习题练习

[{"id":1740,"subject":"数学","grade":"七年级","stage":"初中","type":"解答题","content":"某学生在研究城市公园的绿化规划时，收集了一组数据：公园内不同区域的树木数量与对应的灌溉用水量（单位：吨）如下表所示。已知树木数量与用水量之间存在线性关系，且当树木数量为0时，基础维护用水量为2吨。该学生建立了一个二元一次方程组来描述这一关系，并利用平面直角坐标系绘制了对应的直线图像。此外，公园管理部门规定，每个区域的月用水量不得超过15吨。若某区域计划种植x棵树，且每增加3棵树，用水量增加1.5吨。请回答以下问题：\n\n（1）写出描述树木数量x与用水量y之间关系的二元一次方程组，并将其化为一元一次方程的标准形式；\n\n（2）求出该一元一次方程的解，并解释其实际意义；\n\n（3）若某区域已种植18棵树，是否满足用水量不超过15吨的规定？请通过计算说明；\n\n（4）若该学生希望在不违反用水规定的前提下尽可能多地种植树木，求最多可种植多少棵树？并求出此时的实际用水量。","answer":"（1）根据题意，当树木数量x = 0时，用水量y = 2，即截距为2。每增加3棵树，用水量增加1.5吨，因此每增加1棵树，用水量增加1.5 ÷ 3 = 0.5吨，即斜率为0.5。\n\n因此，用水量y与树木数量x之间的函数关系为：\n y = 0.5x + 2\n\n将其转化为二元一次方程组的标准形式（移项）：\n 0.5x - y + 2 = 0\n\n两边同乘以2，消去小数，得一元一次方程的标准形式：\n x - 2y + 4 = 0\n\n（2）将方程x - 2y + 4 = 0变形为y关于x的表达式：\n 2y = x + 4\n y = (1\/2)x + 2\n\n此方程的解为所有满足该关系的实数对(x, y)，其实际意义是：对于任意种植的树木数量x，对应的理论用水量为(1\/2)x + 2吨。例如，种植10棵树时，用水量为(1\/2)×10 + 2 = 7吨。\n\n（3）当x = 18时，代入y = 0.5x + 2：\n y = 0.5 × 18 + 2 = 9 + 2 = 11（吨）\n\n因为11 < 15，所以满足用水量不超过15吨的规定。\n\n（4）设最多可种植x棵树，则用水量y ≤ 15。代入方程：\n 0.5x + 2 ≤ 15\n 0.5x ≤ 13\n x ≤ 26\n\n因为x为整数（树木数量），所以x的最大值为26。\n\n此时用水量为：y = 0.5 × 26 + 2 = 13 + 2 = 15（吨），正好达到上限。\n\n答：最多可种植26棵树，此时用水量为15吨。","explanation":"本题综合考查了二元一次方程组的建立、一元一次方程的解法、不等式的应用以及实际问题的数学建模能力。首先，通过分析数据变化规律（每3棵树增加1.5吨水），确定线性关系的斜率，并结合截距建立函数模型。其次，将函数表达式转化为标准方程形式，体现代数变形能力。然后，利用方程进行具体数值计算，判断是否满足约束条件。最后，结合不等式求解最大值问题，体现最优化思想。整个过程融合了有理数运算、整式表达、方程与不等式求解、平面直角坐标系中的线性关系以及数据的整理与应用，符合七年级数学课程的综合能力要求，难度较高，适合用于选拔性或拓展性测试。","solution_steps":null,"common_mistakes":null,"learning_suggestions":null,"difficulty":"困难","points":1,"is_active":1,"created_at":"2026-01-06 14:23:40","updated_at":"2026-01-06 14:23:40","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":243,"subject":"数学","grade":"初一","stage":"小学","type":"填空题","content":"某学生在计算一个数的相反数时，误将该数加上了5，结果得到了8。那么这个数的正确相反数应该是____。","answer":"-3","explanation":"设这个数为x。根据题意，某学生误将x加上5得到8，即x + 5 = 8，解得x = 3。这个数的相反数是-3。因此，正确答案是-3。","solution_steps":null,"common_mistakes":null,"learning_suggestions":null,"difficulty":"简单","points":1,"is_active":1,"created_at":"2025-12-29 14:42:03","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":2204,"subject":"数学","grade":"七年级","stage":"初中","type":"选择题","content":"某学生在记录一周内每天的温度变化时，发现某天的气温比前一天上升了5℃，记作+5℃。如果第二天的气温又比当天下降了8℃，那么第二天的温度变化应记作多少？","answer":"B","explanation":"温度下降应使用负数表示。题目中明确指出气温下降了8℃，因此应记作-8℃。选项B正确。其他选项要么符号错误，要么数值错误，不符合正负数表示实际意义的要求。","solution_steps":"","common_mistakes":"","learning_suggestions":"","difficulty":"简单","points":1,"is_active":1,"created_at":"2026-01-09 14:25:31","updated_at":"2026-01-09 14:25:31","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":"+8℃","is_correct":0},{"id":"B","content":"-8℃","is_correct":1},{"id":"C","content":"+3℃","is_correct":0},{"id":"D","content":"-3℃","is_correct":0}]},{"id":483,"subject":"数学","grade":"初一","stage":"小学","type":"选择题","content":"38.6千克","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 17:59:00","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":430,"subject":"数学","grade":"初一","stage":"初中","type":"选择题","content":"某班级进行了一次数学测验，老师将成绩分为四个等级：优秀、良好、及格、不及格。统计后发现，优秀人数占总人数的25%，良好人数是优秀人数的2倍，及格人数比良好人数少10人，不及格人数为5人。若该班总人数为x，则可列出一元一次方程为：","answer":"A","explanation":"设总人数为x。根据题意：优秀人数为25%即0.25x；良好人数是优秀的2倍，即2 × 0.25x = 0.5x；及格人数比良好人数少10人，即0.5x - 10；不及格人数为5人。总人数等于各部分人数之和，因此方程为：x = 0.25x + 0.5x + (0.5x - 10) + 5。选项A正确。其他选项在良好人数或及格人数的计算上存在错误。","solution_steps":null,"common_mistakes":null,"learning_suggestions":null,"difficulty":"简单","points":1,"is_active":1,"created_at":"2025-12-29 17:35:07","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":"x = 0.25x + 0.5x + (0.5x - 10) + 5","is_correct":1},{"id":"B","content":"x = 0.25x + 0.25x + (0.25x - 10) + 5","is_correct":0},{"id":"C","content":"x = 0.25x + 0.5x + (0.25x - 10) + 5","is_correct":0},{"id":"D","content":"x = 0.25x + 0.5x + (0.5x + 10) + 5","is_correct":0}]},{"id":2468,"subject":"数学","grade":"八年级","stage":"初中","type":"解答题","content":"如图，在平面直角坐标系中，点A(0, 4)，点B(6, 0)，点C为线段AB上的一个动点。以AC为边作正方形ACDE，使得点D在x轴上方，点E在点A的右侧。连接BE，交y轴于点F。已知正方形ACDE的面积为S，线段OF的长度为y（O为坐标原点）。\\n\\n(1) 设AC = x，试用含x的代数式表示S，并求出S的取值范围；\\n(2) 当点C在线段AB上运动时，求y关于x的函数关系式，并指出该函数的定义域；\\n(3) 若某学生测得三组数据如下：当x = 2时，y ≈ 1.6；当x = 3时，y ≈ 2.4；当x = 4时，y ≈ 3.2。请判断该学生记录的数据是否符合你求得的函数关系，并说明理由。","answer":"待完善","explanation":"解析待完善","solution_steps":"待完善","common_mistakes":"","learning_suggestions":"","difficulty":"中等","points":1,"is_active":1,"created_at":"2026-01-10 14:32:33","updated_at":"2026-01-10 14:32:33","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":972,"subject":"数学","grade":"初一","stage":"初中","type":"填空题","content":"在一次班级环保活动中，某学生收集了废旧纸张和塑料瓶两类物品。若废旧纸张每5千克可兑换1个环保积分，塑料瓶每3千克可兑换1个环保积分，该学生总共收集了19千克物品，兑换了5个环保积分。设废旧纸张为x千克，则可列出一元一次方程为：5*(x\/5) + 3*((19 - x)\/3) = 5，化简后得：x + (19 - x) = 5。但此方程不成立，说明列式有误。正确的方程应为：x\/5 + (19 - x)\/3 = ___。","answer":"5","explanation":"根据题意，环保积分由两部分组成：废旧纸张兑换的积分是x除以5，塑料瓶兑换的积分是(19 - x)除以3。总积分为5，因此正确的方程应为x\/5 + (19 - x)\/3 = 5。题目中故意展示了一个错误的列式过程，引导学生识别并写出正确方程的右边数值。该题考查一元一次方程的实际建模能力，结合环保情境，贴近生活，难度适中，符合七年级学生对一元一次方程的理解水平。","solution_steps":null,"common_mistakes":null,"learning_suggestions":null,"difficulty":"简单","points":1,"is_active":1,"created_at":"2025-12-30 04:08:39","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":4,"subject":"数学","grade":"初二","stage":"初中","type":"填空题","content":"已知方程组{2x + 3y = 7, x - y = 1}，则x = ____, y = ____。","answer":"x = 2, y = 1","explanation":"由第二个方程得x = y + 1，代入第一个方程：2(y + 1) + 3y = 7，解得5y = 5，即y = 1，因此x = 2。","solution_steps":null,"common_mistakes":null,"learning_suggestions":null,"difficulty":"中等","points":2,"is_active":1,"created_at":"2025-08-29 16:33:04","updated_at":"2025-08-29 16:33:04","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":2212,"subject":"数学","grade":"七年级","stage":"初中","type":"填空题","content":"某学生在记录一周内每天气温变化时，将比零度高记为正，比零度低记为负。已知周一的气温变化为上升3度，周二为下降5度，周三为上升2度，周四为下降4度。若这四天的气温变化总和为负数，则这个总和是____度。","answer":"-4","explanation":"根据题意，将每天的气温变化用正负数表示：周一为+3，周二为-5，周三为+2，周四为-4。将这些数相加：+3 + (-5) + (+2) + (-4) = (3 + 2) + (-5 - 4) = 5 - 9 = -4。因此，这四天的气温变化总和为-4度，符合题目中‘总和为负数’的条件。","solution_steps":"","common_mistakes":"","learning_suggestions":"","difficulty":"简单","points":1,"is_active":1,"created_at":"2026-01-09 14:27:19","updated_at":"2026-01-09 14:27:19","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":1378,"subject":"数学","grade":"七年级","stage":"初中","type":"解答题","content":"某城市为了优化公交线路，对一条主干道的车流量进行了为期一周的观测，记录每天上午7:00至9:00的车辆通行数量（单位：百辆）。数据如下：周一 12.5，周二 13.2，周三 11.8，周四 14.1，周五 15.3，周六 9.6，周日 8.4。交通部门计划根据这些数据调整红绿灯时长，并设定一个‘高峰阈值’，若某天的车流量超过该阈值，则启动高峰信号控制方案。已知该阈值设定为这七天车流量平均值的1.2倍，且信号灯调整需满足以下条件：高峰时段绿灯时长为（车流量 ÷ 阈值）× 60 秒，但最长不超过75秒，最短不低于40秒。若某学生通过计算发现周五的绿灯时长恰好达到上限，请验证该说法是否正确，并求出周六的绿灯时长（结果保留一位小数）。","answer":"第一步：计算七天车流量的平均值。\n车流量总和 = 12.5 + 13.2 + 11.8 + 14.1 + 15.3 + 9.6 + 8.4 = 84.9（百辆）\n平均值 = 84.9 ÷ 7 = 12.12857... ≈ 12.13（百辆）（保留两位小数）\n\n第二步：计算高峰阈值。\n阈值 = 平均值 × 1.2 = 12.12857 × 1.2 ≈ 14.55428 ≈ 14.55（百辆）\n\n第三步：计算周五的绿灯时长。\n周五车流量 = 15.3（百辆）\n绿灯时长 = (15.3 ÷ 14.55428) × 60 ≈ (1.0512) × 60 ≈ 63.07 秒\n由于 40 ≤ 63.07 ≤ 75，未超过上限，因此‘周五绿灯时长达到上限75秒’的说法错误。\n\n第四步：计算周六的绿灯时长。\n周六车流量 = 9.6（百辆）\n绿灯时长 = (9.6 ÷ 14.55428) × 60 ≈ (0.6596) × 60 ≈ 39.58 秒\n但最短不低于40秒，因此取 40.0 秒。\n\n结论：该说法不正确，周五绿灯时长约为63.1秒，未达到75秒上限；周六的绿灯时长为40.0秒。","explanation":"本题综合考查了数据的收集与整理（计算平均值）、实数的运算（小数乘除）、一元一次方程思想（比例计算）以及不等式的应用（时长限制）。解题关键在于准确计算平均值和阈值，再按比例计算绿灯时长，并结合实际约束条件（最短40秒，最长75秒）进行判断和调整。题目情境贴近生活，融合了统计与代数知识，要求学生具备较强的数据处理能力和逻辑推理能力，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 11:15:30","updated_at":"2026-01-06 11:15:30","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":[]}]