This site uses cookies to improve your experience. To help us insure we adhere to various privacy regulations, please select your country/region of residence. If you do not select a country, we will assume you are from the United States. Select your Cookie Settings or view our Privacy Policy and Terms of Use.
Cookie Settings
Cookies and similar technologies are used on this website for proper function of the website, for tracking performance analytics and for marketing purposes. We and some of our third-party providers may use cookie data for various purposes. Please review the cookie settings below and choose your preference.
Used for the proper function of the website
Used for monitoring website traffic and interactions
Cookie Settings
Cookies and similar technologies are used on this website for proper function of the website, for tracking performance analytics and for marketing purposes. We and some of our third-party providers may use cookie data for various purposes. Please review the cookie settings below and choose your preference.
Strictly Necessary: Used for the proper function of the website
Performance/Analytics: Used for monitoring website traffic and interactions
Using active power components in advanced, isolated packaging addresses the high-power charging challenges by enabling higher power density and significantly reducing the efforts in thermal management in circuit designs. Utilities are investigating two vehicle-to-grid technologies. Sponsored by Littelfuse.
Today’s vehicle designs proliferate with sensitive electronics, including electronic controls, infotainment, sensing, battery packs, battery management, electric vehicle powertrains, and on-board chargers. These parts are needed to convert the AC voltage into the DC voltage to charge the vehicle’s on-board battery.
Today’s vehicle designs proliferate with sensitive electronics, including electronic controls, infotainment, sensing, battery packs, battery management, electric vehicle powertrains, and on-board chargers. These parts are needed to convert the AC voltage into the DC voltage to charge the vehicle’s on-board battery.
Transmission upgrades are vital to help build the net zero carbon grid of the future by integrating large-scale solar and wind farms into the nation’s powergrids. Power Down Dirty Peaker, Clean Up with Virtual Power Plants See stats on Peaker’s huge environmental impact and alternative VPPs offers.
Grid-Scale BatteriesGrid-scale energy storage systems include batteries, flywheels, pumped hydro, and compressed air energy storage. Nevertheless, grid-scale batteries currently dominate new energy storage capacity additions and typically feature some form of lithium ion technology. Merchant Model.
With a powergrid that has been notoriously unreliable in the past, India’s goal to transform formerly passive consumers into prosumers would seem an uphill battle. According to the EIA’s Stated Policies Scenario (STEPS), India will have 140 GW of battery capacity by 2040, the largest portfolio of batteries of any country in the world.
The Electric Reliability Council of Texas (ERCOT) is predicting a historic demand of over 80,000 MW , putting immense pressure on the state’s powergrid. We may not see an end to extreme heat, but we have proven strategies to mitigate the impact on our powergrids.
This heat feeds surging demand for electricity and increased strain on already taxed powergrids. These climate change linked trends are highlighting the growing need for distributed energy resource management systems (DERMS) that can manage the grid intelligently while quickly responding to the real-time needs of grid operators.
Thorben Fohrmann and Bernd Niemann from Siemens Energy explain how to ensure grid stability of powergrids built for central power plants in an age of increasing distributed generation. Listen to the audio version of ‘Safeguarding the stability of the grid’ , read by Philip Gordon. Batteries to ease congestion.
Despite the Covid-19 pandemic, 2021 was a record-breaking year for investment in the energy transition and the deployment of renewable power, battery storage, and sustainable transportation, according to the 2022 Sustainable Energy in America Factbook published by BloombergNEF (BNEF) and the Business Council for Sustainable Energy (BCSE).
The energy landscape worldwide has witnessed a remarkable shift toward a decentralized energy future with the proliferation of diverse DERs that include rooftop solar photovoltaics (PV), distributed battery deployments, electric vehicle (EV) charging systems, along with a growing list of smart appliances. Yet the U.S.
By harnessing advanced analytics, real-time monitoring, and optimization algorithms, AI-driven software platforms empower energy market participants to deliver immense value while adhering to the physical constraints of our powergrids. This enables efficient utilization of DERs while maintaining grid stability and minimizing costs.
This updated Low Carbon Prosperity Institute (LCPI) analysis examines the rate impacts of eliminating coal power, achieving an 80% clean energy standard by the year 2030, and a 100% clean energy standard by the year 2045. To download a PDF of this report click here. Background. Firstly, the cost to build renewable capacity is lower.
We organize all of the trending information in your field so you don't have to. Join 12,000+ users and stay up to date on the latest articles your peers are reading.
You know about us, now we want to get to know you!
Let's personalize your content
Let's get even more personalized
We recognize your account from another site in our network, please click 'Send Email' below to continue with verifying your account and setting a password.
Let's personalize your content