Answer:
74.12kg/day
Explanation:
Equation of reaction for the neutralization reaction of sodium hydroxide and sulfuric acid: 2NaOH + H2SO4 yields Na2SO4 + 2H2O
Mass of sulfuric acid produced per day = 90,800kg
Percentage of sulfuric acid in wastewater = 0.1%
Mass of sulfuric acid that ends up in wastewater per day = 0.1/100 × 90,800 = 90.8kg
From the equation of reaction, 2 moles of NaOH (80kg of NaOH) is required to neutralize 1 mole of H2SO4 (98kg of H2SO4)
80kg of NaOH is required to neutralize 98kg of sulfuric acid
90.8kg of sulfuric acid would be neutralized by (90.8×80)/98kg of NaOH = 74.14kg/day of NaOH
Answer:
74.12 kg/day
Explanation:
2NaOH + H2SO4 → Na2SO4 + 2H2O
Amount of sulfuric acid that enters wastewater = (0.1/100)* 90,800 kg/day
= 90.8kg/day
From the equation above; 98g of H2SO4 was neutralized by 80g of NaOH
90.8 kg/day in the waste stream will be neutralized by how many kg/day of NaOH ?
Expressing the above statement in proportion;
98 g → 80 g
90.8 kg/day → ?
= (90.8 kg/day × 80 g)/98 g
0.1% of sulfuric produced in the waste stream will require 74.12 kg/day of NaOH
