Answer:
The answer is 27 minutes (to the nearest minute)
Step-by-step explanation:
we are told that at arrival (0 minute), the concentration of the radioactive dye = 11 mg
after 20 mins, level = 4.25 mg
Therefore after 20 minutes, the level of the radioactive dye that disappears;
= 11 - 4.25 = 6.75
hence it takes 20 minutes for 6.75 mg to disappear;
20 minutes = 6.75 mg
∴ 1 minute = 6.75 ÷ 20 = 0.3375 mg
meaning that after every minute 0.3375 mg dis appears
Next we are told that the detector sounds if more than 2 mg of the substance is still in the body, hence, to pass through successfully without setting off the alarm, out of the original 11 mg of the radioactive substance, at least 9 mg must have disappeared out of the system, to be left with just 2 mg, and since we know how many milligrams disappears every minutes, we will find the time it takes for 9 mg to dis appear as follows;
Disappearance rate:
0.3375 mg = 1 minute
∴ 9 mg = (1 ÷ 0.3375) × 9 = 26.67 minute = 27 minute (to the nearest minute)
