About
As utilities modernize grid operations, substations are getting smaller, more sealed, and more electronically dense—and that shift is straining the two things every substation depends on: its power electronics and its compute infrastructure. Compact designs cut footprint by roughly 70%, remove natural convection, and raise switching and loss density, pushing internal temperatures past what many film dielectrics can tolerate. At the same time, the demand for virtualization, automation, advanced monitoring, and cybersecurity is pushing conventional IT hardware into environments it was never designed to survive.

This session pairs two engineering perspectives on that single trend. Alec Laws (Senior PM for Capacitor Materials, Peak Nano) opens with the thermal reality facing capacitor banks—power factor correction, harmonic filtering, and DC-link buffering components that begin derating above roughly 85°C—and maps where substation growth is headed by type and geography, and what utilities are actually procuring today versus what remains a demonstration. Cale Stephens (VP, Engineering and Advanced Technology, Crystal Group) then turns to the compute side: what environmental hardening, standards compliance, power compatibility, and long-term maintainability actually mean for rugged, substation-grade servers, and how purpose-built compute reduces risk as utilities modernize.

Together, the two talks give attendees a full-stack view of what “grid-ready” now requires—from the dielectric inside the enclosure to the server managing it.
Agenda
  • Why sealed, compact, and buried substation designs raise internal temperature faster than they cut footprint.
  • Where substation growth is headed over the next decade, by type and geography.
  • What dielectric specifications capacitor banks need to survive high-density, inverter-dominated substations.
  • What defines truly “grid-ready” compute—environmental hardening, standards compliance, cybersecurity, and maintainability.
  • How to evaluate rugged servers for substation and edge deployment.
Presenters
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Alec Laws
Senior Product Manager for Capacitor Materials; Peak Nano
Alec Laws is Senior Product Manager for Capacitor Materials at Peak Nano, where he bridges technical expertise with direct engagement of manufacturers evaluating next-generation dielectric solutions. His background is grounded in rigorous lifetime testing of power electronic devices under high-temperature and high-electrical-load conditions. With a foundation in material science, Alec serves as the primary technical resource for manufacturers looking to integrate NanoPlex materials into their designs, translating material-level performance data into practical guidance for design and reliability engineering teams.
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Cale Stephens
VP, Engineering and Advanced Technology; Crystal Group
Cale joined the Crystal Group team in November 2024 as VP, Advanced Technology. In Cale’s previous roles, he seamlessly led large international technology teams tasked with identifying, exploring and maturing advanced technologies to transition to product development teams, product and system design and development for embedded electronics and systems, engineering process and tools transformation, and product lifecycle management solutions for alignment across enterprises, system modernization, support, and sustainment. He has worked with acquisition and end customers in the commercial and defense industries across the globe.

Cale holds a Master of Arts in Business Administration from the University of Iowa and a Bachelor of Science in Aerospace Engineering from Texas A&M University.
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Darrell Proctor
Senior Editor, POWER magazine
Darrell Proctor is an award-winning writer, editor, and communications professional, with years of experience as an energy industry analyst providing commentary and insight for the supply, demand, and financial aspects of energy commodities, including thermal and renewable power generation.
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