有一种电加热恒温箱,工作原理如图甲所示.控制电路由电压为U 1 =9V的电源、开关、电磁继电器(线圈电阻 有一种电加热恒温箱,工作原理如图甲所示.控制电路由电压为U ...
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\uff081\uff09 \uff082\uff09\u4ea7\u751f\u7684\u70ed\u91cfQ= = =1.1\u00d710 5 J\uff1b\uff083\uff09\u5f53\u7535\u78c1\u7ee7\u7535\u5668\u7ebf\u5708\u7684\u7535\u6d41\u8fbe\u523060mA\u65f6\uff0c\u8bbe\u6b64\u65f6\u70ed\u654f\u7535\u963b\u7684\u963b\u503c\u4e3aR 01 \uff0c\u5219 = =100\u03a9\uff0c\u7531\u56fe\u53ef\u77e5\uff0c\u70ed\u654f\u7535\u963b\u4e3a100\u03a9\u65f6\u5bf9\u5e94\u7684\u6e29\u5ea6\u4e3a50\u2103\uff0c\u5373\u6052\u6e29\u7bb1\u7684\u6e29\u5ea6\u5c06\u7a33\u5b9a\u572850\u2103\uff0e\uff084\uff09\u53d8\u5c0f\uff085\uff09\u53d8\u5927
| (1)电热丝工作时的功率: P=
在10min内产生的热量: Q=W=Pt=1100W×10×60s=6.6×10 5 J; (2)如果恒温箱的温度设定为50℃,由图乙可知,热敏电阻的阻值R 1 =100Ω, 由题知,此时控制电路的电流I=60mA=0.06A, ∵I=
∴电阻箱R 0 应接入电路的阻值: R 0 =50Ω; (3)若要提高恒温箱的设定温度,由图乙知道,热敏电阻的阻值R 1 将减小,衔铁吸合工作电流即线圈中的电流仍需60mA,即要求控制电路中的总电阻不变,所以R 0 的阻值必须调大. 答:(1)求电热丝工作时的功率为1100W,在10min内产生的热量为6.6×10 5 J. (2)电阻箱R 0 应接入电路的阻值为50Ω; (3)为了让衔铁吸合工作电流即线圈中的电流仍需60mA,R 0 的阻值必须调大. |
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