本卷大多著重在微積分下學期的範圍,也就是數列、多變數函數與向量微積分,尤其向量微積分是大多學校較少著墨的部分,想準備轉學考的同學若能將這個章節掌握,自然可以輕鬆贏過其他對手。
本解答由張旭老師及南享老師共同完成。
建議使用電腦瀏覽,手機或平板的算式可能會超出畫面。
第一題 (10 分)
Evaluate
〔1〕$\mathop {\lim }\limits_{n \to \infty } \frac{n}{{n + 1}}$ (5 分)
〔2〕$\mathop {\lim }\limits_{x \to 0} e^{ – \frac{1}{{x^2 }}} (\frac{1}{{x^5 }} – \frac{3}{{x^3 }})$ (5 分)
提示
第一題為基本題。第二題看起來複雜,但能整理成幾個極限存在的函數相乘,這時就可以運用連續函數的極限運算定理。
解答
〔1〕
$\mathop {\lim }\limits_{n \to \infty } \frac{n}{{n + 1}} = \mathop {\lim }\limits_{n \to \infty } \frac{1}{{1 + \frac{1}{n}}} = 1 ∎$
〔2〕
$\begin{array}{cl} \mathop {\lim }\limits_{x \to 0} e^{ – \frac{1}{{x^2 }}} \cdot \frac{{1 – 3x^2 }}{{x^5 }} & =\mathop {\lim }\limits_{x \to 0} \frac{{e^{ – \frac{1}{{x^2 }}} }}{{x^5 }}(1 – 3x^2 ) \\ & =\mathop {\lim }\limits_{x \to 0} \frac{{e^{ – \frac{1}{{x^2 }}} }}{{x^6 }}(x – 3x^3 ) \end{array}$
Let $t=\frac{1}{x^2}$
$\because\ \mathop {\lim }\limits_{x \to 0} \frac{{e^{ – \frac{1}{{x^2 }}} }}{{x^6 }} = \mathop {\lim }\limits_{t \to \infty } t^3 e^{ – t} = \mathop {\lim }\limits_{t \to \infty } \frac{{t^3 }}{{e^t }} = 0$
$\therefore\ $ 所求$=\left[ {\mathop {\lim }\limits_{x \to 0} \frac{{e^{ – \frac{1}{{x^2 }}} }}{{x^6 }}} \right] \cdot \left[ {\mathop {\lim }\limits_{x \to 0} (x – 3x^3 )} \right] = 0 \cdot 0 ∎$
此題考點:老大比較法(上)、極限運算定理(合成篇)
第二題 (10 分)
Find the point on the curve $y=x^{\frac{3}{2}}$ that is closed to the point $(\frac{5}{2},0)$.
提示
單變數函數求極值使用微分即可。記得要看清楚題目是要問最短距離、發生的點或是其他的要求,才不會做白工。
解答
令 $d$ 為點 $(\frac{5}{2},0)$ 至曲線 $y=x^{\frac{3}{2}}$ 的距離
$\Rightarrow d=\sqrt{(t – \frac{5}{2})^2 + t^3}$
Let $f(t) = (t – \frac{5}{2})^2 + t^3$
$\Rightarrow f'(t) = 2(t – \frac{5}{2}) + 3t^2 \mathop = \limits^{{\text{Let}}} 0$
$\Rightarrow 2t – 5 + 3t^2 = 0 \Rightarrow (3t + 5)(t – 1) = 0$
$t=-\frac{5}{3}$(不合) or $t=1$
當 $t=1$ 時得 minimum $\Rightarrow\ $所求$=(1,1) ∎$
此題考點:微分求極值
第三題 (10 分)
Find the length of the parametric curve $x=3t^2,\ y=2t^3,\ 0\leq t\leq 1$.
提示
此題是計算曲線段長的基本題,若公式很容易忘記,可以從計算小線段長的原理多推幾次。
解答
$\begin{array}{cl} \ell & =\int_0^1 {\sqrt {(6t)^2 + (6t^2 )^2 } } dt \\ & =\int_0^1 {\sqrt {36t^2 + 36t^4 } } dt \\ & =\int_0^1 {6t\sqrt {1 + t^2 } } dt\\&(\text{Let }u=1+t^2\Rightarrow du=2tdt)\\&=\int_0^1 {\sqrt u \cdot 3} du\\&=3 \cdot \left. {\frac{{u^{\frac{3}{2}} }}{{\frac{3}{2}}}} \right|_{u = 1}^{u = 2}\\&=2(2^{\frac{3}{2}} – 1) = 4\sqrt 2 – 2 ∎ \end{array}$
此題考點:曲線分析(上)
第四題 (10 分)
Determine whether the improper integral $\int_1^\infty {\frac{{1 – \cos x}}{{x^2 }}} dx$ is convergent or divergent ?
提示
歛散性為必考題,八大審斂法一定要熟悉。對象不好判斷時,可以試著找有關的已知歛散性函數來比較。
解答
Note that $0 \le \int_1^\infty {\frac{{1 – \cos x}}{{x^2 }}} dx \le \int_1^\infty {\frac{2}{{x^2 }}} dx$
Check $\int_1^\infty {\frac{2}{{x^2 }}dx}$ is convergent.
$\because\ \sum\limits_{n = 1}^\infty {\frac{2}{{n^2 }}}$ (by $p$-series)
$\therefore\ \int_1^\infty {\frac{2}{{x^2 }}} dx$ converges (by integral test).
$\Rightarrow \int_1^\infty {\frac{{1 – \cos x}}{{x^2 }}} dx$ converges (by comparison test). $ ∎$
第五題 (10 分)
Find the radius of convergence of the power series $\sum\limits_{n = 1}^\infty {n^2 x^n }$ and evaluate $\sum\limits_{n = 1}^\infty {\frac{{n^2 }}{{2^n }}}$.
提示
要求收斂區間,即帶公式找收斂半徑。級數和看到分子(平方)成等差、分母成等比的時候就是使用錯位求和法的時機。
解答
radius$=\frac{{\rm{1}}}{{\mathop {\lim }\limits_{n \to \infty } \left| {\frac{{(n + 1)^2 }}{{n^2 }}} \right|}}{\rm{ = }}\frac{1}{1} = 1 ∎$
Let $S = \sum\limits_{n = 1}^\infty {\frac{{n^2 }}{{2^n }}}$
$S = \frac{{1^2 }}{{2^1 }} + \frac{{2^2 }}{{2^2 }} + \frac{{3^2 }}{{2^3 }} + \frac{{4^2 }}{{2^4 }} + \cdots$
$\frac{1}{2}S=\frac{{1^2 }}{{2^2 }} + \frac{{2^2 }}{{2^3 }} + \frac{{3^2 }}{{2^4 }} + \cdots$
$S-\frac{1}{2}S=\frac{1}{2}S=\frac{1}{2} + \frac{3}{{2^2 }} + \frac{5}{{2^3 }} + \frac{7}{{2^4 }} + \cdots$
$\Rightarrow \frac{1}{4}S=\frac{1}{{2^2 }} + \frac{3}{{2^3 }} + \frac{5}{{2^4 }} + \cdots$
$\frac{1}{2}S-\frac{1}{4}S=\frac{1}{4}S=\frac{1}{2} + \frac{2}{{2^2 }} + \frac{2}{{2^3 }} + \frac{2}{{2^4 }} + \cdots$
$\Rightarrow \frac{1}{4}S = \frac{1}{2} + \frac{{\frac{1}{2}}}{{1 – \frac{1}{2}}} = \frac{3}{2}$
$\Rightarrow S = \sum\limits_{n = 1}^\infty {\frac{{n^2 }}{{2^n }}} = \frac{3}{2} \times 4 = 6 ∎$
第六題 (10 分)
Find the equation of the tangent plane and the normal line to the surface $S:x^2 y + e^{xyz} – 2\cos (xz) = 0$ at $(1,1,0)$.
提示
不論求切平面或法線都需要算梯度,之後配合題目所給的點 $(1,1,0)$ 即可。
解答
Let $f(x,y,z){\rm{ = }}x^2 y + e^{xyz} – 2\cos (xz)$
$\nabla f(x,y,z) = (2xy + yze^{xyz} + 2z\sin (xz),x^2 + xze^{xyz} ,xye^{xyz} + 2x\sin (xz))$
$\Rightarrow \overset{\rightharpoonup}{n}= \nabla f(1,1,0) = (2,1,1)$
tangent plane: $2x+y+z=3$
normal line: $\left\{ \begin{array}{l}x=1+2t\\ y=1+t \\ z=t \end{array}\right. ,\ t\in \mathbb{R} ∎$
此題考點:曲面分析與面積分
第七題 (10 分)
Let $f:\mathbb{R}^2\to\mathbb{R}$ be a function. Assume that all second partial derivative of $f$ exist and continuous and $f_{xx}+f_{yy}=0$, for all $(x,y)\in\mathbb{R}^2$.
Define $g:\ \mathbb{R}^2\to\mathbb{R}$ by $g(u,v) = f(u^2 – v^2 ,2uv)$. Find $g_{uu}+g_{vv}$.
提示
本題要求合成函數的偏微分,掌握連鎖律即可,如有需要可以畫出變數之間的樹狀圖。
解答
$\left\{ \begin{array}{l} x = u^2 – v^2 \\ y = 2uv \end{array} \right. \Rightarrow \left\{ \begin{array}{cc} x_u = 2u, & x_v = – 2v \\ y_u = 2v, & y_v = 2u \end{array} \right.$
$g_u = f_x \cdot x_u + f_y \cdot y_u = f_x \cdot (2u) + f_y \cdot (2v)$
$\begin{array}{rl} \Rightarrow g_{uu}= & (f_{xx} \cdot x_u + f_{xy} \cdot y_u ) \cdot (2u) + f_x \cdot (2)\\& + (f_{yx} \cdot x_u + f_{yy} \cdot y_u ) \cdot (2v) + f_y \cdot (0) \\ =&f_{xx} \cdot (4u^2 ) + f_{xy} \cdot (4uv) + 2f_x + f_{yx} \cdot (4uv) + f_{yy} \cdot (4v^2 ) \end{array}$
$g_v = f_x \cdot x_v + f_y \cdot y_v = f_x \cdot ( – 2v) + f_y \cdot (2u)$
$\begin{array}{rl} \Rightarrow g_{vv} = & (f_{xx} \cdot x_v + f_{xy} \cdot y_v ) \cdot ( – 2v) + f_x \cdot ( – 2) \\ & +(f_{yx} \cdot x_v + f_{yy} \cdot y_v ) \cdot (2u) + f_y \cdot (0) \\ =& f_{xx} \cdot (4v^2 ) + f_{xy} \cdot ( – 4uv) + f_x \cdot ( – 2) + f_{yx} \cdot ( – 4uv) + f_{yy} \cdot (4u^2 ) \end{array}$
$\begin{array}{cl} \Rightarrow g_{uu} + g_{vv} & =f_{xx} \cdot (4u^2 + 4v^2 ) + f_{yy} \cdot (4u^2 + 4v^2 ) \\ & =(4u^2 + 4v^2 ) \cdot \underbrace {(f_{xx} + f_{yy} )}_0 = 0 ∎ \end{array}$
此題考點:偏微分運算律(上)
第八題 (10 分)
Evaluate the double integral $\iint_{D}\sin (x+y)dA$ where $D$ is the region bounded by $x+y=\pi$, $x+y=0$ and $x-y=\pi$ and $x-y=0$.
提示
本題二重積分的積分區域和被積函數都跟 $x+y$、$x-y$ 有關,因此直接使用變數變換,而多變數的變數變換記得要乘上 $\left| J\right|$。
解答
Let $\left\{ {\begin{array}{l} {u = x + y} \\ {v = x – y}\end{array} \Rightarrow \frac{{dudv}}{{dxdy}} = \left| {\begin{array}{c} 1 & 1 \\ 1 & – 1 \end{array}} \right| = – 2} \right.$
$\begin{array}{cl} \iint_{D}\sin (x+y)dxdy & =\iint_{D’}\sin u \cdot \underbrace {\left| {\frac{{dxdy}}{{dudv}}} \right|}_{\frac{1}{2}}dudv \\ & =\frac{1}{2}\int_0^\pi {\int_0^\pi {\sin u} } dudv \\ & =\frac{1}{2}\int_0^\pi {\left. { – \cos u} \right|_{u = 0}^{u = \pi } } dv\\&=\frac{1}{2}\int_0^\pi {1 – ( – 1)} dv = \pi ∎ \end{array}$
此題考點:二重積分座標變換
第九題 (10 分)
Evaluate the triple integral $\iiint_E\sqrt{x^2+y^2}dV$ where $E$ is the solid region in $\mathbb{R}^3$ bounded by the surface $z=1$ and $z=x^2+y^2$.
提示
此題要算三重積分,積分區域為平面與曲面夾出來的空間,由於被積函數和 $x^2+y^2$ 有關,因此使用柱座標變換。
解答
$\begin{array}{cl} \iiint_E\sqrt{x^2+y^2}dV & =\int_0^1 {\int_0^{2\pi } {\int_0^{\sqrt z } {\sqrt {z^2 } r} dr} d\theta } dz \\ & =\int_0^1 {\int_0^{2\pi } {\int_0^z {\sqrt u } \cdot \frac{{du}}{2}} d\theta } dz \\ & =\frac{1}{2}\int_0^1 {\int_0^{2\pi } {\left. {\frac{{u^{\frac{3}{2}} }}{{\frac{3}{2}}}} \right|_{u = 0}^{u = z} } d\theta } dz\\&=\frac{1}{3}\int_0^1 {\int_0^{2\pi } {z^{\frac{3}{2}} } d\theta } dz\\&=\frac{1}{3}\int_0^1 {z^{\frac{3}{2}} \cdot 2\pi } dz = \frac{{2\pi }}{3} \cdot \left. {\frac{{z^{\frac{5}{2}} }}{{\frac{5}{2}}}} \right|_{z = 0}^{z = 1} = \frac{{4\pi }}{{15}} ∎ \end{array}$
此題考點:柱座標與球座標
第十題 (10 分)
Evaluate the line integral $\int_C {(ye^x + \sin y)dx} + (e^x + x\cos y)dy$ along the curve $C:\textbf{r}(t) = (t^2 + 1)\textbf{i} + (t^2 – 1)\textbf{j},\ 0\leq t\leq 2$. Hint: you may find a potential function $f$ of the vector field $\textbf{F}(x,y) = (ye^x + \sin y)\textbf{i} + (e^x + x\cos y)\textbf{j}$, i.e. find $f$ so that $\textbf{F}=\nabla f$.
提示
這題計算線積分,是 $\text{P}dx + \text{Q}dy$ 的類型,可能使用 Green 定理或是用定義。 但路徑非封閉曲線,不滿足 Green 定理的條件;用定義來做也很複雜,所以題目提示位勢函數,找位勢函數有固定的方法,逐個偏微分把函數各個部份給找出來,找出 $f$ 之後把終點跟起點代入再相減即可。
解答
$\because\ \textbf{F}=\nabla f=(f_x,f_y)$
$\therefore\ \left\{ \begin{array}{l} f_x = ye^x + \sin y \Rightarrow f = ye^x + x\sin y + \rho (y) \Rightarrow f_y = e^x + x\cos y + \rho'(y) \\ f_y = e^x + x\cos y \end{array} \right.$
$\Rightarrow \rho'(y)=0$
$\Rightarrow \rho (y) = C \Rightarrow f = ye^x + x\sin y + C$
$\begin{array}{cl} \int_C\textbf{F}d\textbf{r} & =f(5,3)-f(1,-1) \\ & =(3e^5 + 5\sin 3) – ( – 1 \cdot e^1 + 1 \cdot \sin ( – 1)) \\ & =5\sin 3 + \sin 1 + 3e^5 + e ∎\end{array}$
此題考點:線積分
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