making changes

CenterPoint Energy releases details of resiliency plan

As part of the “Taking Action Now” section, more than 2,500 CenterPoint frontline workers and contractors will be taking a series of targeted actions to strengthen the grid and reduce the risk of outages. Photo via Getty Images

To improve resiliency and reduce the risk of outages from storms or hurricanes, CenterPoint Energy announced its Greater Houston Resiliency Initiative.

The initiative will include an “accelerated timeline to execute specific actions to strengthen electric infrastructure across Houston, and more than 40 critical actions in total to strengthen the electric grid, and improve the company's customer communications and emergency coordination before the next hurricane,” according to a news release.

As part of the “Taking Action Now” section, more than 2,500 CenterPoint frontline workers and contractors will be taking a series of targeted actions to strengthen the grid and reduce the risk of outages before the next major storm that includes installing stronger and more storm-resilient poles, trimming or removal of vegetation from lines, and installing 300 automated devices, which CenterPoint says can help reenergize certain lines and lead to less without power.

“We have heard the calls for change, and we are taking action now,” CEO and president Jason Wells says in a news release. “This first phase of our Greater Houston Resiliency Initiative will focus on a series of targeted actions to immediately strengthen our infrastructure across our communities. We know we have a lot of work to do to re-earn our customers' trust. This initiative reflects our commitment to become the most resilient coastal utility in the country.”

CenterPoint hopes to replace 1,000 wooden poles by Aug. 31 with stronger fiberglass poles that can withstand winds up to 132 MPH, and also plans to double its vegetation management workforce by the end of the month.

The accelerated timeline is in part with Governor Greg Abbot and the state, which represents the first phase of its Greater Houston Resiliency Initiative that will be executed in August. CenterPoint says it has already completed 15 of the actions and will be providing ongoing updates on its progress.

“We share the Governor's urgency around hurricane preparedness and increased resiliency of the grid and are committed to completing these critical actions on an accelerated timeline,” Wells said in a news release. “The actions we are taking this month are just the beginning. We want to exceed the Governor's and our customers' expectations and improve in every aspect of our emergency response – before, during, and after any future storm or hurricane."

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A View From HETI

Rice University scientists' “recharge-to-recycle” reactor has major implications for the electric vehicle sector. Photo courtesy Jorge Vidal/Rice University.

Engineers at Rice University have developed a cleaner, innovative process to turn end-of-life lithium-ion battery waste into new lithium feedstock.

The findings, recently published in the journal Joule, demonstrate how the team’s new “recharge-to-recycle” reactor recharges the battery’s waste cathode materials to coax out lithium ions into water. The team was then able to form high-purity lithium hydroxide, which was clean enough to feed directly back into battery manufacturing.

The study has major implications for the electric vehicle sector, which significantly contributes to the waste stream from end-of-life battery packs. Additionally, lithium tends to be expensive to mine and refine, and current recycling methods are energy- and chemical-intensive.

“Directly producing high-purity lithium hydroxide shortens the path back into new batteries,” Haotian Wang, associate professor of chemical and biomolecular engineering, co-corresponding author of the study and co-founder of Solidec, said in a news release. “That means fewer processing steps, lower waste and a more resilient supply chain.”

Sibani Lisa Biswal, chair of Rice’s Department of Chemical and Biomolecular Engineering and the William M. McCardell Professor in Chemical Engineering, also served as co-corresponding author on the study.

“We asked a basic question: If charging a battery pulls lithium out of a cathode, why not use that same reaction to recycle?” Biswal added in the release. “By pairing that chemistry with a compact electrochemical reactor, we can separate lithium cleanly and produce the exact salt manufacturers want.”

The new process also showed scalability, according to Rice. The engineers scaled the device to 20 square centimeters, then ran a 1,000-hour stability test and processed 57 grams of industrial black mass supplied by industry partner Houston-based TotalEnergies. The results produced lithium hydroxide that was more than 99 percent pure. It also maintained an average lithium recovery rate of nearly 90 percent over the 1,000-hour test, showing its durability. The process also worked across multiple battery chemistries, including lithium iron phosphate, lithium manganese oxide and nickel-manganese-cobalt variants.

Looking ahead, the team plans to scale the process and consider ways it can sustain high efficiency for greater lithium hydroxide concentrations.

“We’ve made lithium extraction cleaner and simpler,” Biswal added in the release. “Now we see the next bottleneck clearly. Tackle concentration, and you unlock even better sustainability.

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