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列方程解应用题

列方程解应用题. 复习. 商店原来有一些饺子粉,卖出35千克以后,还剩40千克.这个商店原来有多少千克饺子粉?. 解法一 :35 + 40 = 75( 千克 ). 设原来有 x 千克.. 解法二:. x - 35 = 40. x = 40 + 35. x = 75. 答:这个商店原来有75千克饺子粉.. 例 1. ×. 剩下的重量. 卖出的袋数. 每袋的重量. 原有的重量. 商店原来有一些饺子粉,每袋5千克,卖出7袋以后,还剩40千克.这个商店原来有多少千克饺子粉?. 想. -. =.

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列方程解应用题

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  1. 列方程解应用题

  2. 复习 商店原来有一些饺子粉,卖出35千克以后,还剩40千克.这个商店原来有多少千克饺子粉? 解法一:35 + 40 = 75(千克) 设原来有x千克. 解法二: x - 35 = 40 x = 40 + 35 x = 75 答:这个商店原来有75千克饺子粉.

  3. 例1 × 剩下的重量 卖出的袋数 每袋的重量 原有的重量 商店原来有一些饺子粉,每袋5千克,卖出7袋以后,还剩40千克.这个商店原来有多少千克饺子粉? 想 - = 40千克 x千克 5千克 7袋 解:设原来有x千克. x - 5 × 7 = 40 x - 35 = 40 x = 40 + 35 x = 75 答:这个商店原来有75千克饺子粉.

  4. 做一做 商店原来有15袋饺子粉,卖出35千克以后,还剩40千克.每袋饺子粉重多少千克? 解:设每袋饺子粉重x千克. 15x- 35 = 40 15x= 40 + 35 x= 75 ÷15 x = 5 答:每袋饺子粉重5千克.

  5. 例2 4节电池的钱数 付出的钱数 找回的钱数 小青买4节五号电池,付出8.5元,找回了0.1元. 每节五号电池的价钱是多少元? 想 - = 8.5元 4x元 0.1元 解:设每节五号电池的价钱是x元. 8.5 - 4x= 0.1 4x= 8.5 - 0.1 4x= 8.4 x = 8.4 ÷4 x =2.1 答:每节五号电池的价钱是2.1元.

  6. 小结 列方程解应用题的一般步骤: (1)弄清题意,找出未知数,并用x表示; (2)找出应用题中数量之间的相等关系,列方程; (3)解方程; (4)检验,写出答案.

  7. 中央电教馆资源中心制作 2003.11

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