Saturday, September 3, 2022
Graphene Aluminum Ion Battery
Friday, December 25, 2020
Thursday, November 19, 2020
Enhanced Flooded Batteries (EFB) might be a step toward All Electric Vehciles - at Least Worth a Look
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Exposed view of AGM Battery |
An article from trucker.com caught out eye:
[I]n testing at 50 deg. C, an EFB battery was able to absorb 52% more energy than a comparable AGM [Absorbed Glass Mat] battery before collapse. In practice, he explained further, an EFB will last 52% longer than an AGM in high temperature environments before thermal stability and water loss failure is realized. In addition, in over 18 weeks of testing, the total average capacity output of the EFB was 50% greater than an equally sized AGM battery.To be clear, rbbattery.com says an EFB is a rechargeable battery that contains a liquid electrolyte. This is what a is typically thought of as an automobile/truck lead-acid battery.
So an obvious question is: How is this different?
Reliable Power (rbbattery.com) describes it as such:
Exploded EFB battery
Enhanced flooded batteries have two main characteristics, namely scrim and acid circulator.The Scrim is a polyester element added between the plate and the separator. Its purpose is to prevent the erosion of mass by holding the reactive material in its place.
This results in an enhanced deep cyclic resistance and a superior charge acceptance.
The acid circulator prevents the stratification of the acid. This modification utilizes the inertial movements of the vehicle to maintain a constant circulation of the acid.
Due to the homogenous density levels of the acid, charge acceptance and overall battery life are improve
Interestingly, this is an article by a specialty website (trucker.com). As such, we will watch this technology unknown to us more closely.
SOURCES
Battery technology developments for heavy-duty truckshttps://www.trucker.com/technology/article/21147960/battery-technology-developments
Nov 17, 2020
EFB Battery Guide: Everything You Need to Know About EFB Technology
https://www.rbbattery.com/efb-battery-guide-everything-you-need-to-know-about-efb-technology/
April 29, 2019
Monday, November 9, 2020
Australia plans to build a "Giant" 300 Megawatt "battery" with the help of Neoen SA and Tesla
Australia is poised to construct one of the world's largest batteries, using Tesla's technology for lithium-ion batteries. The football-field sized battery will provide up to 300 megawatts of power output and 450 megawatts-hours of storage in a country that has been struggling to meet energy demands during skyrocketing power usage triggered by record-breaking temperatures. Last year, Australia suffered its hottest and driest year ever, with temperatures topping 121 degrees Fahrenheit last December.
The battery, known as the Victorian Big Battery Megapack, will be located in the state of Victoria, Australia's second most populous region. The move to a modernized power generator and storage system is seen as critical by Australian officials to meet growing demands that are overwhelming older power grids that suffered numerous blackouts in recent years.
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The battery is expected to have the capacity to power half a million homes for one hour.
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The Victorian Big Battery Megapack plant is expected to open next summer.
Australia constructing giant 300-megawatt battery
https://techxplore.com/news/2020-11-australia-giant-megawatt-battery.html
by Peter Grad - November 6, 2020
Friday, October 23, 2020
Austin-area's Statesman openly Speculates Tesla will add "battery production" to new Tesla Facilities
An Austin, Texas newspaper, the Statesman, is openly speculating that Tesla will add "battery cell production" to a new Tesla plant already in process. They base their speculation on an unreferenced statement by the CEO Elon Musk and a filing from the Texas Commission on Environmental Quality. They are not the first to speculate on Tesla and we expect they will not be the last.
To be clear, based on what the Statesman quote, the facility will "produce the battery packs" for vehicles. This means they will do the final assembly of the "battery pack" just before they are installed into vehicles. They will NOT produce batteries at that location.
Here are the relevant paragraphs from that news paperWithout naming Austin specifically, Musk also said Tesla will expand and improve its battery technology and battery cell production.
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An air-quality permit application filed with the Texas Commission on Environmental Quality indicates the facility would include capabilities for stamping, die casting, drive units assembly, cell manufacturing, battery pack assembly, general assembly and paint repair operations. It would also include support equipment such as boilers, emergency engines, a wastewater treatment plant and a cooling tower.
"The facility is proposing to operate a cell-manufacturing unit to produce the battery packs that are installed in the vehicle. The final product from this operation are the cells," the filing said.
Tesla's Austin-area site could include battery production
https://www.statesman.com/business/20201021/teslarsquos-austin-area-site-could-include-battery-production
by Kara Carlson - Oct 21, 2020 at 6:05 PM
Tuesday, October 20, 2020
INFICON announces New Leak-detection Technology for Batteries using Mass spectrometer and Software
If Inficon's pronouncements work as advertised, this will be a major shift in batteries of all type, but most importantly Lithium-Ion batteries. However, the scant details about this new technology make us cautious.
Here is a quote from metrology.news
The mass spectrometer and software used with the ELT3000 are critical to assuring the most precise measurement of leaks. The mass spectrometer is highly sensitive and selective, enabling it to provide reliable and repeatable measurements that follow international metrology standards such as those applied by the National Institute of Standards and Technology (NIST) in the United States or the German Institute of Calibration (DKD – Deutscher Kalibrierdienst). Furthermore, the ELT3000's simplified user interface provides an exact and correct measurement process even when used by a relatively unskilled operator.
Breakthrough EV Battery Tester Spots Dangerous Leaks
https://metrology.news/breakthrough-ev-battery-tester-spots-dangerous-leaks/
October 19, 2020
Monday, October 19, 2020
Battery researcher, Jeff Dahn, presents Results showing new Tesla Batteries having the Equivalent of over 2 Million Miles
Last year, Jeff Dahn showed the latest Li-ion battery technology can produce batteries that would last 1 million miles in electric vehicles. While the NEW test results are encouraging and very enlightening, the critique here is the same that is has been used against other battery - using test conditions that would be idealized conditions for the operation of any electric vehicle. In this case, using an electric vehicle for less than 30 miles per day.
To be clear, if an electric vehicle is used "less than 30 miles per day," then the battery will be "discharged between 25% to 50%" and the battery will show "very little to no battery degradation." Don't miss the side note at the bottom.
Here is the outline via electrek.co
A Tesla battery researcher showed updated test results pointing to batteries lasting over 15,000 cycles or the equivalent of over 2 million miles (3.5 million km) in an electric car.
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In a new presentation, Dahn discussed updated test results from this new battery, which he hopes becomes the new standard Li-ion battery against which new battery technologies benchmark themselves.
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Dahn now concludes that these batteries in a medium-range electric car would be able to last over 3.5 million km or over 2 million miles.
He also showed results based on different depths of discharge, which means to what percentage of capacity they are discharging the batteries before recharging them, and it showed the Li-ion batteries performing extremely well after up to 15,000 cycles so far:
Most impressively, the batteries show very little to no capacity degradation when they are discharged between 25% to 50% of their capacity, which is actually how most people use their cars.
On average, American drivers use their vehicles for less than 30 miles per day.
For example, with this battery in a Tesla vehicle with over 300 miles of range, you could use it to commute 30 miles a day and by charging, on average, from 70 to 80% every day, it would result in very little to no battery degradation.
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As usual, Dahn is not disclosing whether or when Tesla is implementing these changes, but with the company now making its own cells, I wouldn't be surprised if the Tesla 4680 cells feature some crazy longevity.
Side Note
An interesting side note in the article is that new Tesla vehicles will giant rovering batteries. Here is the quote:Interestingly, Drew Baglino, one of Tesla’s top engineering leaders, has recently mentioned that future Tesla vehicles will have bi-directional chargers enabling vehicle-to-grid or vehicle-to-everything technologies.
Tesla battery researcher unveils new cell that could last 1 million miles in 'robot taxis'
https://electrek.co/2019/09/07/tesla-battery-cell-last-1-million-miles-robot-taxis/
Sep. 7, 2019
Tesla battery researcher shows new test results pointing to batteries lasting over 2 million miles
https://electrek.co/2020/10/18/tesla-battery-test-results-over-2-million-miles/
Oct. 18, 2020
Sunday, October 18, 2020
Ateios receives $1.25 million in Series Seed funding for customizable, thin-film battery technology
Newberry-based startup Ateios has received $1.25 million in Series Seed funding, led by venture capital firm Good Growth Capital in South Carolina. The battery startup says it has developed the world's first customizable, thin-film battery.
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Ateios says its team has been working with Good Growth Capital virtually for the last six months to establish the relationship. Other investors include San Diego-based Keshif Ventures, Indianapolis-based Elevate Ventures, and HG Ventures, also in Indianapolis, among others. The company says its patent pending manufacturing technique for thin-film batteries makes its manufacturing process 10 times faster and one-fifth of the capital cost compared to current battery manufacturing.
Battery startup receives seed funding boost
https://www.wishtv.com/news/inside-indiana-business/battery-startup-receives-seed-funding-boost/
Oct 16, 2020
Friday, October 9, 2020
Another Supercapacitors, this time "Eco-Friendly" (saltwater)
An AZOMaterials article highlights a paper in Nature Communications. It is worth noting that the researchers label this storage a "hybrid supercapacitor." Here are a few paragraphs from that article
The hybrid supercapacitor can be charged and discharged as fast as a capacitor and can store nearly as much energy as standard batteries. In contrast to the latter, it can be charged and discharged a lot faster and for more number of times: while the service life of a lithium-ion battery is a few thousand cycles, a supercapacitor can handle about one million charging cycles.
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A specifically sustainable, but hitherto largely uninvestigated variant of such a hybrid supercapacitor comprises carbon and aqueous sodium iodide (NaI) electrolyte, with a negative supercapacitor electrode and a positive battery electrode.
Researchers Demonstrate Viability of Eco-Friendly Supercapacitors
https://www.azom.com/news.aspx?newsID=54747
8 Oct 2020
Prehal, C., et al. (2020) Persistent and reversible solid iodine electrodeposition in nanoporous carbons. Nature Communications. https://doi.org/10.1038/s41467-020-18610-6.
Four (4) startups working on EV batteries in India
Business World India outline some EV startups that the Indian government is throwing money into.
Aqueouss: Aqueouss came into existence in the year 2016. They have the reputation of being one of the leading manufacturers and exporters of a high-quality range of Li-ion batteries and LifeP04 batteries. ..
Grinntech: Founded in 2018, Grinntech works on Lithium-ion cells to pack technology and supplies Li-ion battery packs for multiple EV applications. ..
ION Energy: Founded in 2016 by a team of Ph.D. Engineers from Stanford, Penn State and IIT with decades of experience in advanced electronics and battery systems. ..
Lohum Cleantech Private Limited: Established in the year 2018, “Lohum Cleantech Private Limited” is a leading manufacturer of a wide range of Lithium-ion batteries, power banks, Lithium-Ion cells and Lithium-Ion battery charger. ..
Start-Ups Working On Battery Technology For EV Sector
http://bwdisrupt.businessworld.in/article/Start-Ups-Working-On-Battery-Technology-For-EV-Sector/09-10-2020-329646/
9 Oct 2020
Thursday, October 8, 2020
Graphene SuperBattery and Electric Vehicles
From an azom.com article
What is the SuperBattery?
With charging cycles numbering in the hundreds of thousands, the SuperBattery is a promising prospect for addressing the three foremost issues related to electric vehicle use: long charging times, battery deterioration and concerns about vehicle range.
According to reports, the SuperBattery is a hybrid system that merges standard lithium-ion cells and Skeleton Technology's proprietary ultracapacitor cells. The main factor that differentiates the SuperBattery from similar systems is the Curved Graphene material that is used to make the ultracapacitors. As with other ultracapacitors, the SuperBattery does not have enough energy density to be a total replacement for lithium-ion batteries.
More details in the article
https://www.azom.com/article.aspx?ArticleID=19711
All SkelCap ultracapacitors are 2.85V and the Farads range from 1200F to 3400F.
Monday, October 5, 2020
A Demonstration Battery Energy Storage System in Poland is Now Operational
The focus of the system is dubbed a hybrid battery energy storage system (BESS). The system, which combines high-output lithium-ion batteries with high-capacity lead-acid storage batteries, is charged with a wind farm. The Combined capacity is 6 MW.
Highlights and a link to the press release are below.
TOKYO, Oct 2, 2020 - (JCN Newswire) - New Energy and Industrial Technology Development Organization (NEDO) and its project partners Hitachi, Ltd. (Hitachi), Showa Denko Materials Co., Ltd. (Showa Denko Materials) and Sumitomo Mitsui Banking Corporation (SMBC) announced today that the Smart Grid Demonstration Project in Poland, aimed at the expansion of renewable energy with a hybrid battery energy storage system (BESS) located at the Bystra Wind Farm in northern Poland reached monitoring phase in June and full-scale demonstrative operation phase on Sept. 25.
...
This hybrid BESS is Poland's largest-scale battery energy storage system, which combines high-output lithium-ion batteries with high-capacity lead-acid storage batteries, a combination to obtain high performance at low cost. The test operation will validate and prove the effectiveness of the functionality for alleviating short-term fluctuations in wind power generation and for providing necessary reserve power for adjusting demand-supply balance (load balancing).
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The hybrid BESS introduced in this demonstration project consists of high-output lithium-ion batteries (1 MW-0.47 MWh) and high-capacity lead-acid storage batteries (5 MW-26.9 MWh) manufactured by Showa Denko Materials, the BESS-DCS (Distribution Control System) manufactured by Hitachi, which allows hybrid control of these two types of storage batteries, and the PCS (Power Conversion System), a 6 MW power converter manufactured by Hitachi ABB Power Grids Ltd. The system is the largest-scale storage battery system in Poland, offering a high level of performance at low cost.
Poland's Largest Hybrid Battery Energy Storage System Commence Full-scale Technology Demonstration
https://www.benzinga.com/pressreleases/20/10/a17776951/polands-largest-hybrid-battery-energy-storage-system-commence-full-scale-technology-demonstration
Oct 4, 2020
Saturday, October 3, 2020
DOE funds six Argonne National Laboratory battery manufacturing projects
In a widely reported press release by the DOE Argonne National Laboratory, the six projects are as such
Advanced brine processing to enable U.S. lithium independence
This research will create a more cost-effective process to produce lithium hydroxide ..
Industry partner: Albemarle/Ameridia (North Carolina).
Lead researcher: Jeff Spangenberger.
Hydrothermal production of single crystal Ni-rich cathodes with extreme rate capability
The hydrothermal process is a rapid potentially high-volume, tunable manufacturing method ..
Industry partner: Hunt Energy Enterprises (Texas).
Lead researcher: YoungHo Shin.
Continuous flow reactor synthesis of advanced electrolyte components for lithium-ion batteries
Argonne has developed a safer, more economical procedure for synthesizing trifluoropropylene carbonate (TFPC), ..
Industry partner: Koura Global (Massachusetts).
Lead researcher: Kris Pupek.
Continuous high yield production of defect-free, ultrathin sulfide glass electrolytes for next generation solid-state lithium metal batteries
The goal of this project is to identify the source of defects in sulfide glasses and ..
Industry partner: PolyPlus (California).
Lead researcher: Tim Fister.
Scale-up production of graphene monoxide for next-generation lithium-ion battery anodes.
Graphene monoxide (GmO), a performance-enhancing component for lithium-ion battery anodes with the potential to improve safety, low-temperature operation and ..
Industry partner: SafeLi LLC (Wisconsin).
Lead researcher: Trevor Dzwiniel.
Scaling halide-type solid electrolytes for solid-state batteries
This project aims to develop, integrate and validate innovative processing technologies for a new class of lithium-ion conductors with ..
Industry partner: Saint-Gobain Ceramics & Plastics (Pennsylvania).
Lead researcher: Zonghai Chen.
Commercially viable process for surface conditioning of high-nickel low-cobalt cathodes (led by Brookhaven National Laboratory)
This project will take innovations in battery materials processing and characterization developed and implemented by Argonne and Brookhaven and apply them to battery electrode manufacturing processes ..
Industry partner: C4V & Primet (New York).
Lead researcher: Zonghai Chen.
Tuesday, September 29, 2020
Connecticut debuts first electric buses (#cnn)
Story via KVIA
Gov. Ned Lamont and state officials in Bridgeport Monday unveiled Connecticut’s first two battery-electric buses.
They entered service under the state Department of Transportation’s (DOT) electric bus initiative and feature zero tailpipe emissions and will use 125 kilowatt-hour (kWh) electric bus chargers installed ...
The two buses displayed at Monday’s unveiling are the first of up to five, 40-foot battery electric buses and associated charging infrastructure that will be deployed at GBT. All of the buses will include quiet operation, carbon-fiber reinforced composite bodies ...
AI technology can predict vanadium flow battery performance and cost, China Claims
Per an article in techxplore.com
Recently, a research team led by Prof. Li Xianfeng from the Dalian Institute of Chemical Physics (DICP) of the Chinese Academy of Sciences proposed a machine learning-based strategy to predict and optimize the performance and cost of VFBs.
(..)
This work was published in Energy & Environmental Science on Sept. 22.
(..)
This machine learning model can predict the voltage efficiency, energy efficiency, and electrolyte utilization ratio of the VFB stack, as well as the power and energy cost of the VFB system with high accuracy.
Monday, September 28, 2020
More Evidence that China Cannot Sustain Their Technology Lurch
The article in evidence is from an opinion from India, which is most likely a paid propaganda piece. But the raw numbers alone in this article show that China cannot sustain what they are doing -- especially if they are cut off from the US. It is likely that officials in California have seen these programs and do not realized this is a disaster.
I've quote two sections from the piece on PHOTOVOLTAIC & ELECTRIC VEHICLES. Emphasis in quotes added.
PHOTOVOLTAIC
++ including refunds for interest on loans
China also offered many forms of support to photovoltaic manufacturers. For example, producers could access cash grants of between ¥200,000 and ¥300,000 ($30,900 to $46,300) available to high-tech startups that are less than three years old with no more than 3,000 employees. Large “demonstration projects” by manufacturers get grants of up to ¥1 million. The China Development Bank, offered low-interest loans of several billion dollars for major production plants. The bank reportedly provided $30 billion in low-cost loans to photovoltaic manufacturers in 2010. A number of Chinese provinces offered further incentives, including refunds for interest on loans and electricity costs, 10-year tax holidays, loan guarantees, and refunds of value-added taxes. To open its production plant in China, Massachusetts-based Evergreen Solar was reported to have received $21 million in cash grants, a $15 million property tax break, a subsidized lease worth $2.7 million, and $13 million worth of infrastructure such as roads.
ELECTRIC VEHICLES
++ aimed to have 100 million EV by 2020
China’s Ministry of Industry and Information Technology hasalready invested around ¥100 billion ($15.2 billion) by 2020 in subsidies and incentives over the past 10 years to support new-energy vehicle production. The government had set a target of selling 1 million electric vehicles a year by 2015 and aimed to have 100 million by 2020. The government also offered a $9,036 subsidy to buyers of electric cars and subsidized fleet operations in 25 cities. By 2018, China was manufacturing 1.2 million electric vehicles.
NOTE: It is unlikely they have met their 100 million EV goal.
The National Development and Reform Commission also identified lithium-ion cells and batteries as strategic industries, and several government programs subsidize China’s industry through investment and tax credits, loans, and research grants. To give its domestic industry an extra edge, the government essentially requires foreign battery companies to manufacture in China if they wish to sell there. Another major “Atmanirbhar” policy of China.
The Story Of China’s Rise To Technological And Economic Leadership
https://www.outlookindia.com/website/story/opinion-the-story-of-chinas-rise-to-technological-and-economic-leadership/361065
28 September 2020
Thursday, April 3, 2014
Aluminium-air battery can power electric vehicles for 1,000 miles, will come to production cars in 2017
Sunday, February 17, 2013
Chinese firm gets OK to buy failed U.S. battery maker A123
http://www.cbsnews.com/8301-202_162-57566519/chinese-firm-gets-ok-to-buy-failed-u.s-battery-maker/
These batteries are a vital industry in the immediate future. Letting this leave our shores will be a trillion dollar mistake. This isn't about this one company but the future of robotics and all vehicles. Not just cars but trucks, busses, trains and planes. UAVs and self driving autonomous systems of all forms depend on high density batteries.
Wednesday, January 6, 2010
Tiny Battery Traps Solar Power To Run An Entire House
A small disc could be the solution for the efficient and cheap storage of the sun’s energy. A Utah-based company has found a new way to store solar energy – in a small ceramic disk which can store more power for less. Researchers at Ceramatec have created the disk, which can hold up to 20-kilowatt hours, enough to power an entire house for a large portion of the day.
The new battery runs on sodium-sulfur — a composition that typically operates at greater than 600°F. “Sodium-sulfur is more energetic than lead-acid, so if you can somehow get it to a lower temperature, it would be valuable for residential use”, Ralph Brodd, an independent energy conversion consultant, says.
Ceramatec’s new battery runs at less than 200°F. The secret is a thin ceramic membrane that is sandwiched between the sodium and sulfur. Only positive sodium ions can pass through, leaving electrons to create a useful electrical current.
Ceramatec says that batteries will be ready for market testing in 2011, and will sell for about $2000. The disk has not yet been manufactured for residential use, but the creators have spoken optimistically about the possibility.
The convergence of two key technologies — solar power and deep-storage batteries — has profound implications for oil-strapped the US.
“These batteries switch the whole dialogue to renewables,” said Daniel Nocera, professor of energy at the Massachusetts Institute of Technology who sits on Ceramatec’s advisory board. “They will turn us away from dumb technology, circa 1900 — a 110-year-old approach — and turn us forward.”
Friday, October 9, 2009
Smaller And More Efficient Nuclear Battery Created
From: sciencedaily.com
Batteries can power anything from small sensors to large systems. While scientists are finding ways to make them smaller but even more powerful, problems can arise when these batteries are much larger and heavier than the devices themselves. University of Missouri researchers are developing a nuclear energy source that is smaller, lighter and more efficient.
“To provide enough power, we need certain methods with high energy density,” said Jae Kwon, assistant professor of electrical and computer engineering at MU. “The radioisotope battery can provide power density that is six orders of magnitude higher than chemical batteries.”
Kwon and his research team have been working on building a small nuclear battery, currently the size and thickness of a penny, intended to power various micro/nanoelectromechanical systems (M/NEMS). Although nuclear batteries can pose concerns, Kwon said they are safe.
“People hear the word ‘nuclear’ and think of something very dangerous,” he said. “However, nuclear power sources have already been safely powering a variety of devices, such as pace-makers, space satellites and underwater systems.”
His innovation is not only in the battery’s size, but also in its semiconductor. Kwon’s battery uses a liquid semiconductor rather than a solid semiconductor.
“The critical part of using a radioactive battery is that when you harvest the energy, part of the radiation energy can damage the lattice structure of the solid semiconductor,” Kwon said. “By using a liquid semiconductor, we believe we can minimize that problem.”
Kwon has been collaborating with J. David Robertson, chemistry professor and associate director of the MU Research Reactor, and is working to build and test the battery at the facility. In the future, they hope to increase the battery’s power, shrink its size and try with various other materials. Kwon said that the battery could be thinner than the thickness of human hair. They’ve also applied for a provisional patent.