7.1 MCQs-Laplace Transform

Laplace Transform MCQs

Definition and Basic Transforms

1. The Laplace transform of a function $f(t)$ is defined as:

1. $\int_{0}^{\infty} e^{-st} f(t) \, dt$

2. $\int_{-\infty}^{\infty} e^{-st} f(t) \, dt$

3. $\int_{0}^{\infty} e^{st} f(t) \, dt$

4. $\int_{-\infty}^{\infty} e^{st} f(t) \, dt$

Show me the answer

Answer: 1. $\int_{0}^{\infty} e^{-st} f(t) \, dt$

Explanation:

• The (unilateral) Laplace transform $\mathcal{L}\{f(t)\} = F(s)$ is defined as: $F(s) = \int_{0}^{\infty} e^{-st} f(t) \, dt$

• The integral is taken from $0$ to $\infty$ (one-sided).

• The parameter $s$ is a complex variable: $s = \sigma + i\omega$.

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2. The Laplace transform of the unit step function $u(t)$ (also denoted as $H(t)$) is:

1. $\frac{1}{s}$ for $\text{Re}(s) > 0$

2. $\frac{1}{s^2}$

3. 1

4. $s$

Show me the answer

Answer: 1. $\frac{1}{s}$ for $\text{Re}(s) > 0$

Explanation:

• $u(t) = \begin{cases} 0, & t < 0 \\ 1, & t \ge 0 \end{cases}$

• $\mathcal{L}\{u(t)\} = \int_{0}^{\infty} e^{-st} \cdot 1 \, dt = \left[ \frac{e^{-st}}{-s} \right]_{0}^{\infty}$

• For $\text{Re}(s) > 0$, $e^{-s \cdot \infty} \to 0$.

• Therefore, $\mathcal{L}\{u(t)\} = 0 - \left( \frac{1}{-s} \right) = \frac{1}{s}$.

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3. The Laplace transform of $f(t) = e^{at}$ is:

1. $\frac{1}{s-a}$ for $\text{Re}(s) > \text{Re}(a)$

2. $\frac{1}{s+a}$

3. $\frac{s}{s^2 + a^2}$

4. $\frac{a}{s^2 + a^2}$

Show me the answer

Answer: 1. $\frac{1}{s-a}$ for $\text{Re}(s) > \text{Re}(a)$

Explanation:

• $\mathcal{L}\{e^{at}\} = \int_{0}^{\infty} e^{-st} e^{at} \, dt = \int_{0}^{\infty} e^{-(s-a)t} \, dt$

• This integral converges if $\text{Re}(s-a) > 0$, i.e., $\text{Re}(s) > \text{Re}(a)$.

• $\int_{0}^{\infty} e^{-(s-a)t} \, dt = \left[ \frac{e^{-(s-a)t}}{-(s-a)} \right]_{0}^{\infty} = 0 - \frac{1}{-(s-a)} = \frac{1}{s-a}$.

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4. The Laplace transform of $f(t) = t^n$ where n is a positive integer is:

1. $\frac{n!}{s^{n+1}}$

2. $\frac{n!}{s^n}$

3. $\frac{s}{s^2 + n^2}$

4. $\frac{1}{s^n}$

Show me the answer

Answer: 1. $\frac{n!}{s^{n+1}}$

Explanation:

• $\mathcal{L}\{t^n\} = \int_{0}^{\infty} e^{-st} t^n \, dt$

• Using integration by parts or the Gamma function: $\int_{0}^{\infty} e^{-st} t^n \, dt = \frac{\Gamma(n+1)}{s^{n+1}}$.

• Since n is a positive integer, $\Gamma(n+1) = n!$.

• Therefore, $\mathcal{L}\{t^n\} = \frac{n!}{s^{n+1}}$ for $\text{Re}(s) > 0$.

• Special cases: $\mathcal{L}\{t\} = \frac{1}{s^2}$, $\mathcal{L}\{t^2\} = \frac{2}{s^3}$.

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Transforms of Trigonometric Functions

5. The Laplace transform of $\cos(\omega t)$ is:

1. $\frac{s}{s^2 + \omega^2}$

2. $\frac{\omega}{s^2 + \omega^2}$

3. $\frac{1}{s^2 + \omega^2}$

4. $\frac{s}{s^2 - \omega^2}$

Show me the answer

Answer: 1. $\frac{s}{s^2 + \omega^2}$

Explanation:

• Using Euler's formula: $\cos(\omega t) = \frac{e^{i\omega t} + e^{-i\omega t}}{2}$.

• Then $\mathcal{L}\{\cos(\omega t)\} = \frac{1}{2} \left( \mathcal{L}\{e^{i\omega t}\} + \mathcal{L}\{e^{-i\omega t}\} \right) = \frac{1}{2} \left( \frac{1}{s - i\omega} + \frac{1}{s + i\omega} \right)$.

• Simplify: $\frac{1}{2} \cdot \frac{(s + i\omega) + (s - i\omega)}{s^2 + \omega^2} = \frac{1}{2} \cdot \frac{2s}{s^2 + \omega^2} = \frac{s}{s^2 + \omega^2}$.

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6. The Laplace transform of $\sin(\omega t)$ is:

1. $\frac{s}{s^2 + \omega^2}$

2. $\frac{\omega}{s^2 + \omega^2}$

3. $\frac{1}{s^2 + \omega^2}$

4. $\frac{s}{s^2 - \omega^2}$

Show me the answer

Answer: 2. $\frac{\omega}{s^2 + \omega^2}$

Explanation:

• Using Euler's formula: $\sin(\omega t) = \frac{e^{i\omega t} - e^{-i\omega t}}{2i}$.

• $\mathcal{L}\{\sin(\omega t)\} = \frac{1}{2i} \left( \frac{1}{s - i\omega} - \frac{1}{s + i\omega} \right)$.

• Simplify: $\frac{1}{2i} \cdot \frac{(s + i\omega) - (s - i\omega)}{s^2 + \omega^2} = \frac{1}{2i} \cdot \frac{2i\omega}{s^2 + \omega^2} = \frac{\omega}{s^2 + \omega^2}$.

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Properties of Laplace Transform

7. The linearity property of Laplace transform states that:

1. $\mathcal{L}\{af(t) + bg(t)\} = a\mathcal{L}\{f(t)\} + b\mathcal{L}\{g(t)\}$

2. $\mathcal{L}\{f(t)g(t)\} = \mathcal{L}\{f(t)\} \cdot \mathcal{L}\{g(t)\}$

3. $\mathcal{L}\{f(t)\} = s\mathcal{L}\{f(t)\} - f(0)$

4. $\mathcal{L}\{f(at)\} = \frac{1}{a}F\left(\frac{s}{a}\right)$

Show me the answer

Answer: 1. $\mathcal{L}\{af(t) + bg(t)\} = a\mathcal{L}\{f(t)\} + b\mathcal{L}\{g(t)\}$

Explanation:

• Linearity is a fundamental property: The Laplace transform of a linear combination is the same linear combination of the transforms.

• This follows directly from the linearity of the integral: $\int (af + bg) = a\int f + b\int g$.

• This property makes the Laplace transform easy to apply to linear differential equations.

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8. The First Shifting Theorem (Frequency Shift) states: If $\mathcal{L}\{f(t)\} = F(s)$, then $\mathcal{L}\{e^{at}f(t)\} =$

1. $F(s-a)$

2. $F(s+a)$

3. $e^{as}F(s)$

4. $e^{-as}F(s)$

Show me the answer

Answer: 1. $F(s-a)$

Explanation:

• The First Shifting Theorem: $\mathcal{L}\{e^{at}f(t)\} = F(s-a)$.

• Proof: $\mathcal{L}\{e^{at}f(t)\} = \int_{0}^{\infty} e^{-st} e^{at} f(t) \, dt = \int_{0}^{\infty} e^{-(s-a)t} f(t) \, dt = F(s-a)$.

• This is also called the s-shifting property.

• Example: Since $\mathcal{L}\{\cos(\omega t)\} = \frac{s}{s^2+\omega^2}$, then $\mathcal{L}\{e^{at}\cos(\omega t)\} = \frac{s-a}{(s-a)^2+\omega^2}$.

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9. The Laplace transform of the derivative $f'(t)$ is:

1. $sF(s)$

2. $sF(s) - f(0)$

3. $\frac{F(s)}{s}$

4. $F(s) - f(0)$

Show me the answer

Answer: 2. $sF(s) - f(0)$

Explanation:

• This is one of the most important properties for solving differential equations.

• $\mathcal{L}\{f'(t)\} = s\mathcal{L}\{f(t)\} - f(0) = sF(s) - f(0)$.

• For the second derivative: $\mathcal{L}\{f''(t)\} = s^2F(s) - sf(0) - f'(0)$.

• This property converts differential equations in t to algebraic equations in s.

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10. The Laplace transform of the integral $\int_0^t f(\tau) \, d\tau$ is:

1. $\frac{F(s)}{s}$

2. $sF(s)$

3. $F(s) - f(0)$

4. $\frac{F(s)}{s} + \frac{f(0)}{s}$

Show me the answer

Answer: 1. $\frac{F(s)}{s}$

Explanation:

• Integration in the time domain corresponds to division by s in the frequency domain.

• If $g(t) = \int_0^t f(\tau) \, d\tau$, then $g'(t) = f(t)$ and $g(0) = 0$.

• Using the derivative property: $\mathcal{L}\{g'(t)\} = s\mathcal{L}\{g(t)\} - g(0)$.

• So $F(s) = s\mathcal{L}\{g(t)\} - 0$, thus $\mathcal{L}\{g(t)\} = \frac{F(s)}{s}$.

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Unit Step Function and Time Shifting

11. The Laplace transform of the unit step function shifted by a, i.e., $u(t-a)$ (with $a > 0$), is:

1. $\frac{e^{-as}}{s}$

2. $\frac{e^{as}}{s}$

3. $\frac{1}{s}$

4. $e^{-as}$

Show me the answer

Answer: 1. $\frac{e^{-as}}{s}$

Explanation:

• $u(t-a) = \begin{cases} 0, & t < a \\ 1, & t \ge a \end{cases}$

• $\mathcal{L}\{u(t-a)\} = \int_{0}^{\infty} e^{-st} u(t-a) \, dt = \int_{a}^{\infty} e^{-st} \, dt$

• Let $\tau = t-a$, then $dt = d\tau$, and when $t=a$, $\tau=0$.

• $\int_{a}^{\infty} e^{-st} \, dt = \int_{0}^{\infty} e^{-s(\tau+a)} \, d\tau = e^{-as} \int_{0}^{\infty} e^{-s\tau} \, d\tau = e^{-as} \cdot \frac{1}{s}$.

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12. The Second Shifting Theorem (Time Shift) states: If $\mathcal{L}\{f(t)\} = F(s)$, then $\mathcal{L}\{f(t-a)u(t-a)\} =$

1. $e^{-as}F(s)$

2. $e^{as}F(s)$

3. $F(s-a)$

4. $F(s+a)$

Show me the answer

Answer: 1. $e^{-as}F(s)$

Explanation:

• Also known as the t-shifting property.

• The function $f(t-a)u(t-a)$ represents $f(t)$ shifted to the right by a units.

• $\mathcal{L}\{f(t-a)u(t-a)\} = e^{-as}F(s)$.

• Example: To find $\mathcal{L}\{(t-2)^2 u(t-2)\}$, we know $\mathcal{L}\{t^2\} = \frac{2}{s^3}$, so the transform is $e^{-2s} \cdot \frac{2}{s^3}$.

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Dirac Delta Function

13. The Laplace transform of the Dirac delta function $\delta(t)$ is:

1. 0

2. 1

3. $\frac{1}{s}$

4. $s$

Show me the answer

Answer: 2. 1

Explanation:

• The Dirac delta function $\delta(t)$ is defined such that $\int_{-\infty}^{\infty} \delta(t) \, dt = 1$ and $\delta(t) = 0$ for $t \neq 0$.

• $\mathcal{L}\{\delta(t)\} = \int_{0}^{\infty} e^{-st} \delta(t) \, dt = e^{-s \cdot 0} = 1$ (using the sifting property).

• For a shifted delta: $\mathcal{L}\{\delta(t-a)\} = e^{-as}$ for $a > 0$.

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14. The Laplace transform of $\delta(t-a)$ for $a > 0$ is:

1. 1

2. $e^{-as}$

3. $e^{as}$

4. $\frac{e^{-as}}{s}$

Show me the answer

Answer: 2. $e^{-as}$

Explanation:

• Using the sifting property of the Dirac delta function: $\int_{0}^{\infty} e^{-st} \delta(t-a) \, dt = e^{-sa}$ for $a > 0$.

• This follows because $\delta(t-a)$ "picks out" the value of the integrand at $t = a$.

• Therefore, $\mathcal{L}\{\delta(t-a)\} = e^{-as}$.

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Inverse Laplace Transform

15. The inverse Laplace transform of $\frac{1}{s-a}$ is:

1. $e^{at}$

2. $e^{-at}$

3. $t^n$

4. $\cos(at)$

Show me the answer

Answer: 1. $e^{at}$

Explanation:

• This is the inverse of the basic transform $\mathcal{L}\{e^{at}\} = \frac{1}{s-a}$.

• So, $\mathcal{L}^{-1}\left\{ \frac{1}{s-a} \right\} = e^{at}$ for $t \ge 0$.

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16. The inverse Laplace transform of $\frac{s}{s^2 + 4}$ is:

1. $\sin(2t)$

2. $\cos(2t)$

3. $e^{2t}$

4. $e^{-2t}$

Show me the answer

Answer: 2. $\cos(2t)$

Explanation:

• We know $\mathcal{L}\{\cos(\omega t)\} = \frac{s}{s^2 + \omega^2}$.

• Here, $\frac{s}{s^2 + 4} = \frac{s}{s^2 + 2^2}$, so $\omega = 2$.

• Therefore, $\mathcal{L}^{-1}\left\{ \frac{s}{s^2 + 4} \right\} = \cos(2t)$.

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Convolution Theorem

17. The Convolution Theorem states: The Laplace transform of the convolution $(f * g)(t) = \int_0^t f(\tau)g(t-\tau) \, d\tau$ is:

1. $F(s) + G(s)$

2. $F(s) \cdot G(s)$

3. $F(s) - G(s)$

4. $\frac{F(s)}{G(s)}$

Show me the answer

Answer: 2. $F(s) \cdot G(s)$

Explanation:

• The Convolution Theorem: $\mathcal{L}\{(f * g)(t)\} = F(s) \cdot G(s)$.

• Conversely: $\mathcal{L}^{-1}\{F(s) \cdot G(s)\} = (f * g)(t)$.

• This is useful for finding inverse transforms of products and for solving integral equations.

• Convolution is commutative: $f * g = g * f$.

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Solving Differential Equations

18. When solving an initial value problem using Laplace transforms, the differential equation in the time domain is converted to:

1. Another differential equation in s

2. An integral equation

3. An algebraic equation in s

4. A partial differential equation

Show me the answer

Answer: 3. An algebraic equation in s

Explanation:

• This is the primary advantage of the Laplace transform method for solving linear ordinary differential equations with constant coefficients.

• Derivatives become algebraic terms: $\mathcal{L}\{y'\} = sY(s) - y(0)$, $\mathcal{L}\{y''\} = s^2Y(s) - sy(0) - y'(0)$, etc.

• The ODE transforms into an algebraic equation for $Y(s)$, which is then solved algebraically.

• Finally, $y(t)$ is obtained by taking the inverse Laplace transform of $Y(s)$.

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19. The Laplace transform is particularly useful for solving:

1. Nonlinear differential equations

2. Linear differential equations with constant coefficients and initial conditions

3. Partial differential equations without boundary conditions

4. Integral equations only

Show me the answer

Answer: 2. Linear differential equations with constant coefficients and initial conditions

Explanation:

• The Laplace transform method excels at solving linear ODEs with constant coefficients and given initial conditions (initial value problems).

• It handles discontinuous forcing functions (like step functions) and impulse functions (Dirac delta) naturally.

• The method automatically incorporates the initial conditions.

• For boundary value problems or variable coefficient equations, other methods may be more appropriate.

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Final Value Theorem

20. The Final Value Theorem states: If the limits exist, then $\lim_{t \to \infty} f(t) =$

1. $\lim_{s \to 0} sF(s)$

2. $\lim_{s \to \infty} sF(s)$

3. $\lim_{s \to 0} F(s)$

4. $\lim_{s \to \infty} F(s)$

Show me the answer

Answer: 1. $\lim_{s \to 0} sF(s)$

Explanation:

• Final Value Theorem: $\lim_{t \to \infty} f(t) = \lim_{s \to 0} sF(s)$, provided all poles of $sF(s)$ have negative real parts (i.e., the limit exists and is finite).

• This theorem gives the steady-state value of a time function without needing the inverse transform.

• Initial Value Theorem (dual): $\lim_{t \to 0^+} f(t) = \lim_{s \to \infty} sF(s)$.