习题练习

[{"id":1231,"subject":"数学","grade":"七年级","stage":"初中","type":"解答题","content":"某学生在研究平面直角坐标系中的几何问题时，发现一个动点P从原点O(0, 0)出发，沿直线y = x向右上方移动。同时，另一个动点Q从点A(6, 0)出发，沿x轴向负方向以每秒1个单位的速度匀速运动。已知点P的运动速度是每秒√2个单位。设运动时间为t秒（t ≥ 0），当t为何值时，线段PQ的长度最短？并求出这个最短长度。","answer":"解：\n\n设运动时间为t秒。\n\n点P从原点O(0, 0)出发，沿直线y = x运动，速度为每秒√2个单位。\n由于直线y = x的方向向量为(1, 1)，其模长为√(1² + 1²) = √2，\n因此点P在t秒后的坐标为：\n x_P = t × (1) = t\n y_P = t × (1) = t\n即 P(t, t)\n\n点Q从A(6, 0)出发，沿x轴向负方向以每秒1个单位速度运动，\n因此Q的坐标为：\n x_Q = 6 - t\n y_Q = 0\n即 Q(6 - t, 0)\n\n线段PQ的长度为：\n|PQ| = √[(t - (6 - t))² + (t - 0)²]\n = √[(2t - 6)² + t²]\n = √[4t² - 24t + 36 + t²]\n = √[5t² - 24t + 36]\n\n令函数 f(t) = 5t² - 24t + 36，则 |PQ| = √f(t)\n由于平方根函数在定义域内单调递增，因此当f(t)最小时，|PQ|最小。\n\nf(t) 是一个开口向上的二次函数，其最小值出现在顶点处：\n t = -b\/(2a) = 24\/(2×5) = 24\/10 = 2.4\n\n因此，当 t = 2.4 秒时，PQ长度最短。\n\n最短长度为：\n|PQ| = √[5×(2.4)² - 24×2.4 + 36]\n = √[5×5.76 - 57.6 + 36]\n = √[28.8 - 57.6 + 36]\n = √[7.2]\n = √(72\/10) = √(36×2 \/ 10) = 6√2 \/ √10 = (6√20)\/10 = (6×2√5)\/10 = (12√5)\/10 = (6√5)\/5\n\n或者直接保留为 √7.2，但更规范地化简：\n7.2 = 72\/10 = 36\/5\n所以 √(36\/5) = 6\/√5 = (6√5)\/5\n\n答：当 t = 2.4 秒时，线段PQ的长度最短，最短长度为 (6√5)\/5 个单位。","explanation":"本题综合考查了平面直角坐标系、函数思想、二次函数最值以及两点间距离公式，属于跨知识点综合应用题。解题关键在于：\n1. 根据运动方向和速度，正确写出两个动点的坐标表达式；\n2. 利用两点间距离公式建立关于时间t的距离函数；\n3. 将距离的平方视为二次函数，利用顶点公式求最小值对应的t值；\n4. 注意距离是平方根形式，但由于根号单调递增，最小值点一致；\n5. 最后代入求最短距离，并进行合理的根式化简。\n本题难度较高，要求学生具备较强的建模能力和代数运算技巧，同时理解函数最值在实际问题中的应用。","solution_steps":null,"common_mistakes":null,"learning_suggestions":null,"difficulty":"困难","points":1,"is_active":1,"created_at":"2026-01-06 10:27:01","updated_at":"2026-01-06 10:27:01","sort_order":0,"source":null,"tags":null,"analysis":null,"knowledge_point":null,"difficulty_coefficient":null,"suggested_time":null,"accuracy_rate":null,"usage_count":0,"last_used":null,"view_count":0,"favorite_count":0,"options":[]},{"id":620,"subject":"数学","grade":"初一","stage":"小学","type":"选择题","content":"72度","answer":"待完善","explanation":"解析待完善","solution_steps":null,"common_mistakes":null,"learning_suggestions":null,"difficulty":"简单","points":1,"is_active":1,"created_at":"2025-12-29 21:45:21","updated_at":"2025-12-30 11:11:27","sort_order":0,"source":null,"tags":null,"analysis":null,"knowledge_point":null,"difficulty_coefficient":null,"suggested_time":null,"accuracy_rate":null,"usage_count":0,"last_used":null,"view_count":0,"favorite_count":0,"options":[]},{"id":1938,"subject":"数学","grade":"七年级","stage":"初中","type":"填空题","content":"某学生测量了一个不规则四边形的四个内角，发现其中三个角的度数分别为85°、95°和110°，若该四边形可以分割成两个三角形，则第四个角的度数是___°。","answer":"70","explanation":"四边形内角和为360°，已知三个角之和为85°+95°+110°=290°，故第四个角为360°−290°=70°。题目中‘可分割成两个三角形’暗示其为简单四边形，内角和恒为360°。","solution_steps":"","common_mistakes":"","learning_suggestions":"","difficulty":"困难","points":1,"is_active":1,"created_at":"2026-01-07 14:11:05","updated_at":"2026-01-07 14:11:05","sort_order":0,"source":null,"tags":null,"analysis":null,"knowledge_point":null,"difficulty_coefficient":null,"suggested_time":null,"accuracy_rate":null,"usage_count":0,"last_used":null,"view_count":0,"favorite_count":0,"options":[]},{"id":2490,"subject":"数学","grade":"九年级","stage":"初中","type":"选择题","content":"某学生制作一个圆锥形纸帽，已知纸帽的底面半径为3 cm，侧面展开图是一个圆心角为120°的扇形。若该学生想用一根细绳沿着纸帽的底面边缘缠绕一圈并拉直测量长度，则这根细绳的长度应为多少？","answer":"A","explanation":"题目考查圆的周长公式与扇形圆心角的关系。已知圆锥底面半径为3 cm，要求底面边缘一圈的长度，即求底面圆的周长。根据圆的周长公式 C = 2πr，代入 r = 3，得 C = 2π × 3 = 6π cm。虽然题目中提到了侧面展开图是120°的扇形，但该信息用于干扰或后续拓展，本题仅需求底面周长，因此无需使用该条件。正确答案为A。","solution_steps":"","common_mistakes":"","learning_suggestions":"","difficulty":"简单","points":1,"is_active":1,"created_at":"2026-01-10 15:15:05","updated_at":"2026-01-10 15:15:05","sort_order":0,"source":null,"tags":null,"analysis":null,"knowledge_point":null,"difficulty_coefficient":null,"suggested_time":null,"accuracy_rate":null,"usage_count":0,"last_used":null,"view_count":0,"favorite_count":0,"options":[{"id":"A","content":"6π cm","is_correct":1},{"id":"B","content":"9π cm","is_correct":0},{"id":"C","content":"12π cm","is_correct":0},{"id":"D","content":"18π cm","is_correct":0}]},{"id":1516,"subject":"数学","grade":"七年级","stage":"初中","type":"解答题","content":"某城市地铁线路规划部门正在设计一条新的地铁线路，线路在平面直角坐标系中表示为一条直线 L。已知该线路经过站点 A(2, 5) 和站点 B(6, 1)。为优化换乘，需在站点 C(4, 3) 处设置一个换乘枢纽。经测量，换乘枢纽 C 到线路 L 的垂直距离为 d。现计划在线路 L 上新建一个临时施工点 P，使得点 P 到点 C 的距离等于 d，且点 P 位于线段 AB 上（包括端点）。若存在多个满足条件的点 P，取横坐标较小的一个。求点 P 的坐标。","answer":"解：\n\n第一步：求直线 L 的方程\n已知直线 L 经过点 A(2, 5) 和 B(6, 1)，先求斜率 k：\nk = (1 - 5) \/ (6 - 2) = (-4) \/ 4 = -1\n\n设直线方程为 y = -x + b，代入点 A(2, 5)：\n5 = -2 + b ⇒ b = 7\n所以直线 L 的方程为：y = -x + 7\n\n第二步：求点 C(4, 3) 到直线 L 的距离 d\n点到直线的距离公式：对于直线 ax + by + c = 0，点 (x₀, y₀) 到直线的距离为\n|ax₀ + by₀ + c| \/ √(a² + b²)\n\n将 y = -x + 7 化为标准形式：x + y - 7 = 0，即 a = 1, b = 1, c = -7\n代入点 C(4, 3)：\nd = |1×4 + 1×3 - 7| \/ √(1² + 1²) = |4 + 3 - 7| \/ √2 = |0| \/ √2 = 0\n\n发现点 C(4, 3) 在直线 L 上！因为当 x = 4 时，y = -4 + 7 = 3，确实在直线上。\n因此 d = 0，即点 C 到直线 L 的距离为 0。\n\n第三步：找点 P，使 P 在线段 AB 上，且 |PC| = d = 0\n|PC| = 0 意味着 P 与 C 重合，即 P = C\n\n检查点 C(4, 3) 是否在线段 AB 上：\n参数法判断：设线段 AB 上任意点可表示为：\n(x, y) = (1 - t)(2, 5) + t(6, 1) = (2 + 4t, 5 - 4t)，其中 t ∈ [0, 1]\n令 x = 4：2 + 4t = 4 ⇒ 4t = 2 ⇒ t = 0.5 ∈ [0, 1]\n此时 y = 5 - 4×0.5 = 5 - 2 = 3，正好是点 C(4, 3)\n所以点 C 在线段 AB 上\n\n因此，满足条件的点 P 就是 C(4, 3)\n题目要求若存在多个点取横坐标较小者，此处仅有一个点\n\n最终答案：点 P 的坐标为 (4, 3)","explanation":"本题综合考查了平面直角坐标系、直线方程、点到直线的距离公式以及线段上的点参数表示等多个知识点。解题关键在于发现点 C 恰好落在直线 AB 上，从而得出距离 d 为 0，进而推出点 P 必须与 C 重合。通过参数法验证点 C 是否在线段 AB 上是关键步骤，体现了数形结合思想。题目设计巧妙，表面看似复杂，实则通过计算揭示几何本质，考查学生逻辑推理与计算能力，符合困难难度要求。","solution_steps":null,"common_mistakes":null,"learning_suggestions":null,"difficulty":"困难","points":1,"is_active":1,"created_at":"2026-01-06 12:10:08","updated_at":"2026-01-06 12:10:08","sort_order":0,"source":null,"tags":null,"analysis":null,"knowledge_point":null,"difficulty_coefficient":null,"suggested_time":null,"accuracy_rate":null,"usage_count":0,"last_used":null,"view_count":0,"favorite_count":0,"options":[]},{"id":624,"subject":"数学","grade":"初一","stage":"初中","type":"选择题","content":"某班级组织了一次环保知识竞赛，共收集了50份有效答卷。统计后发现，答对题数为0到10题的学生人数分布如下：答对0-3题的有8人，答对4-6题的有15人，答对7-9题的有20人，答对10题的有7人。若将答对7题及以上的学生定义为‘优秀参与者’，则优秀参与者占总人数的百分比是多少？","answer":"B","explanation":"首先确定‘优秀参与者’的人数：答对7-9题的有20人，答对10题的有7人，因此优秀参与者总人数为20 + 7 = 27人。总人数为50人。计算百分比：27 ÷ 50 × 100% = 54%。因此正确答案是B。本题考查数据的收集与整理，以及对百分比的计算，属于简单难度，符合七年级数学课程标准中‘数据的收集、整理与描述’的知识点要求。","solution_steps":null,"common_mistakes":null,"learning_suggestions":null,"difficulty":"简单","points":1,"is_active":1,"created_at":"2025-12-29 21:50:34","updated_at":"2025-12-30 11:11:27","sort_order":0,"source":null,"tags":null,"analysis":null,"knowledge_point":null,"difficulty_coefficient":null,"suggested_time":null,"accuracy_rate":null,"usage_count":0,"last_used":null,"view_count":0,"favorite_count":0,"options":[{"id":"A","content":"40%","is_correct":0},{"id":"B","content":"54%","is_correct":1},{"id":"C","content":"60%","is_correct":0},{"id":"D","content":"74%","is_correct":0}]},{"id":436,"subject":"数学","grade":"初一","stage":"小学","type":"选择题","content":"3","answer":"待完善","explanation":"解析待完善","solution_steps":null,"common_mistakes":null,"learning_suggestions":null,"difficulty":"简单","points":1,"is_active":1,"created_at":"2025-12-29 17:38:15","updated_at":"2025-12-30 11:11:27","sort_order":0,"source":null,"tags":null,"analysis":null,"knowledge_point":null,"difficulty_coefficient":null,"suggested_time":null,"accuracy_rate":null,"usage_count":0,"last_used":null,"view_count":0,"favorite_count":0,"options":[]},{"id":569,"subject":"数学","grade":"初一","stage":"初中","type":"选择题","content":"某班级为了了解学生对课外阅读的兴趣，随机抽取了30名学生进行调查，统计了他们每周课外阅读的时间（单位：小时），并将数据整理如下：5人读2小时，8人读3小时，10人读4小时，4人读5小时，3人读6小时。这30名学生每周课外阅读时间的众数是多少？","answer":"C","explanation":"众数是一组数据中出现次数最多的数值。根据题目提供的数据：阅读2小时的有5人，3小时的有8人，4小时的有10人，5小时的有4人，6小时的有3人。其中，阅读4小时的人数最多，为10人，因此这组数据的众数是4小时。故正确答案为C。","solution_steps":null,"common_mistakes":null,"learning_suggestions":null,"difficulty":"简单","points":1,"is_active":1,"created_at":"2025-12-29 19:41:54","updated_at":"2025-12-30 11:11:27","sort_order":0,"source":null,"tags":null,"analysis":null,"knowledge_point":null,"difficulty_coefficient":null,"suggested_time":null,"accuracy_rate":null,"usage_count":0,"last_used":null,"view_count":0,"favorite_count":0,"options":[{"id":"A","content":"2小时","is_correct":0},{"id":"B","content":"3小时","is_correct":0},{"id":"C","content":"4小时","is_correct":1},{"id":"D","content":"5小时","is_correct":0}]},{"id":747,"subject":"数学","grade":"初一","stage":"初中","type":"填空题","content":"在一次班级图书角统计中，某学生发现科普类书籍占总数的30%，文学类书籍比科普类多20本，其余40本是历史类书籍。那么图书角共有____本书。","answer":"100","explanation":"设图书角总共有x本书。根据题意，科普类书籍占30%，即0.3x本；文学类比科普类多20本，即(0.3x + 20)本；历史类有40本。三类书籍总和等于总数，因此可列方程：0.3x + (0.3x + 20) + 40 = x。化简得：0.6x + 60 = x，移项得：60 = 0.4x，解得x = 150 ÷ 1.5 = 100。所以图书角共有100本书。本题考查一元一次方程的实际应用，结合百分数与数据整理背景，符合七年级知识点。","solution_steps":null,"common_mistakes":null,"learning_suggestions":null,"difficulty":"简单","points":1,"is_active":1,"created_at":"2025-12-29 23:21:52","updated_at":"2025-12-30 11:11:27","sort_order":0,"source":null,"tags":null,"analysis":null,"knowledge_point":null,"difficulty_coefficient":null,"suggested_time":null,"accuracy_rate":null,"usage_count":0,"last_used":null,"view_count":0,"favorite_count":0,"options":[]},{"id":650,"subject":"数学","grade":"初一","stage":"小学","type":"填空题","content":"某学生在整理班级同学的身高数据时，将数据按从小到大的顺序排列，发现最矮的同学身高为148厘米，最高的同学身高为162厘米。如果将所有同学的身高都增加5厘米，那么新的数据中，最高身高与最矮身高的差是___厘米。","answer":"14","explanation":"原数据中最高身高为162厘米，最矮身高为148厘米，两者之差为162 - 148 = 14厘米。当所有数据都增加相同的数值（5厘米）时，数据之间的差值保持不变。因此，新的最高身高为162 + 5 = 167厘米，新的最矮身高为148 + 5 = 153厘米，差值为167 - 153 = 14厘米。本题考查数据的整理与描述中数据变化对统计量的影响，属于简单难度。","solution_steps":null,"common_mistakes":null,"learning_suggestions":null,"difficulty":"简单","points":1,"is_active":1,"created_at":"2025-12-29 22:11:20","updated_at":"2025-12-30 11:11:27","sort_order":0,"source":null,"tags":null,"analysis":null,"knowledge_point":null,"difficulty_coefficient":null,"suggested_time":null,"accuracy_rate":null,"usage_count":0,"last_used":null,"view_count":0,"favorite_count":0,"options":[]}]