Quizbank/Electricity and Magnetism: Gauss' Law/T2

1) If Gauss' law can be reduced to an algebraic expression that easily calculates the electric field ${\displaystyle (\varepsilon _{0}EA^{*}=\rho V^{*})}$, ${\displaystyle {\vec {E}}}$ was calculated inside the Gaussian surface

a) True

b) False

2) If Gauss' law can be reduced to an algebraic expression that easily calculates the electric field ${\displaystyle (\varepsilon _{0}EA^{*}=\rho V^{*})}$, ${\displaystyle {\vec {E}}}$ was calculated outside the Gaussian surface

a) True

b) False

3) If Gauss' law can be reduced to an algebraic expression that easily calculates the electric field ${\displaystyle (\varepsilon _{0}EA^{*}=\rho V^{*})}$, ${\displaystyle {\vec {E}}}$ had

a) constant magnitude over a portion of the Gaussian surface

b) constant direction over a portion of the Gaussian surface

c) constant direction and magnitude over the entire Gaussian surface

d) constant in direction over the entire Gaussian surface

4) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle dA_{1}=dA_{3}}$

a) True

b) False

5) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle {\vec {E}}_{1}\cdot dA_{1}+{\vec {E}}_{2}\cdot dA_{3}=0}$

a) True

b) False

1) If Gauss' law can be reduced to an algebraic expression that easily calculates the electric field ${\displaystyle (\varepsilon _{0}EA^{*}=\rho V^{*})}$, ${\displaystyle {\vec {E}}}$ was calculated outside the Gaussian surface

a) True

b) False

2) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle {\vec {E}}_{1}\cdot dA_{1}+{\vec {E}}_{2}\cdot dA_{3}=0}$

a) True

b) False

3) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle dA_{1}=dA_{3}}$

a) True

b) False

4) If Gauss' law can be reduced to an algebraic expression that easily calculates the electric field ${\displaystyle (\varepsilon _{0}EA^{*}=\rho V^{*})}$, ${\displaystyle {\vec {E}}}$ was calculated inside the Gaussian surface

a) True

b) False

5) If Gauss' law can be reduced to an algebraic expression that easily calculates the electric field ${\displaystyle (\varepsilon _{0}EA^{*}=\rho V^{*})}$, ${\displaystyle {\vec {E}}}$ had

a) constant magnitude over a portion of the Gaussian surface

b) constant in direction over the entire Gaussian surface

c) constant direction over a portion of the Gaussian surface

d) constant direction and magnitude over the entire Gaussian surface

1) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle dA_{1}=dA_{3}}$

a) True

b) False

2) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle {\vec {E}}_{1}\cdot dA_{1}+{\vec {E}}_{2}\cdot dA_{3}=0}$

a) True

b) False

3) If Gauss' law can be reduced to an algebraic expression that easily calculates the electric field ${\displaystyle (\varepsilon _{0}EA^{*}=\rho V^{*})}$, ${\displaystyle {\vec {E}}}$ was calculated inside the Gaussian surface

a) True

b) False

4) If Gauss' law can be reduced to an algebraic expression that easily calculates the electric field ${\displaystyle (\varepsilon _{0}EA^{*}=\rho V^{*})}$, ${\displaystyle {\vec {E}}}$ was calculated outside the Gaussian surface

a) True

b) False

5) If Gauss' law can be reduced to an algebraic expression that easily calculates the electric field ${\displaystyle (\varepsilon _{0}EA^{*}=\rho V^{*})}$, ${\displaystyle {\vec {E}}}$ had

a) constant direction over a portion of the Gaussian surface

b) constant magnitude over a portion of the Gaussian surface

c) constant in direction over the entire Gaussian surface

d) constant direction and magnitude over the entire Gaussian surface

1) If Gauss' law can be reduced to an algebraic expression that easily calculates the electric field ${\displaystyle (\varepsilon _{0}EA^{*}=\rho V^{*})}$, ${\displaystyle {\vec {E}}}$ was calculated inside the Gaussian surface

a) True

b) False

2) If Gauss' law can be reduced to an algebraic expression that easily calculates the electric field ${\displaystyle (\varepsilon _{0}EA^{*}=\rho V^{*})}$, ${\displaystyle {\vec {E}}}$ was calculated outside the Gaussian surface

a) True

b) False

3) If Gauss' law can be reduced to an algebraic expression that easily calculates the electric field ${\displaystyle (\varepsilon _{0}EA^{*}=\rho V^{*})}$, ${\displaystyle {\vec {E}}}$ had

a) constant magnitude over a portion of the Gaussian surface

b) constant in direction over the entire Gaussian surface

c) constant direction over a portion of the Gaussian surface

d) constant direction and magnitude over the entire Gaussian surface

4) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle {\vec {E}}_{1}\cdot dA_{1}={\vec {E}}_{3}\cdot dA_{3}}$

a) True

b) False

5) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle {\vec {E}}_{1}\cdot dA_{1}+{\vec {E}}_{2}\cdot dA_{3}=0}$

a) True

b) False

1) If Gauss' law can be reduced to an algebraic expression that easily calculates the electric field ${\displaystyle (\varepsilon _{0}EA^{*}=\rho V^{*})}$, ${\displaystyle {\vec {E}}}$ was calculated outside the Gaussian surface

a) True

b) False

2) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle {\vec {E}}_{1}\cdot dA_{1}+{\vec {E}}_{2}\cdot dA_{3}=0}$

a) True

b) False

3) If Gauss' law can be reduced to an algebraic expression that easily calculates the electric field ${\displaystyle (\varepsilon _{0}EA^{*}=\rho V^{*})}$, ${\displaystyle {\vec {E}}}$ was calculated inside the Gaussian surface

a) True

b) False

4) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle {\vec {E}}_{1}\cdot dA_{1}={\vec {E}}_{3}\cdot dA_{3}}$

a) True

b) False

5) If Gauss' law can be reduced to an algebraic expression that easily calculates the electric field ${\displaystyle (\varepsilon _{0}EA^{*}=\rho V^{*})}$, ${\displaystyle {\vec {E}}}$ had

a) constant in direction over the entire Gaussian surface

b) constant magnitude over a portion of the Gaussian surface

c) constant direction and magnitude over the entire Gaussian surface

d) constant direction over a portion of the Gaussian surface

1) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle {\vec {E}}_{1}\cdot dA_{1}+{\vec {E}}_{2}\cdot dA_{3}=0}$

a) True

b) False

2) If Gauss' law can be reduced to an algebraic expression that easily calculates the electric field ${\displaystyle (\varepsilon _{0}EA^{*}=\rho V^{*})}$, ${\displaystyle {\vec {E}}}$ was calculated inside the Gaussian surface

a) True

b) False

3) If Gauss' law can be reduced to an algebraic expression that easily calculates the electric field ${\displaystyle (\varepsilon _{0}EA^{*}=\rho V^{*})}$, ${\displaystyle {\vec {E}}}$ had

a) constant direction and magnitude over the entire Gaussian surface

b) constant in direction over the entire Gaussian surface

c) constant direction over a portion of the Gaussian surface

d) constant magnitude over a portion of the Gaussian surface

4) If Gauss' law can be reduced to an algebraic expression that easily calculates the electric field ${\displaystyle (\varepsilon _{0}EA^{*}=\rho V^{*})}$, ${\displaystyle {\vec {E}}}$ was calculated outside the Gaussian surface

a) True

b) False

5) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle {\vec {E}}_{1}\cdot dA_{1}={\vec {E}}_{3}\cdot dA_{3}}$

a) True

b) False

1) If Gauss' law can be reduced to an algebraic expression that easily calculates the electric field ${\displaystyle (\varepsilon _{0}EA^{*}=\rho V^{*})}$, ${\displaystyle {\vec {E}}}$ was calculated on the Gaussian surface

a) True

b) False

2) If Gauss' law can be reduced to an algebraic expression that easily calculates the electric field ${\displaystyle (\varepsilon _{0}EA^{*}=\rho V^{*})}$, ${\displaystyle {\vec {E}}}$ had

a) constant direction over a portion of the Gaussian surface

b) constant in direction over the entire Gaussian surface

c) constant direction and magnitude over the entire Gaussian surface

d) constant magnitude over a portion of the Gaussian surface

3) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle dA_{1}=dA_{3}}$

a) True

b) False

4) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle {\vec {E}}_{1}\cdot dA_{1}+{\vec {E}}_{3}\cdot dA_{3}=0}$

a) True

b) False

5) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle {\vec {E}}_{1}\cdot dA_{1}+{\vec {E}}_{2}\cdot dA_{3}=0}$

a) True

b) False

1) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle dA_{1}=dA_{3}}$

a) True

b) False

2) If Gauss' law can be reduced to an algebraic expression that easily calculates the electric field ${\displaystyle (\varepsilon _{0}EA^{*}=\rho V^{*})}$, ${\displaystyle {\vec {E}}}$ was calculated on the Gaussian surface

a) True

b) False

3) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle {\vec {E}}_{1}\cdot dA_{1}+{\vec {E}}_{2}\cdot dA_{3}=0}$

a) True

b) False

4) If Gauss' law can be reduced to an algebraic expression that easily calculates the electric field ${\displaystyle (\varepsilon _{0}EA^{*}=\rho V^{*})}$, ${\displaystyle {\vec {E}}}$ had

a) constant in direction over the entire Gaussian surface

b) constant direction and magnitude over the entire Gaussian surface

c) constant direction over a portion of the Gaussian surface

d) constant magnitude over a portion of the Gaussian surface

5) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle {\vec {E}}_{1}\cdot dA_{1}+{\vec {E}}_{3}\cdot dA_{3}=0}$

a) True

b) False

1) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle dA_{1}=dA_{3}}$

a) True

b) False

2) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle {\vec {E}}_{1}\cdot dA_{1}+{\vec {E}}_{3}\cdot dA_{3}=0}$

a) True

b) False

3) If Gauss' law can be reduced to an algebraic expression that easily calculates the electric field ${\displaystyle (\varepsilon _{0}EA^{*}=\rho V^{*})}$, ${\displaystyle {\vec {E}}}$ was calculated on the Gaussian surface

a) True

b) False

4) If Gauss' law can be reduced to an algebraic expression that easily calculates the electric field ${\displaystyle (\varepsilon _{0}EA^{*}=\rho V^{*})}$, ${\displaystyle {\vec {E}}}$ had

a) constant magnitude over a portion of the Gaussian surface

b) constant direction over a portion of the Gaussian surface

c) constant direction and magnitude over the entire Gaussian surface

d) constant in direction over the entire Gaussian surface

5) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle {\vec {E}}_{1}\cdot dA_{1}+{\vec {E}}_{2}\cdot dA_{3}=0}$

a) True

b) False

1) If Gauss' law can be reduced to an algebraic expression that easily calculates the electric field ${\displaystyle (\varepsilon _{0}EA^{*}=\rho V^{*})}$, ${\displaystyle {\vec {E}}}$ was calculated inside the Gaussian surface

a) True

b) False

2) If Gauss' law can be reduced to an algebraic expression that easily calculates the electric field ${\displaystyle (\varepsilon _{0}EA^{*}=\rho V^{*})}$, ${\displaystyle {\vec {E}}}$ was calculated outside the Gaussian surface

a) True

b) False

3) If Gauss' law can be reduced to an algebraic expression that easily calculates the electric field ${\displaystyle (\varepsilon _{0}EA^{*}=\rho V^{*})}$, ${\displaystyle {\vec {E}}}$ had

a) constant direction and magnitude over the entire Gaussian surface

b) constant in direction over the entire Gaussian surface

c) constant direction over a portion of the Gaussian surface

d) constant magnitude over a portion of the Gaussian surface

4) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle {\vec {E}}_{1}\cdot dA_{1}={\vec {E}}_{3}\cdot dA_{3}}$

a) True

b) False

5) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle {\vec {E}}_{1}\cdot dA_{1}+{\vec {E}}_{3}\cdot dA_{3}=0}$

a) True

b) False

1) If Gauss' law can be reduced to an algebraic expression that easily calculates the electric field ${\displaystyle (\varepsilon _{0}EA^{*}=\rho V^{*})}$, ${\displaystyle {\vec {E}}}$ was calculated inside the Gaussian surface

a) True

b) False

2) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle {\vec {E}}_{1}\cdot dA_{1}+{\vec {E}}_{3}\cdot dA_{3}=0}$

a) True

b) False

3) If Gauss' law can be reduced to an algebraic expression that easily calculates the electric field ${\displaystyle (\varepsilon _{0}EA^{*}=\rho V^{*})}$, ${\displaystyle {\vec {E}}}$ had

a) constant direction over a portion of the Gaussian surface

b) constant magnitude over a portion of the Gaussian surface

c) constant direction and magnitude over the entire Gaussian surface

d) constant in direction over the entire Gaussian surface

4) If Gauss' law can be reduced to an algebraic expression that easily calculates the electric field ${\displaystyle (\varepsilon _{0}EA^{*}=\rho V^{*})}$, ${\displaystyle {\vec {E}}}$ was calculated outside the Gaussian surface

a) True

b) False

5) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle {\vec {E}}_{1}\cdot dA_{1}={\vec {E}}_{3}\cdot dA_{3}}$

a) True

b) False

1) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle {\vec {E}}_{1}\cdot dA_{1}+{\vec {E}}_{3}\cdot dA_{3}=0}$

a) True

b) False

2) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle {\vec {E}}_{1}\cdot dA_{1}={\vec {E}}_{3}\cdot dA_{3}}$

a) True

b) False

3) If Gauss' law can be reduced to an algebraic expression that easily calculates the electric field ${\displaystyle (\varepsilon _{0}EA^{*}=\rho V^{*})}$, ${\displaystyle {\vec {E}}}$ was calculated outside the Gaussian surface

a) True

b) False

4) If Gauss' law can be reduced to an algebraic expression that easily calculates the electric field ${\displaystyle (\varepsilon _{0}EA^{*}=\rho V^{*})}$, ${\displaystyle {\vec {E}}}$ had

a) constant in direction over the entire Gaussian surface

b) constant direction over a portion of the Gaussian surface

c) constant magnitude over a portion of the Gaussian surface

d) constant direction and magnitude over the entire Gaussian surface

5) If Gauss' law can be reduced to an algebraic expression that easily calculates the electric field ${\displaystyle (\varepsilon _{0}EA^{*}=\rho V^{*})}$, ${\displaystyle {\vec {E}}}$ was calculated inside the Gaussian surface

a) True

b) False

1) If Gauss' law can be reduced to an algebraic expression that easily calculates the electric field ${\displaystyle (\varepsilon _{0}EA^{*}=\rho V^{*})}$, ${\displaystyle {\vec {E}}}$ had

a) constant direction and magnitude over the entire Gaussian surface

b) constant in direction over the entire Gaussian surface

c) constant magnitude over a portion of the Gaussian surface

d) constant direction over a portion of the Gaussian surface

2) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle dA_{1}=dA_{3}}$

a) True

b) False

3) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle {\vec {E}}_{1}\cdot dA_{1}={\vec {E}}_{3}\cdot dA_{3}}$

a) True

b) False

4) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle {\vec {E}}_{1}\cdot dA_{1}+{\vec {E}}_{3}\cdot dA_{3}=0}$

a) True

b) False

5) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle {\vec {E}}_{1}\cdot dA_{1}+{\vec {E}}_{2}\cdot dA_{3}=0}$

a) True

b) False

1) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle dA_{1}=dA_{3}}$

a) True

b) False

2) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle {\vec {E}}_{1}\cdot dA_{1}+{\vec {E}}_{2}\cdot dA_{3}=0}$

a) True

b) False

3) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle {\vec {E}}_{1}\cdot dA_{1}+{\vec {E}}_{3}\cdot dA_{3}=0}$

a) True

b) False

4) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle {\vec {E}}_{1}\cdot dA_{1}={\vec {E}}_{3}\cdot dA_{3}}$

a) True

b) False

5) If Gauss' law can be reduced to an algebraic expression that easily calculates the electric field ${\displaystyle (\varepsilon _{0}EA^{*}=\rho V^{*})}$, ${\displaystyle {\vec {E}}}$ had

a) constant direction over a portion of the Gaussian surface

b) constant direction and magnitude over the entire Gaussian surface

c) constant in direction over the entire Gaussian surface

d) constant magnitude over a portion of the Gaussian surface

1) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle {\vec {E}}_{1}\cdot dA_{1}+{\vec {E}}_{3}\cdot dA_{3}=0}$

a) True

b) False

2) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle dA_{1}=dA_{3}}$

a) True

b) False

3) If Gauss' law can be reduced to an algebraic expression that easily calculates the electric field ${\displaystyle (\varepsilon _{0}EA^{*}=\rho V^{*})}$, ${\displaystyle {\vec {E}}}$ had

a) constant magnitude over a portion of the Gaussian surface

b) constant in direction over the entire Gaussian surface

c) constant direction over a portion of the Gaussian surface

d) constant direction and magnitude over the entire Gaussian surface

4) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle {\vec {E}}_{1}\cdot dA_{1}={\vec {E}}_{3}\cdot dA_{3}}$

a) True

b) False

5) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle {\vec {E}}_{1}\cdot dA_{1}+{\vec {E}}_{2}\cdot dA_{3}=0}$

a) True

b) False

1) If Gauss' law can be reduced to an algebraic expression that easily calculates the electric field ${\displaystyle (\varepsilon _{0}EA^{*}=\rho V^{*})}$, ${\displaystyle {\vec {E}}}$ was calculated outside the Gaussian surface

a) True

b) False

2) If Gauss' law can be reduced to an algebraic expression that easily calculates the electric field ${\displaystyle (\varepsilon _{0}EA^{*}=\rho V^{*})}$, ${\displaystyle {\vec {E}}}$ was calculated on the Gaussian surface

a) True

b) False

3) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle dA_{1}=dA_{3}}$

a) True

b) False

4) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle {\vec {E}}_{1}\cdot dA_{1}={\vec {E}}_{3}\cdot dA_{3}}$

a) True

b) False

5) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle {\vec {E}}_{1}\cdot dA_{1}+{\vec {E}}_{2}\cdot dA_{3}=0}$

a) True

b) False

1) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle {\vec {E}}_{1}\cdot dA_{1}={\vec {E}}_{3}\cdot dA_{3}}$

a) True

b) False

2) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle {\vec {E}}_{1}\cdot dA_{1}+{\vec {E}}_{2}\cdot dA_{3}=0}$

a) True

b) False

3) If Gauss' law can be reduced to an algebraic expression that easily calculates the electric field ${\displaystyle (\varepsilon _{0}EA^{*}=\rho V^{*})}$, ${\displaystyle {\vec {E}}}$ was calculated on the Gaussian surface

a) True

b) False

4) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle dA_{1}=dA_{3}}$

a) True

b) False

5) If Gauss' law can be reduced to an algebraic expression that easily calculates the electric field ${\displaystyle (\varepsilon _{0}EA^{*}=\rho V^{*})}$, ${\displaystyle {\vec {E}}}$ was calculated outside the Gaussian surface

a) True

b) False

1) If Gauss' law can be reduced to an algebraic expression that easily calculates the electric field ${\displaystyle (\varepsilon _{0}EA^{*}=\rho V^{*})}$, ${\displaystyle {\vec {E}}}$ was calculated outside the Gaussian surface

a) True

b) False

2) If Gauss' law can be reduced to an algebraic expression that easily calculates the electric field ${\displaystyle (\varepsilon _{0}EA^{*}=\rho V^{*})}$, ${\displaystyle {\vec {E}}}$ was calculated on the Gaussian surface

a) True

b) False

3) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle {\vec {E}}_{1}\cdot dA_{1}={\vec {E}}_{3}\cdot dA_{3}}$

a) True

b) False

4) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle {\vec {E}}_{1}\cdot dA_{1}+{\vec {E}}_{2}\cdot dA_{3}=0}$

a) True

b) False

5) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle dA_{1}=dA_{3}}$

a) True

b) False

1) If Gauss' law can be reduced to an algebraic expression that easily calculates the electric field ${\displaystyle (\varepsilon _{0}EA^{*}=\rho V^{*})}$, ${\displaystyle {\vec {E}}}$ was calculated inside the Gaussian surface

a) True

b) False

2) If Gauss' law can be reduced to an algebraic expression that easily calculates the electric field ${\displaystyle (\varepsilon _{0}EA^{*}=\rho V^{*})}$, ${\displaystyle {\vec {E}}}$ was calculated outside the Gaussian surface

a) True

b) False

3) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle {\vec {E}}_{1}\cdot dA_{1}={\vec {E}}_{3}\cdot dA_{3}}$

a) True

b) False

4) In this description of the flux element, ${\displaystyle d{\vec {S}}={\hat {n}}dA_{j}}$ (j=1,2,3) where ${\displaystyle {\hat {n}}}$ is the outward unit normal, and a positive charge is assumed at point O, inside the Gaussian surface shown. The field lines exit at ${\displaystyle S_{1}}$ and ${\displaystyle S_{3}}$ but enter at ${\displaystyle S_{2}}$. In this figure, ${\displaystyle {\vec {E}}_{1}\cdot dA_{1}+{\vec {E}}_{3}\cdot dA_{3}=0}$

a) True

b) False