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Question-69901




Question Number 69901 by Rio Michael last updated on 28/Sep/19
Commented by Tony Lin last updated on 30/Sep/19
(1)V=I(R_A +R)  ∵so we may use the first circuit to  measure something with high resistence  (2)I=V((1/R_V )+(1/R))  ∵so we may use the second circuit to  measure something with low resistance
$$\left(\mathrm{1}\right){V}={I}\left({R}_{{A}} +{R}\right) \\ $$$$\because{so}\:{we}\:{may}\:{use}\:{the}\:{first}\:{circuit}\:{to} \\ $$$${measure}\:{something}\:{with}\:{high}\:{resistence} \\ $$$$\left(\mathrm{2}\right){I}={V}\left(\frac{\mathrm{1}}{{R}_{{V}} }+\frac{\mathrm{1}}{{R}}\right) \\ $$$$\because{so}\:{we}\:{may}\:{use}\:{the}\:{second}\:{circuit}\:{to} \\ $$$${measure}\:{something}\:{with}\:{low}\:{resistance} \\ $$
Commented by Rio Michael last updated on 28/Sep/19
which of this circuits measure  high Resistance, please give  a reason for your answer.
$${which}\:{of}\:{this}\:{circuits}\:{measure}\:\:{high}\:{Resistance},\:{please}\:{give} \\ $$$${a}\:{reason}\:{for}\:{your}\:{answer}. \\ $$
Answered by jagannath19 last updated on 29/Sep/19
2nd circuit??
$$\mathrm{2}{nd}\:{circuit}?? \\ $$
Commented by Rio Michael last updated on 29/Sep/19
why please
$${why}\:{please} \\ $$

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