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$$\begin{gathered} \text{Thegivenemfofthebattery}蔚=3\text{V,} \\ {\text{罢丑别驳颈惫别苍谤别蝉颈蝉迟补苍肠别蝉,谤=100惟,搁}}_1\text{=250}惟{\text{,R}}_2\text{=300}惟 \\ {\text{VoltmeterresistanceR}}_v\text{=5K}惟 \end{gathered}$$

Kirchhoff鈥檚 voltage law states that in any closed loop network, the total voltage around the loop is equal to zero. Now, considering each loop, and applying the b=voltage law, we can get the required voltage equation for both loops. Further solving them, we can get the voltmeter reading and the required current value in absence of the ammeter resistance. Using this, the fractional error is calculated.

Formulae:

The voltage equation using Ohm鈥檚 law, V = I R (1)

Kirchhoff鈥檚 voltage law, $\underset{\text{closed loop}}{鈭�}\text{V}=0$ (2)

The current in R₂ is i . Let be the current in R1 and take it to be the downward direction. According to the junction rule, the current in the voltmeter is found to be i -i₁ and it is downward.

Now, applying equation (1) in equation (2) for the left loop, the voltage equation can be given as:

$蔚-i{R}_2-i_1{R}_1-ir=0....................\left(3\right)$

And, applying equation (1) in equation (2) for the right loop, the voltage equation can be given as:

$$\begin{gathered} i_1{R}_1-\left(i-i_1\right)R_V=0 \\ i=\frac{R_1+R_V}{R_V}{i}_1.......................\left(4\right) \end{gathered}$$

Now, substituting the value from equation (4) in equation (3), we get the equation as:

$蔚-\frac{{\displaystyle \left(R_2+r\right)\left(R_1+R_V\right)}}{R_V}{i}_1+i_1{R}_1=0$

Thus, the current equation can be given as:

$i_1=\frac{蔚R_V}{\left(R_2+r\right)\left(R_1+R_V\right)+R_1{R}_V}$

Now, the voltmeter reading can be given using the given data in the above equation as follows:

$$\begin{gathered} i_1{R}_1=\frac{蔚R_V{R}_1}{\left(R_2+r\right)\left(R_1+R_V\right)+R_1{R}_V} \\ =\frac{\left(3.0v\right){\displaystyle \left(5脳{10}^3惟\right)}{\displaystyle \left(250惟\right)}}{\left(300惟+100惟\right){\displaystyle \left(250惟+5脳{10}^3惟\right)}{\displaystyle \left(5脳{10}^3惟\right)}{\displaystyle \left(250惟\right)}} \\ =1.12V \end{gathered}$$

The current in the absence of the voltmeter can be obtained by taking the limit as becomes infinitely large. Then, the voltmeter reading is given as:

$$\begin{gathered} i{}_1{R}_1=\frac{蔚R_1}{\left(R_1+R_2+r\right)} \\ =\frac{\left(3.0v\right){\displaystyle \left(250惟\right)}}{\left(250惟+300惟+100惟\right)} \\ ==1.15\text{V} \end{gathered}$$

The fractional error can be given as follows:

$$\begin{gathered} Error=\frac{1.12V-1.15V}{1.15V} \\ =-0.03 \\ =-3.0\% \end{gathered}$$

Hence, the fractional error is $-0.03\text{or}-3.0\%$.