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Consider a sample of water from a stream found to have an initial DO of 10.0 mg/L. It is placed directly into a BOD bottle and incubated for 5 days at 20C. After 5 days, the DO is found to be 5.0 mg/L.
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Consider a sample of water from a stream found to have an initial DO of 10.0 mg/L. It is placed directly into a BOD bottle and incubated for 5 days at 20C. After 5 days, the DO is found to be 5.0 mg/L. What is the BOD5 for this sample (mg/L)?

User Vivo
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3 votes

Answer:

The BOD5 for this sample is 5 mg/L

Step-by-step explanation:

The BOD5 takes into consideration the difference between the initial DO and the final DO divided by the fraction of the sample tested in a 300 mL BOD flask. The problem states that the sample was directly placed in a BOD bottle so we assume that the volume used was 300 mL of the water sample. The fraction of water is 1 (300/300).


BOD5=(DOi-DOf)/(fraction)

BOD5 = (10-5)/1

BOD 5 = 5 mg/L

User Kjv
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