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Math Midterm Review Math for Water Technology MTH 082.

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1 Math Midterm Review Math for Water Technology MTH 082

2 Given Formula: Solve: Given Formula: Solve: Convert 188 o F to o C? 88 o F o C= 5 * ( o F – 32) 9 o C= 5 * (188-32)/9 o C= 87 88 o F o C= 5 * ( o F – 32) 9 o C= 5 * (188-32)/9 o C= 87 o C= 5 * ( o F – 32) 9 o C= 5 * (188-32)/9 o C= 87 o C= 5 * ( o F – 32) 9 o C= 5 * (188-32)/9 o C= 87 1.31 O C 2.87 O C 3.122 O C 4.17 O C 1.31 O C 2.87 O C 3.122 O C 4.17 O C

3 Given Formula Solve: Given Formula Solve: If a total of 10 ounces of dry polymer are added to 10 gallons of water, what is the percent strength (by weight) of the polymer solution? 10 ounces of polymer (1lb/16 oz) =0.625 lbs % Strength = Chem lbs * 100 (# gal)(Water lb) + Chem, Lbs % Strength = 0.625 lbs *100 (10 gal) (8.34 lb/gal) + 0.625 lbs % Strength = 0.625 lbs * 100% 84.03 lbs Sol % Strength = 0.75% 10 ounces of polymer (1lb/16 oz) =0.625 lbs % Strength = Chem lbs * 100 (# gal)(Water lb) + Chem, Lbs % Strength = 0.625 lbs *100 (10 gal) (8.34 lb/gal) + 0.625 lbs % Strength = 0.625 lbs * 100% 84.03 lbs Sol % Strength = 0.75% 1.93% 2.2% 3.0.05% 4.0.75% 1.93% 2.2% 3.0.05% 4.0.75%

4 If 25 lbs of a 10% strength solution are mixed with 50 lbs of a 1% solution, what is the percent strength of the new solution? Solution #1= 20 lbs of 10% Solution #2 = 50 lbs of 1% % Str of mix = Chem lbs in Sol #1 (% str/100) + Chem lbs in Sol#2 (% str/100) *100 Total lbs Sol #1 in Mix + Total lbs Sol #2 in Mix % Str of mix = 25 lbs (10/100) + 50 lbs (1/100) *100 25 lbs Sol #1 + 50 lbs Sol #2 in Mix % Str of mix = 3 lbs *100 75 lbs Sol % Str of mix = 4 % Solution #1= 20 lbs of 10% Solution #2 = 50 lbs of 1% % Str of mix = Chem lbs in Sol #1 (% str/100) + Chem lbs in Sol#2 (% str/100) *100 Total lbs Sol #1 in Mix + Total lbs Sol #2 in Mix % Str of mix = 25 lbs (10/100) + 50 lbs (1/100) *100 25 lbs Sol #1 + 50 lbs Sol #2 in Mix % Str of mix = 3 lbs *100 75 lbs Sol % Str of mix = 4 % 1.4 % 2.0.4 % 3.1 % 4.3 % 1.4 % 2.0.4 % 3.1 % 4.3 %

5 The flow from a faucet filled up a 1 gallon container in 52 seconds. What was the gpm flow rate from the faucet? sec= 52 seconds = 52 sec/60sec/min=0.87 min Flow, gpm= Volume (gal) Time (min) Flow, gpm = Vol (gal) 0.87 (min) Flow, gpm = 1 (gal) 0.87 (min) Flow, gpm= 1.15 gpm sec= 52 seconds = 52 sec/60sec/min=0.87 min Flow, gpm= Volume (gal) Time (min) Flow, gpm = Vol (gal) 0.87 (min) Flow, gpm = 1 (gal) 0.87 (min) Flow, gpm= 1.15 gpm Given Formula Solve: Given Formula Solve: 1.0.02 gpm 2.0.87 gpm 3.1.15 gpm 4. 115 gpm 1.0.02 gpm 2.0.87 gpm 3.1.15 gpm 4. 115 gpm

6 How long (minutes) will it take to flush a 150 ft length of ¾ inch diameter service line if the flow through the line is 0.5 gpm? D= ¾ inch (1ft/12 inch) =0.06 ft; L= 150 ft; Rate=0.5 gpm A=0.785 (D)(D)(L)(7.48 gal/ft 3 ) Flow time, min= Pipe Volume (gal) ( 2 ) Flow Rate, gpm D= 0.75 in/12in/1ft=0.06 ft Flow= 0.785 (0.06 ft)(0.06 ft)(150 ft)(7.48 gal/ft 3 )( 2 ) 0.5 gpm Flow = 12.68 min D= ¾ inch (1ft/12 inch) =0.06 ft; L= 150 ft; Rate=0.5 gpm A=0.785 (D)(D)(L)(7.48 gal/ft 3 ) Flow time, min= Pipe Volume (gal) ( 2 ) Flow Rate, gpm D= 0.75 in/12in/1ft=0.06 ft Flow= 0.785 (0.06 ft)(0.06 ft)(150 ft)(7.48 gal/ft 3 )( 2 ) 0.5 gpm Flow = 12.68 min Given Formula Solve: Given Formula Solve: 1. 3.4 min 2.6.34 min 3.12.68 min 4. 111.8 min 1. 3.4 min 2.6.34 min 3.12.68 min 4. 111.8 min

7 A filter 20 ft by 25 ft receives a flow of 1940 gpm. What is the filtration rate in gpm/ft 2 ? L= 20 ft, W=25 ft; Rate 1940 gpm A=L X W Filtration Rate= (flow gpm) Area (sq ft) A= 20 ft X 25 ft = 500 ft 2 Filtration Rate= (1940 gpm) 500 (sq ft) Filtration Rate = 3.9 gpm/ft 2 L= 20 ft, W=25 ft; Rate 1940 gpm A=L X W Filtration Rate= (flow gpm) Area (sq ft) A= 20 ft X 25 ft = 500 ft 2 Filtration Rate= (1940 gpm) 500 (sq ft) Filtration Rate = 3.9 gpm/ft 2 1. 3.9 gpd/ft 3 2.3.9 gpm/ft 2 3.0.25 gpm/ft 2 4. 0.25 gpd/ft 3 1. 3.9 gpd/ft 3 2.3.9 gpm/ft 2 3.0.25 gpm/ft 2 4. 0.25 gpd/ft 3 Given Formula Solve: Given Formula Solve:

8 Given Formula Solve: Given Formula Solve: How many lbs of calcium hypochlorite (65% available chlorine) is required to disinfect a well if the casing is 18 inches in diameter and 220 ft long, with water level at 100 ft from the top of the well? The desired dose is 50 mg/L? Cl= 65/100 D=18 in=1.5 ft Well 220-100 =120 ft 220 ft - 100 ft = 120 ft water in well (0.785)(D 2 )(H) = ft 3 (0.785)(1.5 ft)(1.5 ft) (120 ft)(7.48 gal/ft 3 )= 1585 gal (50 mg/L)(.001585 MG)(8.34 lb/gal) = 1.01lbs 65/100 Cl= 65/100 D=18 in=1.5 ft Well 220-100 =120 ft 220 ft - 100 ft = 120 ft water in well (0.785)(D 2 )(H) = ft 3 (0.785)(1.5 ft)(1.5 ft) (120 ft)(7.48 gal/ft 3 )= 1585 gal (50 mg/L)(.001585 MG)(8.34 lb/gal) = 1.01lbs 65/100 1.2 lbs 2.1 lbs 3..02 lbs 4.0.65 lbs 1.2 lbs 2.1 lbs 3..02 lbs 4.0.65 lbs

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