amcdrill | AMC8 AMC10 AMC12 Practice

Q1

You and five friends need to raise $1500 in donations for a charity, dividing the fundraising equally. How many dollars will each of you need to raise?

你和五个朋友需要为慈善机构筹集1500美元的捐款，平均分摊筹款。每人需要筹集多少美元？

(A) 250 250 (B) 300 300 (C) 1500 1500 (D) 7500 7500 (E) 9000 9000

Correct Answer: A

Six people are fundraising, so each must raise $1500/6 = $250.

六个人筹款，所以每人必须筹集$1500/6 = $250。

Q2

For any three real numbers $a$, $b$, and $c$, with $b \neq c$, the operation $\circledcirc$ is defined by $$\circledcirc(a, b, c) = \frac{a}{b - c}.$$ What is $\circledcirc (\circledcirc(1, 2, 3), \circledcirc(2, 3, 1), \circledcirc(3, 1, 2))$?

对于任意三个实数$a$、$b$和$c$，其中$b \neq c$，操作$\circledcirc$定义为$$\circledcirc(a, b, c) = \frac{a}{b - c}。$$什么是$\circledcirc (\circledcirc(1, 2, 3), \circledcirc(2, 3, 1), \circledcirc(3, 1, 2))$？

(A) -1/2 -$\frac{1}{2}$ (B) -1/4 -$\frac{1}{4}$ (C) 0 0 (D) 1/4 $\frac{1}{4}$ (E) 1/2 $\frac{1}{2}$

Correct Answer: B

(B) Because $\mathbb{T}(1,2,3)=\dfrac{1}{2-3}=-1,\quad \mathbb{T}(2,3,1)=\dfrac{2}{3-1}=1,\quad \text{and}$ $\mathbb{T}(3,1,2)=\dfrac{3}{1-2}=-3,$ we have $\mathbb{T}\big(\mathbb{T}(1,2,3),\mathbb{T}(2,3,1),\mathbb{T}(3,1,2)\big)=\mathbb{T}(-1,1,-3)$ $=\dfrac{-1}{1-(-3)}=-\dfrac{1}{4}.$

（B）因为 $\mathbb{T}(1,2,3)=\dfrac{1}{2-3}=-1,\quad \mathbb{T}(2,3,1)=\dfrac{2}{3-1}=1,\quad \text{并且}$ $\mathbb{T}(3,1,2)=\dfrac{3}{1-2}=-3,$ 我们有 $\mathbb{T}\big(\mathbb{T}(1,2,3),\mathbb{T}(2,3,1),\mathbb{T}(3,1,2)\big)=\mathbb{T}(-1,1,-3)$ $=\dfrac{-1}{1-(-3)}=-\dfrac{1}{4}.$

Q3

Alicia earns $20 per hour, of which 1.45% is deducted to pay local taxes. How many cents per hour of Alicia’s wages are used to pay local taxes?

Alicia每小时赚20美元，其中1.45%被扣除用于支付地方税。Alicia每小时的工资有多少美分用于支付地方税？

(A) 0.0029 0.0029 (B) 0.029 0.029 (C) 0.29 0.29 (D) 2.9 2.9 (E) 29 29

Correct Answer: E

Since \$20 is 2000 cents, she pays $(0.0145)(2000) = 29$ cents per hour in local taxes.

因为20美元是2000美分，她支付$(0.0145)(2000) = 29$美分每小时的地方税。

Q4

What is the value of $x$ if $|x-1| = |x-2|$?

如果$|x-1| = |x-2|$，$x$的值是多少？

(A) -1/2 -$\frac{1}{2}$ (B) 1/2 $\frac{1}{2}$ (C) 1 1 (D) 3/2 $\frac{3}{2}$ (E) 2 2

Correct Answer: D

(D) The equation implies that either $x-1=x-2$ or $x-1=-(x-2)$ The first equation has no solution, and the solution to the second equation is $x=\dfrac{3}{2}$.

（D）该方程意味着要么 $x-1=x-2$，要么 $x-1=-(x-2)$ 第一个方程无解，第二个方程的解为 $x=\dfrac{3}{2}$。

Q5

A set of three points is chosen randomly from the grid shown. Each three-point set has the same probability of being chosen. What is the probability that the points lie on the same straight line?

从所示网格中随机选择三个点。每个三点集被选择的概率相同。点位于同一条直线上的概率是多少？

(A) 1/21 $\frac{1}{21}$ (B) 1/14 $\frac{1}{14}$ (C) 2/21 $\frac{2}{21}$ (D) 1/7 $\frac{1}{7}$ (E) 2/7 $\frac{2}{7}$

Correct Answer: C

(C) The number of three-point sets that can be chosen from the nine grid points is \[ \binom{9}{3}=\frac{9!}{3!\cdot 6!}=84. \] Eight of these sets consist of three collinear points: 3 sets of points lie on vertical lines, 3 on horizontal lines, and 2 on diagonals. Hence the probability is $8/84=2/21$.

（C）从九个网格点中选取三个点的组合数为 \[ \binom{9}{3}=\frac{9!}{3!\cdot 6!}=84。 \] 其中有 8 组由三点共线组成：有 3 组在竖直线上，3 组在水平线上，2 组在对角线上。因此概率为 $8/84=2/21$。

Q6

Bertha has 6 daughters and no sons. Some of her daughters have 6 daughters, and the rest have none. Bertha has a total of 30 daughters and granddaughters, and no great-granddaughters. How many of Bertha’s daughters and granddaughters have no daughters?

Bertha 有 6 个女儿，没有儿子。她的一些女儿有 6 个女儿，其余的没有。Bertha 总共有 30 个女儿和孙女，没有曾孙女。Bertha 的女儿和孙女中，有多少人没有女儿？

(A) 22 22 (B) 23 23 (C) 24 24 (D) 25 25 (E) 26 26

Correct Answer: E

Bertha has $30-6=24$ granddaughters, none of whom have any daughters. The granddaughters are the children of $24/6=4$ of Bertha’s daughters, so the number of women having no daughters is $30-4=26$.

Bertha 有 $30-6=24$ 个孙女，这些孙女都没有女儿。孙女们是 Bertha 6 个女儿中 $24/6=4$ 个的子女，因此没有女儿的人数是 $30-4=26$。

Q7

A grocer stacks oranges in a pyramid-like stack whose rectangular base is 5 oranges by 8 oranges. Each orange above the first level rests in a pocket formed by four oranges in the level below. The stack is completed by a single row of oranges. How many oranges are in the stack?

一个杂货商将橙子堆成金字塔状堆，矩形底面是 5 排橙子乘 8 排橙子。每层以上的橙子都搁在下面一层四个橙子形成的凹槽中。堆栈由一行橙子完成。堆栈中共有多少个橙子？

(A) 96 96 (B) 98 98 (C) 100 100 (D) 101 101 (E) 134 134

Correct Answer: C

There are five layers in the stack, and each of the top four layers has one less orange in its length and width than the layer on which it rests. Hence the total number of oranges in the stack is $5 \cdot 8 + 4 \cdot 7 + 3 \cdot 6 + 2 \cdot 5 + 1 \cdot 4 = 100$.

堆栈有五层，前四层每层的长宽比下面的层各少一个橙子。因此堆栈中橙子的总数是 $5 \cdot 8 + 4 \cdot 7 + 3 \cdot 6 + 2 \cdot 5 + 1 \cdot 4 = 100$。

Q8

A game is played with tokens according to the following rule. In each round, the player with the most tokens gives one token to each of the other players and also places one token into a discard pile. The game ends when some player runs out of tokens. Players A, B, and C start with 15, 14, and 13 tokens, respectively. How many rounds will there be in the game?

一个游戏使用筹码，按照以下规则进行。每轮中，筹码最多的玩家给每个其他玩家一个筹码，并将一个筹码放入弃牌堆。游戏在某个玩家筹码用尽时结束。玩家 A、B 和 C 分别起始有 15、14 和 13 个筹码。游戏将进行多少轮？

(A) 36 36 (B) 37 37 (C) 38 38 (D) 39 39 (E) 40 40

Correct Answer: B

After three rounds the players A, B, and C have 14, 13, and 12 tokens, respectively. Every subsequent three rounds of play reduces each player’s supply of tokens by one. After 36 rounds they have 3, 2, and 1 token, respectively, and after the 37th round Player A has no tokens.

三轮后，玩家 A、B 和 C 分别有 14、13 和 12 个筹码。此后每三轮，每个玩家的筹码数减少一个。经过 36 轮后，他们分别有 3、2 和 1 个筹码，第 37 轮后玩家 A 没有筹码了。

Q9

In the figure, $\angle EAB$ and $\angle ABC$ are right angles, $AB = 4$, $BC = 6$, $AE = 8$, and $AC$ and $BE$ intersect at $D$. What is the difference between the areas of $\triangle ADE$ and $\triangle BDC$?

在图中，$\angle EAB$ 和 $\angle ABC$ 是直角，$AB = 4$，$BC = 6$，$AE = 8$，且 $AC$ 和 $BE$ 相交于 $D$。$\triangle ADE$ 和 $\triangle BDC$ 的面积差是多少？

(A) 2 2 (B) 4 4 (C) 5 5 (D) 8 8 (E) 9 9

Correct Answer: B

Let $x$, $y$, and $z$ be the areas of $\triangle ADE$, $\triangle BDC$, and $\triangle ABD$, respectively. The area of $\triangle ABE$ is $\frac{1}{2}(4)(8) = 16 = x + z$, and the area of $\triangle BAC$ is $\frac{1}{2}(4)(6) = 12 = y + z$. The requested difference is $x - y = (x + z) - (y + z) = 16 - 12 = 4$.

设 $x$、$y$ 和 $z$ 分别为 $\triangle ADE$、$\triangle BDC$ 和 $\triangle ABD$ 的面积。$\triangle ABE$ 的面积是 $\frac{1}{2}(4)(8) = 16 = x + z$，$\triangle BAC$ 的面积是 $\frac{1}{2}(4)(6) = 12 = y + z$。所求差值为 $x - y = (x + z) - (y + z) = 16 - 12 = 4$。

Q10

Coin A is flipped three times and coin B is flipped four times. What is the probability that the number of heads obtained from flipping the two fair coins is the same?

硬币 A 抛三次，硬币 B 抛四次。抛两个公平硬币得到的正面次数相同的概率是多少？

(A) 19/128 $\frac{19}{128}$ (B) 23/128 $\frac{23}{128}$ (C) 1/4 $\frac{1}{4}$ (D) 35/128 $\frac{35}{128}$ (E) 1/2 $\frac{1}{2}$

Correct Answer: D

(D) The result will occur when both $A$ and $B$ have either 0, 1, 2, or 3 heads, and these probabilities are shown in the table. \[ \begin{array}{c|cccc} \text{Heads} & 0 & 1 & 2 & 3\\ \hline A & \frac{1}{8} & \frac{3}{8} & \frac{3}{8} & \frac{1}{8}\\ \hline B & \frac{1}{16} & \frac{4}{16} & \frac{6}{16} & \frac{4}{16} \end{array} \] The probability of both coins having the same number of heads is \[ \frac{1}{8}\cdot\frac{1}{16}+\frac{3}{8}\cdot\frac{4}{16}+\frac{3}{8}\cdot\frac{6}{16}+\frac{1}{8}\cdot\frac{4}{16}=\frac{35}{128}. \]

（D）当 $A$ 和 $B$ 都出现 0、1、2 或 3 个正面时，该结果会发生，这些概率如下表所示。 \[ \begin{array}{c|cccc} \text{正面数} & 0 & 1 & 2 & 3\\ \hline A & \frac{1}{8} & \frac{3}{8} & \frac{3}{8} & \frac{1}{8}\\ \hline B & \frac{1}{16} & \frac{4}{16} & \frac{6}{16} & \frac{4}{16} \end{array} \] 两枚硬币出现相同正面数的概率为 \[ \frac{1}{8}\cdot\frac{1}{16}+\frac{3}{8}\cdot\frac{4}{16}+\frac{3}{8}\cdot\frac{6}{16}+\frac{1}{8}\cdot\frac{4}{16}=\frac{35}{128}. \]

Q11

A company sells peanut butter in cylindrical jars. Marketing research suggests that using wider jars will increase sales. If the diameter of the jars is increased by 25% without altering the volume, by what percent must the height be decreased?

一家公司用圆柱形罐子出售花生酱。市场研究表明，使用更宽的罐子会增加销量。如果罐子的直径增加25%，体积不变，则高度必须减少百分之多少？

(A) 10 10 (B) 25 25 (C) 36 36 (D) 50 50 (E) 60 60

Correct Answer: C

(C) Let $r$, $h$, and $V$, respectively, be the radius, height, and volume of the jar that is currently being used. The new jar will have a radius of $1.25r$ and volume $V$. Let $H$ be the height of the new jar. Then $\pi r^2 h = V = \pi(1.25r)^2H$, so $\dfrac{H}{h}=\dfrac{1}{(1.25)^2}=0.64.$ Thus $H$ is $64\%$ of $h$, so the height must be reduced by $(100-64)\%=36\%$. OR Multiplying the diameter by $5/4$ multiplies the area of the base by $(5/4)^2=25/16$, so in order to keep the same volume, the height must be multiplied by $16/25$. Thus the height must be decreased by $9/25$, or $36\%$.

（C）设当前使用的罐子的半径、高度和体积分别为 $r$、$h$ 和 $V$。新罐子的半径为 $1.25r$，体积仍为 $V$。设新罐子的高度为 $H$。则 $\pi r^2 h = V = \pi(1.25r)^2H$，所以 $\dfrac{H}{h}=\dfrac{1}{(1.25)^2}=0.64.$ 因此 $H$ 是 $h$ 的 $64\%$，所以高度必须减少 $(100-64)\%=36\%$。或者直径乘以 $5/4$ 会使底面积乘以 $(5/4)^2=25/16$，为了保持体积不变，高度必须乘以 $16/25$。因此高度必须减少 $9/25$，即 $36\%$。

Q12

Henry’s Hamburger Heaven offers its hamburgers with the following condiments: ketchup, mustard, mayonnaise, tomato, lettuce, pickles, cheese, and onions. A customer can choose one, two, or three meat patties, and any collection of condiments. How many different kinds of hamburgers can be ordered?

Henry的汉堡天堂提供汉堡时有以下调味品：番茄酱、芥末、美乃滋、西红柿、生菜、泡菜、奶酪和洋葱。顾客可以选择一个、两个或三个肉饼，以及任意组合的调味品。有多少种不同的汉堡可以点？

(A) 24 24 (B) 256 256 (C) 768 768 (D) 40320 40320 (E) 120960 120960

Correct Answer: C

A customer makes one of two choices for each condiment, to include it or not to include it. The choices are made independently, so there are $2^8 = 256$ possible combinations of condiments. For each of those combinations there are three choices regarding the number of meat patties, so there are altogether $(3)(256) = 768$ different kinds of hamburger.

顾客对每个调味品有两个选择，包括或不包括。选择是独立的，因此有$2^8=256$种可能的调味品组合。对于每种组合，有三种肉饼数量选择，因此总共有$(3)(256)=768$种不同的汉堡。

Q13

At a party, each man danced with exactly three women and each woman danced with exactly two men. Twelve men attended the party. How many women attended the party?

在一次派对上，每个男人与恰好三个女人跳舞，每个女人与恰好两个男人跳舞。有12个男人参加派对。有多少女人参加派对？

(A) 8 8 (B) 12 12 (C) 16 16 (D) 18 18 (E) 24 24

Correct Answer: D

Because each man danced with exactly three women, there were $(12)(3) = 36$ pairs of men and women who danced together. Each woman had two partners, so the number of women who attended is $36/2 = 18$.

因为每个男人与恰好三个女人跳舞，所以有$(12)(3)=36$对男人和女人的舞伴对。每个女人有两个舞伴，因此参加的女人数量是$36/2=18$。

Q14

The average value of all the pennies, nickels, dimes, and quarters in Paula’s purse is 20 cents. If she had one more quarter, the average value would be 21 cents. How many dimes does she have in her purse?

Paula钱包里所有一分币、五分币、十分币和二十五分币的平均价值是20美分。如果她再多一枚二十五分币，平均价值将变为21美分。她钱包里有多少十分币？

(A) 0 0 (B) 1 1 (C) 2 2 (D) 3 3 (E) 4 4

Correct Answer: A

If $n$ is the number of coins in Paula’s purse, then their total value is $20n$ cents. If she had one more quarter, she would have $n+1$ coins whose total value in cents could be expressed both as $20n + 25$ and as $21(n + 1)$. Therefore $20n + 25 = 21(n + 1)$, so $n = 4$. Since Paula has four coins with a total value of 80 cents, she must have three quarters and one nickel, so the number of dimes is 0.

如果$n$是Paula钱包里的硬币数量，那么它们的总价值是$20n$美分。如果她再多一枚二十五分币，她将有$n+1$枚硬币，总价值（美分）既可表示为$20n+25$，也可表示为$21(n+1)$。因此$20n+25=21(n+1)$，所以$n=4$。由于Paula有四枚硬币，总价值80美分，她一定有三枚二十五分币和一枚五分币，因此十分币的数量是0。

Q15

Given that $-4 \leq x \leq -2$ and $2 \leq y \leq 4$, what is the largest possible value of $\frac{x + y}{x}$?

已知$-4\leq x\leq -2$且$2\leq y\leq 4$，求$\frac{x+y}{x}$的最大可能值？

(A) -1 -1 (B) -1/2 -$\frac{1}{2}$ (C) 0 0 (D) 1/2 $\frac{1}{2}$ (E) 1 1

Correct Answer: D

Because $\frac{x + y}{x} = 1 + \frac{y}{x}$ and $\frac{y}{x} < 0$, the value is maximized when $\left|\frac{y}{x}\right|$ is minimized, that is, when $|y|$ is minimized and $|x|$ is maximized. So $y = 2$ and $x = -4$ gives the largest value, which is $1 + (-1/2) = 1/2$.

因为$\frac{x+y}{x}=1+\frac{y}{x}$且$\frac{y}{x}<0$，该值在$\left|\frac{y}{x}\right|$最小时最大化，即$|y|$最小且$|x|$最大时。所以$y=2$且$x=-4$给出最大值，即$1+(-1/2)=1/2$。

Q16

The $5 \times 5$ grid shown contains a collection of squares with sizes from $1 \times 1$ to $5 \times 5$. How many of these squares contain the black center square?

如图所示的 $5 \times 5$ 网格包含从 $1 \times 1$ 到 $5 \times 5$ 各种大小的正方形。其中有多少个正方形包含黑色中心方块？

(A) 12 12 (B) 15 15 (C) 17 17 (D) 19 19 (E) 20 20

Correct Answer: D

All of the squares of size $5 \times 5$, $4 \times 4$, and $3 \times 3$ contain the black square and there are $1^2 + 2^2 + 3^2 = 14$ of these. In addition, 4 of the $2 \times 2$ squares and 1 of the $1 \times 1$ squares contain the black square, for a total of $14 + 4 + 1 = 19$.

所有大小为 $5 \times 5$、$4 \times 4$ 和 $3 \times 3$ 的正方形都包含黑色方块，这些共有 $1^2 + 2^2 + 3^2 = 14$ 个。此外，4 个 $2 \times 2$ 正方形和 1 个 $1 \times 1$ 正方形包含黑色方块，总共 $14 + 4 + 1 = 19$ 个。

Q17

Brenda and Sally run in opposite directions on a circular track, starting at diametrically opposite points. They first meet after Brenda has run 100 meters. They next meet after Sally has run 150 meters past their first meeting point. Each girl runs at a constant speed. What is the length of the track in meters?

Brenda 和 Sally 在一个圆形跑道上朝相反方向跑步，从直径对称的两个点开始。她们第一次相遇时，Brenda 已跑了 100 米。她们第二次相遇时，Sally 已从第一次相遇点多跑了 150 米。每个女孩都以恒定速度跑步。跑道的长度是多少米？

(A) 250 250 (B) 300 300 (C) 350 350 (D) 400 400 (E) 500 500

Correct Answer: C

When they first meet, they have run a combined distance equal to half the length of the track. Between their first and second meetings, they run a combined distance equal to the full length of the track. Because Brenda runs at a constant speed and runs 100 meters before their first meeting, she runs $2(100) = 200$ meters between their first and second meetings. Therefore the length of the track is $200 + 150 = 350$ meters.

她们第一次相遇时，两人合起来跑的距离等于跑道长度的一半。从第一次到第二次相遇，她们合起来跑的距离等于跑道的完整长度。因为 Brenda 以恒定速度跑步，并在第一次相遇前跑了 100 米，所以从第一次到第二次相遇她跑了 $2(100) = 200$ 米。因此跑道长度为 $200 + 150 = 350$ 米。

Q18

A sequence of three real numbers forms an arithmetic progression with a first term of 9. If 2 is added to the second term and 20 is added to the third term, the three resulting numbers form a geometric progression. What is the smallest possible value for the third term of the geometric progression?

三个实数的等差数列，第一项为 9。如果向第二项加 2，向第三项加 20，则所得三个数形成等比数列。几何数列第三项的最小可能值为多少？

(A) 1 1 (B) 4 4 (C) 36 36 (D) 49 49 (E) 81 81

Correct Answer: A

The terms of the arithmetic progression are 9, $9 + d$, and $9 + 2d$ for some real number $d$. The terms of the geometric progression are 9, $11+d$, and $29+2d$. Therefore $(11 + d)^2 = 9(29 + 2d)$ so $d^2 + 4d -140 = 0$. Thus $d = 10$ or $d = -14$. The corresponding geometric progressions are 9, 21, 49 and 9, −3, 1, so the smallest possible value for the third term of the geometric progression is 1.

等差数列的项为 9、$9 + d$ 和 $9 + 2d$，其中 $d$ 为实数。等比数列的项为 9、$11+d$ 和 $29+2d$。因此 $(11 + d)^2 = 9(29 + 2d)$，即 $d^2 + 4d -140 = 0$。解得 $d = 10$ 或 $d = -14$。对应的等比数列为 9, 21, 49 和 9, −3, 1，因此几何数列第三项的最小可能值为 1。

Q19

A white cylindrical silo has a diameter of 30 feet and a height of 80 feet. A red stripe with a horizontal width of 3 feet is painted on the silo, as shown, making two complete revolutions around it. What is the area of the stripe in square feet?

一个白色圆柱形筒仓直径为 30 英尺，高为 80 英尺。如图所示，筒仓上画有一条水平宽度为 3 英尺的红色条纹，绕筒仓绕了两整圈。条纹的面积是多少平方英尺？

(A) 120 120 (B) 180 180 (C) 240 240 (D) 360 360 (E) 480 480

Correct Answer: C

If the stripe were cut from the silo and spread flat, it would form a parallelogram 3 feet wide and 80 feet high. So the area of the stripe is $3(80) = 240$ square feet.

如果将条纹从筒仓上剪下并展开平铺，它将形成一个宽 3 英尺、高 80 英尺的平行四边形。因此条纹面积为 $3(80) = 240$ 平方英尺。

Q20

Points E and F are located on square ABCD so that $\triangle BEF$ is equilateral. What is the ratio of the area of $\triangle DEF$ to that of $\triangle ABE$?

点 E 和 F 位于正方形 ABCD 上，使得 $\triangle BEF$ 为等边三角形。$\triangle DEF$ 的面积与 $\triangle ABE$ 的面积之比是多少？

(A) 4/3 $\frac{4}{3}$ (B) 3/2 $\frac{3}{2}$ (C) $\sqrt{3}$ $\sqrt{3}$ (D) 2 2 (E) $1 + \sqrt{3}$ $1 + \sqrt{3}$

Correct Answer: D

(D) First, assume that $AB = 1$, and let $ED = DF = x$. By the Pythagorean Theorem $x^2 + x^2 = EF^2 = EB^2 = 1^2 + (1 - x)^2$, so $x^2 = 2(1 - x)$. Hence the desired ratio of the areas is $$ \frac{\mathrm{Area}(\triangle DEF)}{\mathrm{Area}(\triangle ABE)} = \frac{x^2}{1-x} = 2. $$

（D）首先，假设 $AB = 1$，并令 $ED = DF = x$。由勾股定理，$x^2 + x^2 = EF^2 = EB^2 = 1^2 + (1 - x)^2$，因此 $x^2 = 2(1 - x)$。所以所求的面积比为 $$ \frac{\mathrm{Area}(\triangle DEF)}{\mathrm{Area}(\triangle ABE)} = \frac{x^2}{1-x} = 2. $$

Q21

Two distinct lines pass through the center of three concentric circles of radii 3, 2, and 1. The area of the shaded region in the diagram is $8/13$ of the area of the unshaded region. What is the radian measure of the acute angle formed by the two lines? (Note: $\pi$ radians is 180 degrees.)

两条不同的直线穿过三个半径分别为3、2和1的同心圆的圆心。图中阴影区域的面积是不阴影区域面积的$8/13$。这两条直线形成的锐角的弧度量是多少？（注：$\pi$弧度等于180度。）

(A) $\pi/8$ $\pi/8$ (B) $\pi/7$ $\pi/7$ (C) $\pi/6$ $\pi/6$ (D) $\pi/5$ $\pi/5$ (E) $\pi/4$ $\pi/4$

Correct Answer: B

(B) Let $\theta$ be the acute angle between the two lines. The area of shaded Region 1 in the diagram is $$ 2\left(\frac{1}{2}\theta(1)^2\right)=\theta. $$ The area of shaded Region 2 is $$ 2\left(\frac{1}{2}(\pi-\theta)(2^2-1^2)\right)=3\pi-3\theta. $$ The area of shaded Region 3 is $$ 2\left(\frac{1}{2}\theta(3^2-2^2)\right)=5\theta. $$ Hence the total area of the shaded regions is $3\pi+3\theta$. The area bounded by the largest circle is $9\pi$, so $$ \frac{3\pi+3\theta}{9\pi}=\frac{8}{8+13}. $$ Solving for $\theta$ gives $\theta=\pi/7$.

（B）设 $\theta$ 为两条直线之间的锐角。图中阴影区域1的面积为 $$ 2\left(\frac{1}{2}\theta(1)^2\right)=\theta. $$ 阴影区域2的面积为 $$ 2\left(\frac{1}{2}(\pi-\theta)(2^2-1^2)\right)=3\pi-3\theta. $$ 阴影区域3的面积为 $$ 2\left(\frac{1}{2}\theta(3^2-2^2)\right)=5\theta. $$ 因此阴影部分的总面积为 $3\pi+3\theta$。最大圆所围成的面积为 $9\pi$，所以 $$ \frac{3\pi+3\theta}{9\pi}=\frac{8}{8+13}. $$ 解得 $\theta=\pi/7$。

Q22

Square ABCD has side length 2. A semicircle with diameter AB is constructed inside the square, and the tangent to the semicircle from C intersects side AD at E. What is the length of CE?

正方形ABCD边长为2。以AB为直径在正方形内作半圆，从C引半圆的切线与边AD交于点E。求CE的长度。

(A) $(2 + \sqrt{5})/2$ $\frac{2 + \sqrt{5}}{2}$ (B) $\sqrt{5}$ $\sqrt{5}$ (C) $\sqrt{6}$ $\sqrt{6}$ (D) 5/2 $\frac{5}{2}$ (E) $5 - \sqrt{5}$ $5 - \sqrt{5}$

Correct Answer: D

(D) Let $F$ be the point at which $\overline{CE}$ is tangent to the semicircle, and let $G$ be the midpoint of $\overline{AB}$. Because $\overline{CF}$ and $\overline{CB}$ are both tangents to the semicircle, $CF=CB=2$. Similarly, $EA=EF$. Let $x=AE$. The Pythagorean Theorem applied to $\triangle CDE$ gives $$(2-x)^2+2^2=(2+x)^2.$$ It follows that $x=\frac12$ and $CE=2+x=\frac52.$

（D）设点 $F$ 为 $\overline{CE}$ 与半圆相切处的切点，设 $G$ 为 $\overline{AB}$ 的中点。因为 $\overline{CF}$ 和 $\overline{CB}$ 都是该半圆的切线，所以 $CF=CB=2$。同理，$EA=EF$。令 $x=AE$。对 $\triangle CDE$ 应用勾股定理得 $$(2-x)^2+2^2=(2+x)^2.$$ 因此 $x=\frac12$，且 $CE=2+x=\frac52$。

Q23

Circles A, B, and C are externally tangent to each other and internally tangent to circle D. Circles B and C are congruent. Circle A has radius 1 and passes through the center of D. What is the radius of circle B?

圆A、B、C两两外部相切，且都与圆D内部相切。圆B与圆C全等。圆A半径为1且经过圆D的圆心。求圆B的半径。

(A) 2/3 $\frac{2}{3}$ (B) $\sqrt{3}/2$ $\frac{\sqrt{3}}{2}$ (C) 7/8 $\frac{7}{8}$ (D) 8/9 $\frac{8}{9}$ (E) $(1 + \sqrt{3})/3$ $\frac{1 + \sqrt{3}}{3}$

Correct Answer: D

(D) Let $E$, $H$, and $F$ be the centers of circles $A$, $B$, and $D$ respectively, and let $G$ be the point of tangency of circles $B$ and $C$. Let $x=FG$ and $y=GH$. Since the center of circle $D$ lies on circle $A$ and the circles have a common point of tangency, the radius of circle $D$ is $2$, which is the diameter of circle $A$. Applying the Pythagorean Theorem to right triangles $EGH$ and $FGH$ gives $$(1+y)^2=(1+x)^2+y^2 \quad \text{and} \quad (2-y)^2=x^2+y^2,$$ from which it follows that $$y=x+\frac{x^2}{2} \quad \text{and} \quad y=1-\frac{x^2}{4}.$$ The solutions of this system are $(x,y)=(2/3,8/9)$ and $(x,y)=(-2,0)$. The radius of circle $B$ is the positive solution for $y$, which is $8/9$.

（D）设 $E$、$H$、$F$ 分别为圆 $A$、圆 $B$、圆 $D$ 的圆心，并设 $G$ 为圆 $B$ 与圆 $C$ 的切点。令 $x=FG$，$y=GH$。由于圆 $D$ 的圆心在圆 $A$ 上，且两圆有一个公共切点，所以圆 $D$ 的半径为 $2$，这等于圆 $A$ 的直径。对直角三角形 $EGH$ 与 $FGH$ 应用勾股定理得 $$(1+y)^2=(1+x)^2+y^2 \quad \text{且} \quad (2-y)^2=x^2+y^2,$$ 由此推出 $$y=x+\frac{x^2}{2} \quad \text{且} \quad y=1-\frac{x^2}{4}.$$ 该方程组的解为 $(x,y)=(2/3,8/9)$ 和 $(x,y)=(-2,0)$。圆 $B$ 的半径取 $y$ 的正解，即 $8/9$。

Q24

Let $a_1, a_2, \cdots $, be a sequence with the following properties. (i) $a_1 = 1$, and (ii) $a_{2n} = n \cdot a_n$ for any positive integer $n$. What is the value of $a_{2100}$?

设序列$a_1, a_2, \cdots$满足：(i) $a_1 = 1$，(ii) 对任意正整数$n$，$a_{2n} = n \cdot a_n$。求$a_{2100}$的值。

(A) 1 1 (B) 2^{99} 2^{99} (C) 2^{100} 2^{100} (D) 24950 24950 (E) 2^{9999} 2^{9999}

Correct Answer: D

(D) Note that $a_{2^1}=a_2=a_{2\cdot 1}=1\cdot a_1=2^0\cdot 2^0=2^0,$ $a_{2^2}=a_4=a_{2\cdot 2}=2\cdot a_2=2^1\cdot 2^0=2^1,$ $a_{2^3}=a_8=a_{2\cdot 4}=4\cdot a_4=2^2\cdot 2^1=2^{1+2},$ $a_{2^4}=a_{16}=a_{2\cdot 8}=8\cdot a_8=2^3\cdot 2^{1+2}=2^{1+2+3},$ and, in general, $a_{2^n}=2^{1+2+\cdots+(n-1)}$. Because $1+2+3+\cdots+(n-1)=\frac{1}{2}n(n-1),$ we have $a_{2^{100}}=2^{(100)(99)/2}=2^{4950}.$

（D）注意到 $a_{2^1}=a_2=a_{2\cdot 1}=1\cdot a_1=2^0\cdot 2^0=2^0,$ $a_{2^2}=a_4=a_{2\cdot 2}=2\cdot a_2=2^1\cdot 2^0=2^1,$ $a_{2^3}=a_8=a_{2\cdot 4}=4\cdot a_4=2^2\cdot 2^1=2^{1+2},$ $a_{2^4}=a_{16}=a_{2\cdot 8}=8\cdot a_8=2^3\cdot 2^{1+2}=2^{1+2+3},$ 并且一般地，$a_{2^n}=2^{1+2+\cdots+(n-1)}$。因为 $1+2+3+\cdots+(n-1)=\frac{1}{2}n(n-1),$ 所以有 $a_{2^{100}}=2^{(100)(99)/2}=2^{4950}.$

Q25

Three mutually tangent spheres of radius 1 rest on a horizontal plane. A sphere of radius 2 rests on them. What is the distance from the plane to the top of the larger sphere?

三个半径为1的互切球体放置在水平平面上。一个半径为2的球体放置在它们上面。求该大球顶点到平面的距离。

(A) $3 + \sqrt{30}/2$ $3 + \frac{\sqrt{30}}{2}$ (B) $3 + \sqrt{69}/3$ $3 + \frac{\sqrt{69}}{3}$ (C) $3 + \sqrt{123}/4$ $3 + \frac{\sqrt{123}}{4}$ (D) $52/9$ $\frac{52}{9}$ (E) $3 + 2\sqrt{2}$ $3 + 2\sqrt{2}$

Correct Answer: B

(B) Let $A$, $B$, $C$ and $E$ be the centers of the three small spheres and the large sphere, respectively. Then $\triangle ABC$ is equilateral with side length $2$. If $D$ is the intersection of the medians of $\triangle ABC$, then $E$ is directly above $D$. Because $AE=3$ and $AD=\frac{2\sqrt{3}}{3}$, it follows that $DE=\sqrt{3^2-\left(\frac{2\sqrt{3}}{3}\right)^2}=\frac{\sqrt{69}}{3}.$ Because $D$ is $1$ unit above the plane and the top of the larger sphere is $2$ units above $E$, the distance from the plane to the top of the larger sphere is $3+\frac{\sqrt{69}}{3}.$

（B）设 $A$、$B$、$C$ 和 $E$ 分别为三个小球和大球的球心。则 $\triangle ABC$ 是边长为 $2$ 的等边三角形。若 $D$ 为 $\triangle ABC$ 的三条中线的交点，则 $E$ 在 $D$ 的正上方。因为 $AE=3$ 且 $AD=\frac{2\sqrt{3}}{3}$，可得 $DE=\sqrt{3^2-\left(\frac{2\sqrt{3}}{3}\right)^2}=\frac{\sqrt{69}}{3}.$ 由于 $D$ 在平面上方 $1$ 个单位，而大球的最高点在 $E$ 上方 $2$ 个单位，所以从该平面到大球最高点的距离为 $3+\frac{\sqrt{69}}{3}.$

AMC10 2004 A