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Colorado WW Operator D Exam Actual Exam QUESTIONS AND ANSWERS 2026 | Complete Solution Guide A+ Graded | Pass Guaranteed - A+ Graded

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Colorado WW Operator D Exam Actual Exam QUESTIONS AND ANSWERS 2026 | Complete Solution Guide A+ Graded | Pass Guaranteed - A+ Graded

Institución
Colorado WW Operator D
Grado
Colorado WW Operator D

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Colorado WW Operator D Exam Actual
Exam QUESTIONS AND ANSWERS 2026 |
Complete Solution Guide A+ Graded | Pass
Guaranteed - A+ Graded


Formula Reference Sheet

Table

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Formula Description


Volume (rectangular) V=L×W×D


Volume (circular) V = 0.785 × D² × H


Flow rate Q = A × V (Area × Velocity)


Detention time DT = Volume / Flow


Chemical dosage lbs/day = mg/L × MGD × 8.34


Chlorine dose Dose = Demand + Residual


Surface loading rate SLR = Flow / Surface Area


Weir loading rate WLR = Flow / Weir Length

, Formula Description


Pump horsepower HP = (Flow × Head) / (3960 × Efficiency)


Pressure to head Head (ft) = PSI × 2.31


mg/L to ppm 1 mg/L = 1 ppm (in water)


Temperature conversion °C = (°F - 32) × 5/9

Conversions:

• 1 cubic foot = 7.48 gallons

• 1 MGD = 1,000,000 gallons/day = 694.4 gpm

• 1 acre-foot = 325,851 gallons

• 1 psi = 2.31 feet of head

• 8.34 lbs = weight of 1 gallon of water



Section 1: Basic Mathematics and Calculations

Questions 1-15



Question 1 Convert 2,500 gallons to cubic feet. (1 ft³ = 7.48 gallons)

A. 18.7 ft³ B. 334.2 ft³ [CORRECT] C. 18,700 ft³ D. 334.2 MGD

Correct Answer: B

Rationale:

• Concept: Unit conversion between gallons and cubic feet.

• Step-by-Step Solution:

o Volume in ft³ = 2,500 gallons ÷ 7.48 gal/ft³

o 2,500 ÷ 7.48 = 334.224... ≈ 334.2 ft³
• Why B is correct: Proper division conversion factor.

, • Why A is incorrect: This is 2,500 ÷ 133.7 (using gallons per cubic foot reversed) or
calculation error.

• Why C is incorrect: This multiplies instead of divides (2,500 × 7.48).

• Why D is incorrect: MGD (million gallons per day) is a flow rate unit, not volume.

Practical Application: Tank volumes are often calculated in cubic feet but reported in gallons.
Always verify units on pump curves and tank specifications.



Question 2 A rectangular sedimentation basin is 40 feet long, 20 feet wide, and 10 feet deep.
What is the volume in gallons when filled to 8 feet depth?

A. 6,400 gallons B. 47,872 gallons [CORRECT] C. 59,840 gallons D. 478,720 gallons

Correct Answer: B

Rationale:

• Concept: Volume calculation with partial depth.

• Step-by-Step Solution:

o Volume in ft³ = Length × Width × Depth = 40 ft × 20 ft × 8 ft = 6,400 ft³

o Volume in gallons = 6,400 ft³ × 7.48 gal/ft³ = 47,872 gallons

• Why B is correct: Correct calculation using actual water depth (8 ft), not total basin
depth.

• Why A is incorrect: This is the volume in cubic feet, not converted to gallons.

• Why C is incorrect: This uses full 10 ft depth: 40 × 20 × 10 × 7.48 = 59,840 gallons.

• Why D is incorrect: Decimal error—likely multiplied by 74.8 instead of 7.48.

Practical Application: Always use actual operating depth, not total basin depth, unless
calculating maximum capacity.



Question 3 A pipeline has a diameter of 12 inches and water flows at 3 feet per second. What is
the flow rate in gallons per minute (gpm)?

A. 105.6 gpm B. 211.5 gpm C. 1,058 gpm [CORRECT] D. 1,270 gpm

Correct Answer: C

Rationale:

, • Concept: Flow rate calculation using Q = A × V.

• Step-by-Step Solution:

o Convert diameter to feet: 12 inches = 1 foot, radius = 0.5 ft

o Area = π × r² = 3.1416 × (0.5)² = 0.7854 ft²

o Or use formula: Area = 0.785 × D² = 0.785 × 1² = 0.785 ft²

o Flow in cfs = 0.785 ft² × 3 ft/sec = 2.355 ft³/sec

o Convert to gpm: 2.355 ft³/sec × 7.48 gal/ft³ × 60 sec/min = 1,057.3 gpm ≈ 1,058
gpm

• Why C is correct: Correct application of Q = A × V with proper unit conversions.

• Why A is incorrect: This omits the 60 seconds/minute conversion (gives cfs × 7.48
only).

• Why B is incorrect: This uses diameter instead of radius squared, or uses 6 inches as
radius.

• Why D is incorrect: This might use 12 inches as 1.5 feet or similar error.

Practical Application: Velocity measurements with flow meters require pipe diameter
knowledge. Always verify pipe ID, not nominal diameter.



Question 4 A water treatment plant treats 3.5 MGD. The alum dosage is 8 mg/L. How many
pounds of alum are needed per day?

A. 29.2 lbs B. 233.5 lbs [CORRECT] C. 2,335 lbs D. 29,190 lbs

Correct Answer: B

Rationale:

• Concept: Chemical dosage calculation using pounds formula.

• Step-by-Step Solution:

o Formula: lbs/day = mg/L × MGD × 8.34

o lbs/day = 8 mg/L × 3.5 MGD × 8.34

o lbs/day = 8 × 3.5 × 8.34 = 28 × 8.34 = 233.52 lbs ≈ 233.5 lbs

• Why B is correct: Proper application of dosage formula.

• Why A is incorrect: This might be 8 × 3.5 = 28 (missing 8.34 factor).

Escuela, estudio y materia

Institución
Colorado WW Operator D
Grado
Colorado WW Operator D

Información del documento

Subido en
20 de febrero de 2026
Número de páginas
37
Escrito en
2025/2026
Tipo
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