Math Final Exam Review Math for Water Technology MTH 082.

Slides:



Advertisements
Similar presentations
Jar Testing of Chemical Dosages
Advertisements

CVEG 3213 Hydraulics Lecture: Units and Quantities.
C. T Calculation Math for Water Technology MTH 082 (pg. 468) Math for Water Technology MTH 082 (pg. 468) “Required by Law”
PUMPING SYSTEMS BASICS
Math Basics I Area, Volume, Circumference, Converting Inches to Feet, Converting Flow, Converting Percent/Decimal Point, Decimal Point, Detention Time.
SPRAYER CALIBRATION Nov
Catfish Pond Construction Gary Burtle Animal & Dairy Science, UGA Tifton, GA.
Basic Hydraulics Density, Specific Gravity
Math Skills – Week 7. Class project due next week Sample final exams available on website Reducing fractions, rates, and ratios $500 huh? 17/30 hmmmmmmm.
7-1 6 th grade math Customary Units of Measurement.
Length Measurement of distance between two endpoints. Chapter 8.
Warm up True or False = 1 Explain Can you think of other ways to make 1 using a fraction bar?
1 Math Questions. 2 Length x Width x Water Depth = cubic feet.
Well Disinfection Math for Water Technology MTH 082 Lecture
Application Equipment and Calibration G. S. Manual - Chap. 7 Workbook - pp Application Calibration & Calculations
Groundwater Math Math for Water Technology MTH 082 Lecture 2 Well Drawdown, Well yield, Specific Capacity, Well Disinfection Course Reader Week 2 Chapter.
Filter Loading and Backwash Rates Well Yields and Chlorine Dosage in Waterworks Operation Math for Water Technology MTH 082 Lecture Chapter 4 & 8- Applied.
Math for Water Technology MTH 082 (pg. 468)
Flow From a Faucet, Flushing a Service Line, 90 th Percentile Lead and Copper Rule, Copper Sulfate Application Rates in Waterworks Operation Math for Water.
Basic Hydraulics of Flow (Pipe flow, Trench flow, Detention time)
Basic Math Conversions Math for Water Technology MTH 082 Fall 08 Chapters 1, 2, 4, and 7 Lecture 1 Math for Water Technology MTH 082 Fall 08 Chapters 1,
Basic Math Midterm Review Math for Water Technology MTH Math for Water Technology MTH
Math Midterm Review Math for Water Technology MTH 082.
Water Meter Accuracy, Percent Solution Strength and Determining Chlorine Dosage Solution Strength in Waterworks Operation Math for Water Technology MTH.
Basic Chemical Calculations, Determining Chlorine Dose in Waterworks Operation Math for Water Technology MTH 082 Lecture 1 Handout on water chemistry,
Metric and Non-Metric Conversion Problems.
SPRAYER CALIBRATION Nov
PHOSPHORUS REMOVAL FOR LAGOON OPERATORS WHY THE CONCERN OVER P.
Basics of Operator Math Your Name and contact info.
Calibration. Calibration Challenge #1 A label may call for 1 pint of pesticide to be applied over an entire acre (1 pint per acre). An acre is 43,560.
Bucket Chemistry 101 Bodie Pennisi, and Paul Thomas Extension Horticulture Specialists The University of Georgia.
CTC 450 Review Water Quality Water Distribution Systems.
D IMENSIONAL A NALYSIS. Is used to convert units of measurements. Units for Mass Weight-Pounds (lb) Weight-Ounces (oz)- 16 oz = 1 lb Grams (g) Kilo (kg)-
Bucket Chemistry 101 Bodie Pennisi, and Paul Thomas Extension Horticulture Specialists The University of Georgia.
Chem El Camino College Ch. 1: Measurements Chem El Camino College.
FACTOR LABEL METHOD.  In math you use numbers, in chemistry we use quantities.  A quantity is described by a number and a unit.  100 is a number :
RATIOS OR…TIME TO GRAB THOSE CALCULATORS…… PERCENTAGES Represent a portion of a whole (100) Used in compounding Used to calculate markup on prices, payment.
Measurement: Changing Customary Units
Warm Up’s.
Conversions 8th Grade Math.
Interactive Lesson Christina Mullikin Grand Canyon University TEC 542 September 22, 2010.
10 pt 15 pt 20 pt 25 pt 5 pt 10 pt 15 pt 20 pt 25 pt 5 pt 10 pt 15 pt 20 pt 25 pt 5 pt 10 pt 15 pt 20 pt 25 pt 5 pt 10 pt 15 pt 20 pt 25 pt 5 pt Length.
LecturePLUS Timberlake1 Chapter 1 Measurements Problem Solving Using Conversion Factors and SF’s.
m = 1 ___a) mm b) km c) dm g = 1 ___ a) mg b) kg c) dg L = 1 ___a) mL b) cL c) dL m = 1 ___ a) mm b) cm c) dm Learning.
Bucket Chemistry 101 Bodie Pennisi, Paul Thomas and Mel Garber Extension Horticulture Specialists The University of Georgia.
Instructors: Greg & Patresha Pearson, RN; CSUS-OWP Instructors © GREPA Health & Environmental – All rights reserved Drinking Water Workshops Essential.
1.Write down the number as a fraction. 16 in x= 1.
Chapter 8 Measurements Problem Solving Using Conversion Factors.
Available Water Flow Meter Size Typical flow depending on size
LecturePLUS Timberlake1 Chapter 1 Measurements Using Conversion Factors.
Length 1000x 1000x kiloeter (km) liter (m) mililiter (mm) 100x
Bucket Chemistry 101 Bodie Pennisi, Paul Thomas and Mel Garber Extension Horticulture Specialists The University of Georgia.
Unit Conversions use fractions/ratios to change the units of measurement We “cross-cancel” units Units are common factors on top and bottom Use Formula.
SATMathVideos.Net Water is pumped into an tank at 20 gallons per minute. The tank has a length of 10 feet and a width of 5 feet. If the tank starts empty,
 A technique for solving problems of conversions.
Unraveling the Mysteries Of Sprayer Calibration. Sprayer Calibration Herbicides powerful toolsHerbicides powerful tools –Accurate application essential.
Problem Solving fsUsing Conversion Factors
Unraveling the Mysteries
Using Customary units of Measurement
Direction water flow Notes: Occupancy type is PUBLIC The WCs (toilets) are public flush valve.
Some Equations and Applications for Drinking Water Operations
Find: Q gal min 1,600 1,800 2,000 2,200 Δh pipe entrance fresh water h
Question: You can run at a rate of 6 miles per hour. How many inches per minute is this?
Jar Testing of Chemical Dosages
Clarifier Calculations Prepared By Debremarkos Department of HWRE Water treatment unit.
Bucket Chemistry 101 Bodie Pennisi, Paul Thomas and Mel Garber
Bucket Chemistry 101 Bodie Pennisi, Paul Thomas and Mel Garber
Problem Solving fsUsing Conversion Factors
How to Use the Passive Treatment Sock
Dual Floc Tube Water Treatment System
Presentation transcript:

Math Final Exam Review Math for Water Technology MTH 082

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= 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= O C 2.87 O C O C 4.17 O C 1.31 O C 2.87 O C O C 4.17 O C

DRAW: Given: Formula: Solve: DRAW: Given: Formula: Solve: A pipe is 16 inch in diameter and 550 ft long. How many gallons does the pipe contain? D= 16 in or 1.33 ft, L= 550 ft V= 0.785(diameter 2 )(length) V=(0.785)(1.33 ft) 2 (550 ft) V= (0.785)(1.77ft 2 )(550 ft) V= 764 ft 3 V=(764ft 3 ) (7.48 gal/1ft 3 ) V= 5716 gallons D= 16 in or 1.33 ft, L= 550 ft V= 0.785(diameter 2 )(length) V=(0.785)(1.33 ft) 2 (550 ft) V= (0.785)(1.77ft 2 )(550 ft) V= 764 ft 3 V=(764ft 3 ) (7.48 gal/1ft 3 ) V= 5716 gallons D=16 in l=550 ft gallons gallons gallons gallons gallons gallons gallons gallons

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 = lbs *100 (10 gal) (8.34 lb/gal) lbs % Strength = lbs * 100% 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 = lbs *100 (10 gal) (8.34 lb/gal) lbs % Strength = lbs * 100% lbs Sol % Strength = 0.75% 1.93% 2.2% % % 1.93% 2.2% % %

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) * lbs Sol # lbs Sol #2 in Mix % Str of mix = 3 lbs * 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) * lbs Sol # lbs Sol #2 in Mix % Str of mix = 3 lbs * lbs Sol % Str of mix = 4 % 1.4 % % 3.1 % 4.3 % 1.4 % % 3.1 % 4.3 %

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: gpm gpm gpm gpm gpm gpm gpm gpm

If a pump discharges 10,350 g, in 3 hr and 45 minutes, how many gallons per minute is the pump discharging? #gal=?,Convert 3 hr=180 min+45 min=225 min Rate=10,350 gallons GPM(rate)= (gallons)/(minutes) gpm= (10,350 g) = 46 gpm (225 min) #gal=?,Convert 3 hr=180 min+45 min=225 min Rate=10,350 gallons GPM(rate)= (gallons)/(minutes) gpm= (10,350 g) = 46 gpm (225 min) 1.36 gpm 2.46 gpm gpm gpm 1.36 gpm 2.46 gpm gpm gpm

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= (0.06 ft)(0.06 ft)(150 ft)(7.48 gal/ft 3 )( 2 ) 0.5 gpm Flow = 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= (0.06 ft)(0.06 ft)(150 ft)(7.48 gal/ft 3 )( 2 ) 0.5 gpm Flow = min Given Formula Solve: Given Formula Solve: min min min min min min min min

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 gpd/ft gpm/ft gpm/ft gpd/ft gpd/ft gpm/ft gpm/ft gpd/ft 3 Given Formula Solve: Given Formula Solve:

Given Formula: Solve: Given Formula: Solve: A water is tested and found to have a chlorine demand of 6 mg/L. The desired chlorine residual is 0.2 mg/L. How many lbs of chlorine will be required daily to chlorinate a flow of 8 mgd? Demand= 6 mg/L, Residual = 0.2 mg/L, 8 mgd Dose= Demand + Residual Feed rate= (dosage)(flow rate)(conversion) Dose = 6 mg/L mg/L Dose= 6.2 mg/L Feed rate= (dosage)(flow rate)(conversion) FR= (6.2 mg/L)(8 mgd)(8.34 lbs/d) FR= 414 lb/d Demand= 6 mg/L, Residual = 0.2 mg/L, 8 mgd Dose= Demand + Residual Feed rate= (dosage)(flow rate)(conversion) Dose = 6 mg/L mg/L Dose= 6.2 mg/L Feed rate= (dosage)(flow rate)(conversion) FR= (6.2 mg/L)(8 mgd)(8.34 lbs/d) FR= 414 lb/d 1.50 lb/d lb/d 3.48 lb/d lb/d 1.50 lb/d lb/d 3.48 lb/d lb/d

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 =120 ft 220 ft 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)( MG)(8.34 lb/gal) = 1.01lbs 65/100 Cl= 65/100 D=18 in=1.5 ft Well =120 ft 220 ft 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)( MG)(8.34 lb/gal) = 1.01lbs 65/ lbs 2.1 lbs lbs lbs 1.2 lbs 2.1 lbs lbs lbs

What is the motor horsepower (mph) for a pump with the following parameters? Motor Efficiency = 89%Total Head=144 ft Pump Efficiency = 78% Flow=1.88 mgd GPM= (1.88mgd)(1,000,000gal/1M)(1day/1,440 min) = 1,306 gpm 89%=0.89 and 78% =0.78 Motor horsepower: (flow,gpm)(total head, ft) (3,960 )(Motor efficiency)(pump efficiency Motor horsepower: (1,306 gpm)(144 ft) (3,960)(0.89)(0.78) Motor horsepower: 68 mph GPM= (1.88mgd)(1,000,000gal/1M)(1day/1,440 min) = 1,306 gpm 89%=0.89 and 78% =0.78 Motor horsepower: (flow,gpm)(total head, ft) (3,960 )(Motor efficiency)(pump efficiency Motor horsepower: (1,306 gpm)(144 ft) (3,960)(0.89)(0.78) Motor horsepower: 68 mph mph 2.89 mph 3.68 mph mph mph 2.89 mph 3.68 mph mph

Feedback: Privacy Policy Feedback
Do Not Sell My Personal Information
About project: SlidePlayer Terms of Service

© 2025 SlidePlayer.com. Inc. All rights reserved.