Distributed Energy Resources in Modern Energy Systems (Webinar)

Course Number: R-4026W
Credit: 4 PDH
Subject Matter Expert: Matthew Haupt, P.E., CEM, CPP
Scheduled: Tuesday, November 10, 2026, 10:00am - 2:10pm ET (9am CT, 8am MT, 7am PT)
Type: Live Interactive Webinar
Price: $239.90 $199.90 (Early Bird Discount Ends: 11/03/2026 at midnight) Use Reward Tokens and Save
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Overview

In Distributed Energy Resources in Modern Energy Systems (Webinar) , you'll learn ...

  • The role of distributed energy resources in creating resilient, flexible, and decentralized modern energy systems
  • The capabilities, limitations, and maturity levels of established, emerging, and future DER technologies
  • The integration of generation, storage, flexible loads, controls, and microgrids to support critical energy requirements
  • How to evaluate and select DER technologies based on resilience objectives, load characteristics, site constraints, outage duration, and operational needs

Overview

A PDHengineer webinar is just like being there.

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This webinar examines how decentralized generation, energy storage, controllable loads, and emerging technologies are reshaping modern electrical systems. The course introduces the defining characteristics of resilient DERs, including dispatchability, islanding capability, strategic siting, fuel security, quick ramping, grid services, decentralization, and operational flexibility. It explores established technologies such as solar photovoltaics, wind, battery storage, combined heat and power, fuel cells, hydrogen-enabled stationary power, and demand response, while distinguishing these resources from emerging and speculative technologies such as small modular reactors, wave energy, fusion, and space-based solar power.

Participants also examine how DERs support resilience, cost management, sustainability, local control, and critical-load continuity. Particular attention is given to microgrids, smart-grid technologies, outage duration, fuel strategy, and the importance of matching DER capabilities to site-specific objectives. The presentation concludes with a practical planning framework for evaluating DER portfolios and avoiding common mistakes involving technology maturity, capacity, controls, interconnection, operations, and maintenance.

Specific Knowledge or Skill Obtained

This course teaches the following specific knowledge and skills:

  • The defining characteristics of distributed energy resources and their role in modern electrical systems
  • The eight characteristics associated with resilient DERs, including dispatchability, islanding capability, strategic siting, fuel security, quick ramping, grid services, decentralization, and operational flexibility
  • The capabilities and limitations of solar PV, wind, battery storage, combined heat and power, fuel cells, hydrogen-enabled power, and flexible loads
  • The distinctions among commercially available, emerging, and speculative distributed energy technologies
  • The relationship between decentralization, local generation, grid connectivity, energy independence, and resilience
  • The use of smart-grid sensors, communications, automation, and controls to coordinate distributed resources
  • The integration of multiple DER technologies within microgrids to support islanding and critical-load continuity
  • The importance of outage duration, fuel availability, and load prioritization when developing resilient energy strategies
  • How to evaluate DER technologies according to dispatchability, duration, efficiency, emissions, complexity, and operations and maintenance requirements
  • How to apply a practical DER planning process based on project objectives, load characteristics, site constraints, technology functions, scenario modeling, and resilience requirements

PDH Credits

Webinars earn PDH credits for engineers in all jurisdictions, unless otherwise stated in the literature for a specific webinar, and are accepted as "live" courses by engineering boards with a requirement for "live" training.

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Board Acceptance
This course is applicable to professional engineers in:
Alabama (P.E.) Alaska (P.E.) Arkansas (P.E.)
Delaware (P.E.) District of Columbia (P.E.) Florida (P.E. Area of Practice)
Georgia (P.E.) Idaho (P.E.) Illinois (P.E.)
Illinois (S.E.) Indiana (P.E.) Iowa (P.E. - Live Course)
Kansas (P.E.) Kentucky (P.E.) Louisiana (P.E.)
Maine (P.E.) Maryland (P.E.) Michigan (P.E.)
Minnesota (P.E.) Mississippi (P.E.) Missouri (P.E.)
Montana (P.E.) Nebraska (P.E.) Nevada (P.E.)
New Hampshire (P.E.) New Jersey (P.E.) New Mexico (P.E.)
New York (P.E.) North Carolina (P.E.) North Dakota (P.E.)
Ohio (P.E. Timed & Monitored) Oklahoma (P.E.) Oregon (P.E.)
Pennsylvania (P.E.) South Carolina (P.E.) South Dakota (P.E.)
Tennessee (P.E.) Texas (P.E.) Utah (P.E.)
Vermont (P.E.) Virginia (P.E.) West Virginia (P.E.)
Wisconsin (P.E. Live Course) Wyoming (P.E.)
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PDH Credits

Webinars earn PDH credits for engineers in all jurisdictions, unless otherwise stated in the literature for a specific webinar, and are accepted as "live" courses by engineering boards with a requirement for "live" training.

More Info...

For more webinar information, click the following topics.

How Webinars Work      Webinars for Groups

Risk-Free Registration   Certificate of Completion

Try Before You Buy

A PDHengineer webinar is just like being there.

4 Easy Steps to Complete a PDHengineer webinar

 
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