<link href="https://fonts.googleapis.com/css2?family=Caveat:wght@500;700&family=JetBrains+Mono:wght@400;500;600&display=swap" rel="stylesheet" /> Skip to main contentEngineering Courses, Mentoring & Jobs | EveryEng
Mastering HVAC Control Systems: A Comprehensive Online Course banner

Mastering HVAC Control Systems: A Comprehensive Online Course

Mastering HVAC Control Systems: A Comprehensive Online Course banner
Live online Beginner

Mastering HVAC Control Systems: A Comprehensive Online Course

4(69)
4 enrolled
1097 views
COMPLETED
1 hrs
Mar 21, 2026 · 1:00 AM
English
1097 views
Yogesh Kulkarni
Yogesh Kulkarni
  • Session recordings included
  • Certificate of completion
  • Foundational Learning
  • Access to Study Materials
Volume pricing for groups of 5+

Why enroll

Mastering HVAC control systems can catapult your career to new heights in the HVAC industry. With this expertise, you'll be in high demand as a Control System Specialist, HVAC System Designer, or Building Automation Manager. Your knowledge will enable you to design and optimize complex control systems, improving energy efficiency and indoor comfort. You'll be competitive for senior roles like Senior HVAC Engineer, Facilities Director, or Energy Manager, and be well-positioned to pursue certifications like LEED AP or ASHRAE certification. Unlock new opportunities and take your HVAC career to the next level with this advanced skillset.

 

Is this course for you?

You should take this if

  • You work in Oil & Gas Upstream or Aerospace
  • You're a Chemical & Process / Mechanical Engineering professional
  • You prefer live, instructor-led training with Q&A

You should skip if

  • You need a different specialisation outside Chemical & Process
  • You need fully self-paced, on-demand content

Course details

This in-depth online course covers the fundamentals and advanced concepts of HVAC control systems, including design, installation, and operation. Students will gain a comprehensive understanding of:

- Control system components: sensors, actuators, controllers, and valves

- Control strategies: temperature, humidity, pressure, and flow control

- System design: configuring and optimizing control systems

- Installation and commissioning: best practices and troubleshooting

- Energy efficiency and optimization techniques

- Advanced control strategies: predictive maintenance, fault detection, and energy management

Course suitable for

Key topics covered

1. Introduction to HVAC Control Systems (15 minutes)
Brief overview of HVAC control systems and their importance.


2. Control System Architecture (10 minutes)
Understanding the basic structure of control systems.


3. Sensors and Instrumentation (10 minutes)
A quick overview of key sensors and instruments used in HVAC control.


4. Control Strategies (15 minutes)
Introduction to common control strategies, such as on-off and PID.


5. Energy Management (10 minutes)
Strategies for optimizing energy efficiency using control systems.


6. Troubleshooting and Maintenance (15 minutes)
Overview of essential troubleshooting techniques and maintenance practices.


7. Q&A and Resources (15 minutes)
An opportunity for participants to ask questions and receive information about further resources for in-depth learning.

Opportunities that await you!

Career opportunities

Training details

This is a live course that has a scheduled start date.

Live session

Starts

Sat, Mar 21, 2026

1:00 AM UTC· your timezone

Duration

1 hour per day

COMPLETED

Mar 21, 2026 · 1:00 AM

Questions and Answers

A: Governing principle: For most airflow elements, ΔP ∝ Q² at constant density. At 60% flow, ΔP = 0.8 × (0.6)² ≈ 0.29 in.w.g., which is what the controller should be tuned around. Option B traps engineers who remember the trend but forget the square relationship and default to linear scaling.

A: Governing principle: Contract documents set the technical baseline, not evolving consensus standards. Even if 135-2020 is better, acceptance is against the cited edition unless the contract allows automatic updates or a deviation is logged. Option B catches engineers who assume standards float forward by default.

A: Governing principle: A failed-low feedback in a closed-loop controller drives the actuator to compensate. The VFD increases speed to recover DP, which can overshoot system limits before any secondary protection acts. Option B tempts those thinking in terms of demand loss rather than control response.

A: Governing principle: Chloramines aggressively attack certain metals even at moderate temperature. In pool environments, sensor drift and early failure track corrosion chemistry, not pressure or heat limits. Option D catches engineers used to field wiring issues but ignores the dominant airborne species.