题目内容
小勇同学家里某段时间内共有两件用电器在工作,一盏“220V 40W”的灯(灯泡电阻不变),一台“DY-IA(R3)”型的空调机。空调机正常工作时的电压为220V,总功率为880W,内部线圈电阻为3.5Ω。求:
(1)这两件用电器的连接方式是(选填“串联”或“并联”),空调机应(选填“接地”或“不接地”);
(2)正常工作时,两件用电器的总功率;
(3)如果灯泡的工作电压是110V,它的实际电功率;
(4)该空调机正常工作1.5h,线圈电阻产生的热量。
(1)并联;接地··········································································· (各1分,共2分)
(2)P总= P1+P2=40W+880W=920W···························································· (2分)
(3) R1=
=
=
P1实=10W························ (2分)
(4)I2=
=
=4A, Q= I22R2t= (4A)2×3.5Ω×5400s=302400J············· (2分)
练习册系列答案
龙人图书快乐假期暑假作业郑州大学出版社系列答案
相关题目
