If you were to overshoot the endpoint by 1 drop while you were standardizing the NaOH solution, what would be your % error? Assume the actual volume is 30.00 mL and there are exactly 20 drops in 1.00 ml

asked Jan 8, 2020 172k views

1 vote

8.8k points

Please log in or register to add a comment.

5 votes

Answer:

$e(\%)=0.17\%$

Step-by-step explanation:

Volume of a drop:

V_(drop)=(1 mL)/(20 drop)

V_(drop)=0.05 mL

To estimate the error:

$e(\%)=\frac{V_(real)-V{theorerical}}{V{theoretical}}*100\%$

$e(\%)=((30 mL+0.05mL)-30mL)/(30mL)*100\%$

$e(\%)=0.17\%$

Sirmagid answered Jan 14, 2020

8.3k points

Welcome to QAmmunity.org, where you can ask questions and receive answers from other members of our community.

9.5m questions

12.2m answers