Written by students who passed Immediately available after payment Read online or as PDF Wrong document? Swap it for free 4.6 TrustPilot
logo-home
Document preview thumbnail
Preview 4 out of 108 pages
Exam (elaborations)

TEXAS WASTEWATER B EXAM QUESTIONS AND CORRECT VERIFIED SOLUTIONS LATEST UPDATE THIS YEAR – JUST RELEASED.pdf

Document preview thumbnail
Preview 4 out of 108 pages

Tap on AVAILABLE IN BUNDLE/PACKAGE DEAL to unlock free bonus exams – save more while you get what you need. TEXAS WASTEWATER B EXAM QUESTIONS AND CORRECT VERIFIED SOLUTIONS LATEST UPDATE THIS YEAR – JUST RELEASED.pdf Exam Coverage This Texas Wastewater Class B resource is designed for candidates preparing for the Texas Commission on Environmental Quality (TCEQ) Class B Wastewater Treatment Facility Operator licensing examination. TCEQ's current 2026 licensing information specifically identifies Class B as a wastewater treatment-facility operator license and provides separate preparation information for applicants. The resource emphasizes the practical knowledge needed to operate and monitor wastewater treatment facilities safely and effectively. Preparation focuses on treatment processes, process control, equipment operation, laboratory concepts, calculations, wastewater regulations, safety, troubleshooting, and the responsibilities associated with a licensed wastewater operator. Key Areas Covered Wastewater treatment fundamentals – wastewater characteristics, treatment objectives, influent and effluent characteristics, flow measurement, and treatment-process principles. Preliminary treatment – screening, grit removal, comminution, flow measurement, and protection of downstream equipment. Primary treatment – sedimentation, clarification, sludge removal, scum control, detention time, and process performance. Biological treatment – microorganisms, aerobic treatment, activated-sludge principles, aeration, oxygen requirements, loading, and biological process control. Secondary clarification – settling characteristics, return activated sludge, waste activated sludge, solids separation, and troubleshooting poor settling. Nutrient removal – nitrogen and phosphorus control, biological nutrient-removal principles, process conditions, and operational considerations. Disinfection – chlorine and other disinfection concepts, contact time, dosage, residuals, pathogen reduction, and safe chemical handling. Sludge and solids management – sludge thickening, digestion, dewatering, stabilization, handling, storage, and disposal. Effluent and process monitoring – sampling, laboratory measurements, process indicators, recordkeeping, and interpretation of operating data. Pumps and mechanical equipment – centrifugal pumps, positive-displacement equipment, valves, motors, lubrication, preventive maintenance, and troubleshooting. Electrical and instrumentation concepts – motors, controls, alarms, sensors, meters, automatic controls, and operational safety. Wastewater calculations – flow, loading, detention time, tank volume, hydraulic rates, chemical dosage, solids concentrations, percent removal, and related operator mathematics. Safety and emergency response – confined spaces, hazardous gases, chemical exposure, PPE, lockout/tagout concepts, biological hazards, and emergency procedures. Texas regulatory requirements – TCEQ licensing, wastewater treatment requirements, compliance responsibilities, monitoring, reporting, and operator obligations.

Content preview

Page 1 of 108


TEXAS WASTEWATER B EXAM QUESTIONS AND CORRECT
VERIFIED SOLUTIONS LATEST UPDATE THIS YEAR – JUST
RELEASED
TEXAS WASTEWATER B EXAM
MOSTLY TESTED AREAS
1. TCEQ statutes, rules, licensing requirements, facility categorization, operator
responsibilities, and regulatory compliance.
2. Wastewater permits, effluent limitations, monitoring, reporting, violations, sampling,
and permit-condition interpretation.
3. Wastewater characteristics, flow measurement, loading calculations, oxygen demand,
solids, nutrients, and process indicators.
4. Collection systems, sewer components, infiltration/inflow, materials, velocities,
maintenance, and design considerations.
5. Pumping systems, centrifugal pumps, positive-displacement pumps, pump curves,
motors, lift stations, and troubleshooting.
6. Preliminary and primary treatment, screening, grit removal, comminutors,
sedimentation, scum removal, and process control.
7. Biological treatment including activated sludge, trickling filters, RBCs, lagoons,
aeration, microorganisms, and process control.
8. Disinfection, chlorine demand, chlorine dosage, residual, dechlorination, alternative
disinfectants, and safety.
9. Sludge digestion, thickening, conditioning, dewatering, biosolids stabilization,
disposal, reuse, and troubleshooting.
10. Effluent disposal, advanced treatment, sampling, receiving waters, irrigation, process
calculations, and multi-step wastewater mathematics.



1.


A wastewater treatment operator notices that influent flow has increased substantially

following several hours of heavy rainfall. Which condition most likely explains the increase?

, Page 2 of 108


A. Reduced biological oxygen demand caused by dilution

B. Increased infiltration and inflow entering the collection system ✓

C. Increased sludge digestion caused by warmer wastewater

D. Reduced groundwater levels surrounding buried sewer lines


Rationale: Rainfall can introduce groundwater and stormwater through defective pipes, joints,

manholes, illegal connections, and other pathways, producing increased infiltration and inflow.


2.


During activated-sludge operation, which condition generally indicates that microorganisms are

receiving sufficient oxygen for aerobic treatment?


A. Dissolved oxygen remains measurable in the aeration basin ✓

B. Dissolved oxygen remains completely absent throughout aeration

C. Chlorine residual increases inside the biological reactor

D. Influent suspended solids become equal to effluent suspended solids


Rationale: Maintaining appropriate dissolved oxygen allows aerobic microorganisms to

metabolize biodegradable material effectively.


3.


A treatment plant receives 2.0 MGD containing 250 mg/L BOD. Approximately how many

pounds of BOD enter the plant daily?


A. 2,084 pounds

B. 3,125 pounds

, Page 3 of 108


C. 4,170 pounds ✓

D. 5,210 pounds


Rationale: Pounds per day = MGD × mg/L × 8.34. Thus, 2.0 × 250 × 8.34 ≈ 4,170 lb/day.


4.


Why is excessive infiltration and inflow considered undesirable for a wastewater collection and

treatment facility?


A. It always increases wastewater temperature dramatically

B. It can overload hydraulic capacity and unnecessarily increase treatment costs ✓

C. It eliminates the need for pumping stations

D. It permanently decreases groundwater elevations


Rationale: Excessive I/I increases hydraulic loading without necessarily increasing pollutant

loading, potentially exceeding collection or treatment capacity.


5.


A wastewater operator discovers that a permit specifies a maximum effluent concentration that

the facility exceeded during monitoring. What should be considered first?


A. Whether the measured result represents a potential permit violation ✓

B. Whether the treatment plant should immediately stop all flow

C. Whether the laboratory should automatically discard the sample

D. Whether the operator should alter the historical monitoring records

, Page 4 of 108


Rationale: Effluent results must be compared with applicable permit limits, and exceedances

may constitute violations requiring appropriate evaluation and reporting.


6.


Which wastewater characteristic represents the amount of oxygen microorganisms require to

biologically stabilize biodegradable organic matter?


A. Total suspended solids

B. Biological oxygen demand ✓

C. Chlorine residual

D. Alkalinity


Rationale: BOD estimates oxygen consumption associated with microbial degradation of

biodegradable organic material.


7.


A wastewater plant operator wants to determine whether excessive solids are being retained in

an activated-sludge system. Which measurement is especially useful?


A. Mixed liquor suspended solids ✓

B. Chlorine cylinder pressure

C. Influent temperature alone

D. Clearwell water level


Rationale: MLSS measures suspended biological and inert solids within the mixed liquor and is

fundamental to activated-sludge control.

Document information

Uploaded on
September 4, 2026
Number of pages
108
Written in
2026/2027
Type
Exam (elaborations)
Contains
Questions & answers
$32.99

Wrong document? Swap it for free Within 14 days of purchase and before downloading, you can choose a different document. You can simply spend the amount again.
Written by students who passed
Immediately available after payment
Read online or as PDF

Seller avatar
Reputation scores are based on the amount of documents a seller has sold for a fee and the reviews they have received for those documents. There are three levels: Bronze, Silver and Gold. The better the reputation, the more your can rely on the quality of the sellers work.
surepass
4.9
(395)
Sold
6707
Followers
23
Items
4021
Last sold
6 hours ago



Why students choose Stuvia

Created by fellow students, verified by reviews

Quality you can trust: written by students who passed their tests and reviewed by others who've used these notes.

Didn't get what you expected? Choose another document

No worries! You can instantly pick a different document that better fits what you're looking for.

Pay as you like, start learning right away

No subscription, no commitments. Pay the way you're used to via credit card and download your PDF document instantly.

Student with book image

“Bought, downloaded, and aced it. It really can be that simple.”

Alisha Student

Working on your references?

Create accurate citations in APA, MLA and Harvard with our free citation generator.

Working on your references?

Frequently asked questions