 1.6 - Prob. 24SCh. 1.6 - Prob. 25SCh. 1.6 - Prob. 26SCh. 1.6 - Prob. 27SCh. 1.6 - Prob. 28SCh. 1.6 - Prob. 29SCh. 1.6 - Prob. 30SCh. 1.6 - Prob. 31SCh. 1.6 - Prob. 32SCh. 1.6 - Prob. 33SCh. 1.6 - Prob. 34SCh. 1.6 - Prob. 35SCh. 1.6 - Prob. 36SCh. 1.6 - Prob. 37SCh. 1.6 - Prob. 38SCh. 1.6 - Prob. 39SCh. 1.6 - Prob. 40SCh. 1.6 - Prob. 41SCh. 1.6 - Prob. 42SCh. 1.6 - Prob. 43SCh. 1.6 - Prob. 44SCh. 1.6 - Prob. 45SCh. 1.6 - Prob. 46SCh. 1.6 - Prob. 47SCh. 1.6 - Prob. 48SCh. 1.6 - Prob. 49SCh. 1.6 - Prob. 50SCh. 1.6 - Prob. 51SCh. 1.6 - Prob. 52SCh. 1.6 - Prob. 53SCh. 1.6 - Prob. 54SCh. 1.6 - Prob. 55SCh. 1.6 - Prob. 56SCh. 1.6 - Prob. 57SCh. 1.6 - Prob. 58SCh. 1.6 - Prob. 59SCh. 1.6 - Prob. 60SCh. 1.6 - Prob. 61SCh. 1.6 - Prob. 62SCh. 1.6 - Prob. 63SCh. 1.6 - Prob. 64SCh. 1.6 - Prob. 65SCh. 1.6 - Prob. 66SCh. 1.6 - Prob. 67SCh. 1.6 - Prob. 68SCh. 1.6 - Prob. 69SCh. 1.6 - Prob. 70SCh. 1.6 - Prob. 71SCh. 1.6 - Prob. 72SCh. 1.6 - Prob. 73SCh. 1.6 - Prob. 74SCh. 1.6 - Prob. 75SCh. 1.6 - Prob. 76SCh. 1.6 - Prob. 77SCh. 1.6 - Prob. 78SCh. 1.6 - Prob. 79SCh. 1.6 - Prob. 80SCh. 1.6 - Prob. 81ACh. 1.6 - Prob. 82ACh. 1.6 - Prob. 83ACh. 1.6 - Prob. 84ACh. 1.6 - Prob. 85PCh. 1.6 - Prob. 86PCh. 1.6 - Prob. 87PCh. 1.6 - Prob. 88PCh. 1.6 - Prob. 89PCh. 1.6 - 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Prob. 21LRIFCh. 1 - Prob. 22LRIFCh. 1 - Prob. 23LRIFCh. 1 - Prob. 24LRIFCh. 1 - Prob. 25LRIFCh. 1 - Prob. 26LRIFCh. 1 - Prob. 27LRIFCh. 1 - Prob. 28LRIFCh. 1 - Prob. 29LRIFCh. 1 - Prob. 30LRIFCh. 1 - Prob. 31LRIFCh. 1 - Prob. 32LRIFCh. 1 - Prob. 33LRIFCh. 1 - Prob. 34LRIFCh. 1 - Prob. 35LRIFCh. 1 - Prob. 36LRIFCh. 1 - Prob. 37LRIFCh. 1 - Prob. 38LRIFCh. 1 - Prob. 39LRIFCh. 1 - Prob. 40LRIFCh. 1 - Prob. 41LRIFCh. 1 - Prob. 42LRIFCh. 1 - Prob. 43LRIFCh. 1 - Prob. 44LRIFCh. 1 - Prob. 45LRIFCh. 1 - Prob. 46LRIFCh. 1 - Prob. 47LRIFCh. 1 - Prob. 48LRIFCh. 1 - Prob. 49LRIFCh. 1 - Prob. 50LRIFCh. 1 - Prob. 1SCCh. 1 - Prob. 2SCCh. 1 - Prob. 3SCCh. 1 - Prob. 4SCCh. 1 - Prob. 5SCCh. 1 - Prob. 6SCCh. 1 - Prob. 7SCCh. 1 - Prob. 8SCCh. 1 - Prob. 9SCCh. 1 - Prob. 10SCCh. 1 - Prob. 11SCCh. 1 - Prob. 12SCCh. 1 - Prob. 13SCCh. 1 - Prob. 14SCCh. 1 - Prob. 15SCCh. 1 - Prob. 16SCCh. 1 - Prob. 17SCCh. 1 - Prob. 18SCCh. 1 - Prob. 19SCCh. 1 - Prob. 20SCCh. 1 - Prob. 21SCCh. 1 - Prob. 22SCCh. 1 - Prob. 23SCCh. 1 - Prob. 24SCCh. 1 - Prob. 25SCCh. 1 - Prob. 26SCCh. 1 - Prob. 27SCCh. 1 - Prob. 28SCCh. 1 - Prob. 29SCCh. 1 - Prob. 30SCCh. 1 - Prob. 31SCCh. 1 - Prob. 32SCCh. 1 - Prob. ACPCh. 1 - Prob. BCPCh. 1 - Prob. CCPCh. 1 - Prob. DCP
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- 11. Consider the 2nd-order non-homogeneous differential equation y′′ − 4y′ + 3y = et + t2What is the complementary (or homogeneous) solution?A. yc = c1e^t + c2t^2 B. yc = c1e^−t + c2e^−3t C. yc = c1e^t + c2e^3t D. yc = c1e^t + c2e^−3tarrow_forward5. A trial solution for the non-homogeneous equation y′′ + y′ − 2y = e^x isA. Ae^x B. Ae^x+ Be^−2x C. Ae^x + Be^−x D. Axe^x E. None of these.arrow_forward14. Write u = - sint-cost in the form u = C cos(t - a) with C > 0 and 0 ? PAUSE Z X C VI B N Marrow_forward
- 19. If the method of undetermined coefficients is used, the form of a particular solution ofy^(4) − y = e^−t + 3 sin(t) isA. yp(t) = Ate^−t + B cos(t) + C sin(t)B. yp(t) = At^2e^−t + B cos(t) + C sin(t)C. yp(t) = Ate^−t + Bt cos(t) + Ct sin(t)D. yp(t) = At^2e^−t + Bt cos(t) + Ct sin(t)E. yp(t) = Ate^−t + Bt sin(t)arrow_forward15. A spring-mass system is governed by the differential equation 2x′′ + 72x = 100 sin(3ωt) .For what value of ω will resonance occur?A. 3 B. 6√2 C. 2 D. 10 E. No valuearrow_forwardQuestion 3. A manufacturer has modeled its yearly production function P (the value of its entire production, in millions of dollars) as a Cobb-Douglas function P(L, K) = 1.47L0.65 0.35 where L is the number of labor hours (in thousands) and K is the invested capital (in millions of dollars). ӘР Ət (a) Express the rate of change of production 07-2 in time, in terms of the rate of change of the labor force and the rate of change of the capital in time. (b) Suppose that when L = 30 and K = 8, the labor force is decreasing at a rate of 2000 labor hours per year and capital is increasing at a rate of 500,000 per year. What is the rate of change of production per year?arrow_forward
- 17. Consider a mass-spring system that satisfies 2y′′(t) + by′(t) + 50y(t) = 0.Which of the following is/are true?(i) If b = 0, the motion is critically damped with period π/5 .(ii) If b = 12, the motion is underdamped.(iii) If b = 40, the motion is overdamped.A. (ii) and (iii) only B. (ii) only C. (i) and (ii) only D. (i) and (iii) only E. Allarrow_forward20. Find the general solution to the differential equation y(4) − 8y′′ + 16y = 0A. y = c1e^2x + c2e^−2xB. y = c1xe^2x + c2xe^−2xC. y = c1e^2x + c2e^−2x + c3xe^2x + c4xe^−2xD. y = c1xe^2x + c2xe^−2x + c3x^2e^2x + c4x^2e^−2xE. y = c1 cos 2x + c2 sin 2x + c3x cos 2x + c4x sin 2xarrow_forward9. A 1 kg mass is attached to a spring with constant 13 N/m. The system is immersed in amedium which offers a damping force numerically equal to 6 times the instantaneous velocity.If x is the displacement of the mass from equilibrium, measured in meters,then x′′ + 6x′ + 13x = 0 . Which of the following statements is true?A. x(t) = c1e^−t + c2e^−5t, and the system is underdamped.B. x(t) = c1e^−t + c2e^−5t, and the system is overdamped.C. x(t) = c1e^−3t cos(2t) + c2e^−3t sin(2t), and the system is underdamped.D. x(t) = c1e^−3t cos(2t) + c2e^−3t sin(2t), and the system is overdamped.arrow_forward
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