MA127-2019春期中考试答案

一、判断题

1-1

False

$\Rightarrow \sum_{n = 1}^{\infty} a_{n}$ converges, $a_{n} < 0$ for $n > 1000$

$\Rightarrow \sum_{n = 1}^{\infty} | a_{n} | = \sum_{n = 1}^{1000} | a_{n} | - \sum_{n = 1001}^{\infty} a_{n}$ converges and $lim_{n \to \infty} a_{n} = 0$

$∴ lim_{n \to \infty} | a_{n} | = lim_{n \to \infty} \frac{a_{n}^{2}}{| a_{n} |} = 0, \sum | a_{n} |$ converges, $\Rightarrow \sum a_{n}^{2}$ converges.

1-2

True

$\Rightarrow \sum a_{n} (x - 1)^{n}$ converges at $x = 0$

$\Rightarrow \sum a_{n} (x - 1)^{n}$ converges absolutly for $| x - 1 | < 1$

so $x - 1 = - 1$ , i.e., $0 < x < 2$

diverges at $x = 2$ , i.e., $x - 1 = 1$

$\Rightarrow$ diverges for $| x - 1 | > 1$

$\Rightarrow x > 2$ or $x < 0$ diverges. So converges for $0 \leq x < 2$

since. $\sum a_{n} x^{n}$ converges at $x = c \neq 0$

$\Rightarrow$ converges absolutely for all $| x | < | c |$

diverges at $x = d \Rightarrow$ diverges for $| x | > | d |$

$\sum a_{n} (x - 1)^{n}$ converges at $x = 0$

$\Rightarrow lim_{n \to \infty} a_{n} = 0 \Rightarrow \exists ε = 1$ s.t. $| a_{n} | < 1 \forall n > N$

$\Rightarrow | a_{n} (x - 1)^{n} | < | x - 1 |^{n}$ for $\forall | x - 1 | < 1$

and $\sum | x - 1 |^{n}$ converges

$\Rightarrow \sum | a_{n} (x - 1)^{n} |$ converges for $| x - 1 | < 1 \Rightarrow 0 < x < 2$

$\Rightarrow$ converges at $0 \leq x < 2$

1-3

True

Since

$f_{x} (x_{0}, y_{0}) = lim_{x \to x_{0}} \frac{f (x, y_{0}) - f (x_{0}, y_{0})}{x - x_{0}} = c$ exists

and $x - x_{0} \to 0 \Rightarrow lim_{x \to x_{0}} f (x, y_{0}) = f (x_{0}, y_{0})$

$f_{y} (x_{0}, y_{0}) = lim_{y \to y_{0}} \frac{f (x_{0}, y) - f (x_{0}, y_{0})}{y - y_{0}}$ exist

and $lim_{y \to y_{0}} (y - y_{0}) = 0 \Rightarrow lim_{y \to y_{0}} f (x_{0}, y) = f (x_{0}, y_{0})$

$∴ lim_{x \to x_{0}} f (x, y_{0}) = lim_{y \to y_{0}} f (x_{0}, y) = f (x_{0}, y_{0})$

1-4

True

$\vec{r} (t) \cdot \frac{d \vec{r}}{d t} = 0 \Rightarrow (\vec{r} (t) \cdot \vec{r} (t))^{'} = 2 \vec{r} (t) \cdot \frac{d \vec{r}}{d t} = 0$

\Rightarrow | \vec{r} (t) | = c \Rightarrow | \vec{r} (t) | = constant

1-5

False

For unit circle: $x^{2} + y^{2} = 1 \Rightarrow$

{\begin{cases} x = \cos t \\ y = \sin t \end{cases} \Rightarrow \vec{r} (t) = (\cos t) \vec{i} + (\sin t) \vec{j}

$\vec{T} = \vec{v} = (- \sin t) \vec{i} + (\cos t) \vec{j}$

$| \frac{d \vec{T}}{d t} | = 1, | \vec{v} (t) | = 1 \Rightarrow κ = 1$

For $y = x^{2} \Rightarrow y^{'} = 2 x, y^{''} = 2 \Rightarrow y^{'} (0) = 0, y^{''} (0) = 2$

κ = \frac{| y^{''} |}{(1 + (y^{'})^{2})^{3 / 2}} = \frac{2}{1} = 2

二、多选题

2-1

$| \vec{a} + \vec{b} | = \sqrt{| \vec{a} |^{2} + 2 \vec{a} \cdot \vec{b} + | \vec{b} |^{2}} = \sqrt{| \vec{a} |^{2} + | \vec{b} |^{2}}$

$| \vec{a} - \vec{b} | = \sqrt{| \vec{a} |^{2} - 2 \vec{a} \cdot \vec{b} + | \vec{b} |^{2}} = \sqrt{| \vec{a} |^{2} + | \vec{b} |^{2}}$

$∴ | \vec{a} + \vec{b} | = | \vec{a} - \vec{b} |$

2-2

$\Rightarrow {\vec{v}}_{1} = (1, 2, - 1), {\vec{v}}_{2} = (- 2, 1, 1) ∴ {\vec{v}}_{1} \cdot {\vec{v}}_{2} = - 2 + 2 - 1 = - 1, | {\vec{v}}_{1} | = | {\vec{v}}_{2} | = \sqrt{6}$

$\Rightarrow \cos θ = - \frac{1}{6}$

But if they intersect:

{\begin{cases} x = t = 1 - 2 t \\ y = 2 t = t \end{cases} \Rightarrow {\begin{cases} t = \frac{1}{3} \\ t = 0 \end{cases}

2-3

$0 \leq a_{n} < \frac{1}{n} \Rightarrow a_{n}^{2} \leq \frac{1}{n^{2}} \Rightarrow \sum a_{n}^{2}$ converges

$\Rightarrow \sum (- 1)^{n} a_{n}^{2}$ converges

三

3-1

$\Rightarrow lim_{n \to \infty} \sqrt[n]{| a_{n} |} = lim_{n \to \infty} \sqrt[n]{(- 1)^{n} (1 - \frac{1}{n})^{n^{2}}} = lim_{n \to \infty} (1 - \frac{1}{n})^{n} = e^{- 1} < 1$

$\Rightarrow$ converges absolutely

3-2

$\Rightarrow lim_{n \to \infty} e^{- \frac{1}{n}} = e^{0} = 1 \neq 0 \Rightarrow$ diverges

3-3

$\Rightarrow$ For $\sum_{n = 2019}^{\infty} \frac{1}{\sqrt{n^{2} - 2019 n + 1}}, lim_{n \to \infty} \frac{\frac{1}{\sqrt{n^{2} - 2019 n + 1}}}{\frac{1}{n}} = 1, \sum \frac{1}{n}$ diverges $\Rightarrow$ diverges

$u_{n} = \frac{1}{\sqrt{n^{2} - 2019 n + 1}} > 0, u_{n} > u_{n + 1}, u_{n} \to 0 \Rightarrow$ converges conditionally

四

4-1

$\Rightarrow | \frac{u_{n + 1}}{u_{n}} | = \frac{2^{n + 1} \sqrt{n^{2} + n + 1}}{2^{n} \sqrt{(n + 1)^{2} + (n + 1) + 1}} | x | \to 2 | x | < 1 \Rightarrow | x | < \frac{1}{2} \Rightarrow R = \frac{1}{2}$

4-2

when $x = \frac{1}{2}$ : $\sum_{n = 0}^{\infty} \frac{(- 1)^{n + 1}}{\sqrt{n^{2} + n + 1}}$ converges conditionally since

$\frac{1}{\sqrt{n^{2} + n + 1}} > 0, lim_{n \to \infty} \frac{1}{\sqrt{n^{2} + n + 1}} = 0$

$lim_{n \to \infty} \frac{1}{\sqrt{n^{2} + n + 1}} \cdot n = 1, \sum \frac{1}{n}$ diverges

$\Rightarrow \sum \frac{1}{\sqrt{n^{2} + n + 1}}$ diverges

when $x = - \frac{1}{2}$

$\sum_{n = 0}^{\infty} \frac{(- 1)^{n + 1} \cdot (- 1)^{n}}{\sqrt{n^{2} + n + 1}} = \sum_{n = 0}^{\infty} \frac{(- 1)^{2 n + 1}}{\sqrt{n^{2} + n + 1}} = \sum_{n = 0}^{\infty} \frac{- 1}{\sqrt{n^{2} + n + 1}}$ diverges

$\Rightarrow$ converges absolutely: $(- \frac{1}{2}, \frac{1}{2})$ , converges: $(- \frac{1}{2}, \frac{1}{2}]$ , converges conditionally: $x = \frac{1}{2}$

五

5-1

$\frac{d x}{d t} = - 3 \cos^{2} t \sin t, \frac{d y}{d t} = 3 \sin^{2} t \cos t \Rightarrow (\frac{d x}{d t})^{2} + (\frac{d y}{d t})^{2} = 9 \sin^{2} t \cos^{2} t$

\begin{aligned} L & = \int_{0}^{\frac{π}{2}} \sqrt{(\frac{d x}{d t})^{2} + (\frac{d y}{d t})^{2}} d t = \int_{0}^{\frac{π}{2}} \sqrt{9 \sin^{2} t \cos^{2} t} d t = \int_{0}^{\frac{π}{2}} 3 \sin t \cos t d t \\ = \frac{3}{2} \sin^{2} t |_{0}^{\frac{π}{2}} = \frac{3}{2} \end{aligned}

5-2

$S = \int_{0}^{\frac{π}{2}} 2 π y \sqrt{(\frac{d x}{d t})^{2} + (\frac{d y}{d t})^{2}} d t = \int_{0}^{\frac{π}{2}} 2 π \sin^{3} t \cdot 3 \sin t \cos t d t = \int_{0}^{\frac{π}{2}} 6 π \sin^{4} t d \sin t$

= $\frac{6}{5} s i n^{5} t |_{0}^{\frac{π}{2}} = \frac{6 π}{5}$

六

$\Rightarrow$ let $P (2, - 1, - 1), Q (1, 0, - 1) \Rightarrow \vec{P Q} = (- 1, 1, 0), \vec{n_{1}} = (2, 3, - 5)$

\begin{array}{r} \Rightarrow \vec{n} = \vec{P Q} \times \vec{n_{1}} = | \begin{array}{ccc} \vec{i} & \vec{j} & \vec{k} \\ - 1 & 1 & 0 \\ 2 & 3 & - 5 \end{array} | = - 5 \vec{i} - 5 \vec{j} - 5 \vec{k} \end{array}

$\Rightarrow$ the plane: $- 5 (x - 2) - 5 (y + 1) - 5 (z + 1) = 0$

$\Rightarrow x + y + z = 0$

七

$\Rightarrow$ let $P (1, 0, - 2), Q (2, - 1, 3) \Rightarrow \vec{P Q} = (1, - 1, 5), \vec{r_{0}} = \vec{i} - 2 \vec{k}$

the direction of $\vec{v} (0)$ is $\frac{\vec{P Q}}{| \vec{P Q} |} = \frac{1}{\sqrt{27}} (1, - 1, 5) = \frac{1}{3 \sqrt{3}} (1, - 1, 5)$

So $\vec{v} (0) = | \vec{v} (0) | \cdot \frac{\vec{P Q}}{| \vec{P Q} |} = 3 \cdot \frac{1}{3 \sqrt{3}} (1, - 1, 5) = \frac{\sqrt{3}}{3} (1, - 1, 5)$

\begin{aligned} \vec{a} (t) & = \vec{i} + 2 \vec{j} + \vec{k} \\ \Rightarrow \vec{v} (t) & = \int (\vec{i} + 2 \vec{j} + \vec{k}) d t = t \vec{i} + 2 t \vec{j} + t \vec{k} + \vec{c} \\ \vec{v} (0) & = \frac{\sqrt{3}}{3} \vec{i} - \frac{\sqrt{3}}{3} \vec{j} + \frac{5 \sqrt{3}}{3} \vec{k} \\ \Rightarrow \vec{c} & = \frac{\sqrt{3}}{3} \vec{i} - \frac{\sqrt{3}}{3} \vec{j} + \frac{5 \sqrt{3}}{3} \vec{k} \\ \Rightarrow \vec{v} (t) & = (t + \frac{\sqrt{3}}{3}) \vec{i} + (2 t - \frac{\sqrt{3}}{3}) \vec{j} + (t + \frac{5 \sqrt{3}}{3}) \vec{k} \\ \vec{r} (t) & = \int [(t + \frac{\sqrt{3}}{3}) \vec{i} + (2 t - \frac{\sqrt{3}}{3}) \vec{j} + (t + \frac{5 \sqrt{3}}{3}) \vec{k}] d t \\ = (\frac{1}{2} t^{2} + \frac{\sqrt{3}}{3} t) \vec{i} + (t^{2} - \frac{\sqrt{3}}{3} t) \vec{j} + (\frac{1}{2} t^{2} + \frac{5 \sqrt{3}}{3} t) \vec{k} + \vec{c} \\ \vec{r} (0) & = \vec{i} - 2 \vec{k} \Rightarrow \vec{c} = \vec{r} (0) = \vec{i} - 2 \vec{k} \\ \vec{r} (t) & = (\frac{1}{2} t^{2} + \frac{\sqrt{3}}{3} t + 1) \vec{i} + (t^{2} - \frac{\sqrt{3}}{3} t) \vec{j} + (\frac{1}{2} t^{2} + \frac{5 \sqrt{3}}{3} t - 2) \vec{k} \end{aligned}

八

$\Rightarrow lim_{(x, y) \to (0, 0)} f (x, y) = lim_{(x, y) \to (0, 0)} \frac{\sin (x^{3} + y^{2})}{x^{2} + y^{2}} = lim_{(x, y) \to (0, 0)} \frac{\sin (x^{3} + y^{2})}{x^{3} + y^{2}} \cdot \frac{x^{3} + y^{2}}{x^{2} + y^{2}} = lim_{(x, y) \to (0, 0)} \frac{x^{3} + y^{2}}{x^{2} + y^{2}}$

Using polar coordinates: $x = r \cos θ, y = r \sin θ$ :

$= lim_{r \to 0} \frac{r^{3} \cos^{3} θ + r^{2} \sin^{2} θ}{r^{2}} = lim_{r \to 0} r (\cos^{3} θ + \sin^{3} θ) = 0$

$0 \leq | \frac{x^{3} + y^{2}}{x^{2} + y^{2}} | = | \frac{x \cdot x^{2}}{x^{2} + y^{2}} + \frac{y^{2}}{x^{2} + y^{2}} | = | x \times \frac{x^{2}}{x^{2} + y^{2}} + y \times \frac{y^{2}}{x^{2} + y^{2}} | \leq | x | + | y |$

$lim_{(x, y) \to (0, 0)} (| x | + | y |) = 0$

$\Rightarrow lim_{(x, y) \to (0, 0)} (| \frac{x^{3} + y^{3}}{x^{2} + y^{2}} |) = 0$

$\Rightarrow lim_{(x, y) \to (0, 0)} (\frac{x^{3} + y^{3}}{x^{2} + y^{2}}) = 0$

$\Rightarrow lim_{(x, y) \to (0, 0)} f (x, y) = 0 = f (0, 0)$

$f (x, y)$ is continuous at $(0, 0)$

九

$\Rightarrow \frac{\partial z}{\partial x} = f^{'} (e^{x} y) \cdot e^{x} y, \frac{\partial z}{\partial y} = f^{'} (e^{x} y) e^{x}$

$\Rightarrow \frac{\partial z}{\partial x} + y \frac{\partial z}{\partial y} = 2 f^{'} (e^{x} y) e^{x} y = 1$

Let $u = e^{x} y$

$\Rightarrow 2 f^{'} (u) u = 1 \Rightarrow \frac{d f}{d u} = \frac{1}{2 u} \Rightarrow f (u) = \frac{1}{2} \ln (u) + c$

$f (1) = 0 \Rightarrow \frac{1}{2} \ln 1 + c = 0 \Rightarrow c = 0$

$\Rightarrow f (u) = \frac{1}{2} \ln | u |$

十

\begin{aligned} \Rightarrow f^{'} (x) & = \frac{1 + \frac{x}{\sqrt{x^{2} + 1}}}{x + \sqrt{x^{2} + 1}} = \frac{\frac{\sqrt{x^{2} + 1} + x}{\sqrt{x^{2} + 1}}}{x + \sqrt{x^{2} + 1}} = \frac{1}{\sqrt{x^{2} + 1}} = (1 + x^{2})^{- \frac{1}{2}} \\ = 1 + \sum_{k = 1}^{\infty} (\binom{- \frac{1}{2}}{k}) x^{2 k}, - 1 < x < 1 \\ \Rightarrow f (x) & = x + \sum_{k = 1}^{\infty} \frac{1}{2 k + 1} (\binom{- \frac{1}{2}}{k}) x^{2 k + 1}, - 1 < x < 1 \end{aligned}

MA127-2019春 期中考试答案 ​

一、判断题 ​

1-1 ​

1-2 ​

1-3 ​

1-4 ​

1-5 ​

二、多选题 ​

2-1 ​

2-2 ​

2-3 ​

三 ​

3-1 ​

3-2 ​

3-3 ​

四 ​

4-1 ​

4-2 ​

五 ​

5-1 ​

5-2 ​

六 ​

七 ​

八 ​

九 ​

十 ​

MA127-2019春期中考试答案

一、判断题

1-1

1-2

1-3

1-4

1-5

二、多选题

2-1

2-2

2-3

三

3-1

3-2

3-3

四

4-1

4-2

五

5-1

5-2

六

七

八

九

十