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Energy Efficiency in HVAC: Strategies and Best Practices

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Energy Efficiency in HVAC: Strategies and Best Practices

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1 enrolled
1553 views
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2 hrs
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English
1553 views
Yogesh Kulkarni
Yogesh Kulkarni
  • 7-day money-back guarantee
  • Session recordings included
  • Certificate of completion

Why enroll

Mastering energy efficiency in HVAC systems can significantly enhance your career prospects in the HVAC and energy management industries. With this expertise, you'll be in high demand as an Energy Manager, Sustainability Specialist, or HVAC System Designer. Your knowledge will enable you to optimize system performance, reduce energy consumption, and improve indoor comfort. You'll be competitive for senior roles like Senior HVAC Engineer, Facilities Director, or Energy Consultant, and be well-positioned to pursue certifications like LEED AP, CEM, or BEAP. Unlock new opportunities and take your career to the next level with this in-demand skillset.

Is this course for you?

You should take this if

  • You work in HVAC or Energy & Utilities
  • You're a Mechanical Engineering / Environment & Sustainability (ESG) professional
  • You prefer live, instructor-led training with Q&A

You should skip if

  • You need a different specialisation outside Mechanical Engineering
  • You need fully self-paced, on-demand content

Course details

This comprehensive course covers the latest strategies and best practices for achieving energy efficiency in Heating, Ventilation, and Air Conditioning (HVAC) systems. Students will learn how to:

- Assess and optimize HVAC system performance

- Select and design energy-efficient equipment and components

- Implement smart HVAC controls and automation

- Apply energy recovery and renewable energy solutions

- Conduct energy audits and analyze energy usage patterns

- Develop and implement energy management plans

Course suitable for

Key topics covered

1.Introduction to Energy Efficiency in HVAC Systems
2.HVAC Energy Consumption in Commercial and Hotel Buildings
3.Energy Consumption in Old HVAC Systems
4.The Importance of Scheduled Maintenance and Retro-Commissioning, Old HVAC systems
5. Strategies to Improve Energy Efficiency in HVAC Systems
6.Research and Performance Degradation in HVAC Systems
7.Conclusion & Final Recommendations,

Opportunities that await you!

Career opportunities

Training details

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

Live session

Starts

Sun, Nov 3, 2024

5:30 AM UTC· your timezone

Duration

2 hours per day

Why people choose EveryEng

Industry-aligned courses, expert training, hands-on learning, recognized certifications, and job opportunities-all in a flexible and supportive environment.

What learners say about this course

Tanweer Khan
Tanweer Khan Engineer
May 3, 2026

More like a hands-on walkthrough than a skim, and it's paced for someone trying to connect theory to day-to-day work. The moment that stuck was Module 3's heat-load calc using the sample office floor plan, especially the psychrometric chart callout at 18:40 and why it breaks in prod conditions. As a grad, I kept mapping it to arch/infra habits from my repo and CI checklists; wished there was more on k8s-style ops analogies for hvacr controls. Still, it got across stuff I'd normally grab a senior between meetings to explain.

Sayyed Ammar
Sayyed Ammar Facility engineer
May 3, 2026

Design choices get explained instead of assumed, which helps bridge legacy mechanical thinking to newer controls and monitoring. The Chapter 4 psychrometrics chart walkthrough where they size a rooftop unit for a small retail bay stuck; mapping latent vs sensible felt like reading an infra arch doc with RPS constraints. I wasn't sold on the quick skim of commissioning and wished there was more on obs and handoff into prod, though the CI analogy for maintenance checks worked. it's moved from my watch list to something I've shared in Slack.

anand hatture
anand hatture Design engineer,
May 3, 2026

Section 3’s pump NPSH calc and curve matching saved me a redesign; mostly strong, wasn't sold on skimpy control valve sizing.

Aarya Bhalkikar
Aarya Bhalkikar
May 3, 2026

The way the abstractions got peeled back worked, though Module 4 dragged a bit and the labs assume you’ve already got the spreadsheet templates set up. As a new grad, I liked how the course maps HVAC concepts to things I recognize from software arch and infra. The psychrometric chart walkthrough in Section 2, especially the example adjusting supply air temp to hit comfort without spiking energy, stuck with me. Seeing COP tradeoffs discussed alongside real duct losses made the theory click. I kept thinking about obs too—logging temps vs actually instrumenting zones felt like prod vs local. It's not flashy, but it connects practice to why the numbers move. walking out with a clearer sense of how small tuning choices compound into optimization.

COMPLETED

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Questions and Answers

A: Getting this wrong can burn hours chasing nuisance trips and leaves the fan running at excess speed, pushing kW well above expectation. The first option avoids that by confirming the pressure signal is real before control tuning, then ensuring rotation is correct so the PID isn't compensating for a mechanical error, and only then closing the loop at the intended static setpoint so the VSD actually trims energy instead of hunting.

A: Picking wrong here leads to progressive fouling and airside pressure rise, forcing fans to draw more power year after year. The coated aluminum-on-copper arrangement preserves heat transfer while slowing salt attack, so coil effectiveness stays high and fan energy doesn't creep up due to corrosion-driven blockage.

A: Underestimating this can lock the platform into a permanent energy penalty that shows up as higher generator loading. A quick chain gets you there: a 2°C drop raises sensible load roughly proportional to delta-T on the coil, while fan power stays similar in constant volume, so most of the hit is cooling energy, landing in the mid-single-digit percent range rather than extremes.

A: Misreading this leads to disabling a major free-cooling path and locking in unnecessary compressor run hours. Recognizing it as an economizer explains the sensor placement and blade type, both aligned with modulating outside air to cut cooling energy when ambient conditions permit.