Respuesta :
Answer:
200 L per day
Explanation:
If there is 1 mg of F- per L of water, we can calculate the volume for 2 g like this:
1) Converse the toxic mass of fluoride to miligrams
1 g ------- 1000 mg
0.2 g ---- X
X = 200 mg
2) Calculate the liters of fluoridated drinking water that a person can consume to reach 200 mg
1 mg -------- 1 L
200 mg ---- X
x = 200 L
Answer:
[tex]2.0 \times 10^2 L[/tex] liters of fluoridated drinking water would a 70−kg person have to consume in one day to reach this toxic level
Explanation:
1g =1000mg
So,
[tex]0.2g \times \frac {1000mg}{1g}=200mg[/tex] is toxic for 70kg person
Fluoride present in drinking water is 1mg per L.
So 200mg is present in 200L
200L of fluoridated drinking water is toxic to a 70kg person which can cause death.
Using dimensional analysis,
[tex]0.2 g F^{-} i o n s \times \frac{1000 m g}{1 g} \times \frac{1 L \text {drinking water}}{1 m g F^{-}ions}=200 L \text { drinking water }[/tex]
[tex]2.0 \times 10^2 L[/tex] drinking water (Answer)
