Showing posts with label batteries. Show all posts
Showing posts with label batteries. Show all posts

Tuesday, October 20, 2020

Battery Chargning Research finds New Formula for Fast Charging Batteries

For those unfamiliar with battery charging, ANY battery change be charged quickly, not as fast as SuperCapacitors, but definitely in minutes. However, two major problems make this unwise.
  1. There is a potential for the battery to overheat and possibly explode.
  2. If battery does not explode, there is a good change the battery will be damage in a way that shortens the battery life.
Regardless, there are lots of tricks, including making changes in the battery formula. This article from koreabizwire.com outlines the results from the research.

A joint research team from Pohang University of Science and Technology (POSTECH) and Sungkyunkwan University announced Monday that they had developed EV battery technology that enables faster and more durable charging.

Thus far, decreasing the size of particles of electrode materials was the primary method to speed up charge and discharge from secondary cells or EV batteries.

The downside, however, was that this method reduced the density of energy in the cell.

The research team came up with a solution that enables quick charge and discharge without loss of energy density by creating an intermediate phase during the phase variation of charge and discharge, without having to reduce the size of electrode particles.


BU-209: How does a Supercapacitor Work?
https://batteryuniversity.com/learn/article/whats_the_role_of_the_supercapacitor

New Technology Charges EV Battery to 90 pct in 6 Minutes
http://koreabizwire.com/new-technology-charges-ev-battery-to-90-pct-in-6-minutes/172326
20 Oct 2020


New Spin on some Old Ideas: Solar-powered Benches with Zinc-bromide Batteries

Admittedly, we are suckers for technology that is "off grid". What's better than an outdoor solar-powered bench with lights. Here is a bit of information from manmonthly.com.au
Australian battery innovator Gelion Technologies has delivered a roll-out of its solar-powered benches at the University of Sydney, taking its battery technology to the pre-market stage. 
The Endure batteries that power the off-grid smart benches will be the first commercial installation for the company, which was spun-out from the University of Sydney by founder and chemist, Professor Thomas Maschmeyer. 
:: 
The Endure zinc-bromide batteries are optimised for stationary energy storage and could be used to power a range of off- or on-grid applications in the industrial, commercial, agricultural and residential sectors. They are especially suited to hot and remote environments given their high-temperature capability and low-fade characteristics, even if completely charged and discharged on a daily basis.
:: 
Gelion's robust and safe chemistry makes the expensive and complex auxiliary systems typically associated with other battery types unnecessary. As the Endure battery technology does not require air-conditioning, fire suppression or acid catchment areas, the overall costs and difficulty of the battery installation are substantially reduced. 
The Endure battery can be transported and stored with zero voltage, a significant advantage for logistics, safety and cost. The gel used in the Gelion platform has fire-retardant properties, making the batteries resistant to overheating and exploding and are therefore ideally suited for tough and remote environments, for example in off-grid and agricultural markets.
Images of the prototype system.

University technology spin-off delivers smart solar benches
https://www.manmonthly.com.au/news/university-technology-spin-off-delivers-smart-solar-benches/
October 19, 2020


Energy Storage & Sustainable Engineering with Lukas Swan and Jeff Dahn






Dr. Lukas Swan and Dr. Jeff Dahn (Dalhousie University) talk about their lifelong research in energy storage and the future of the industry. 

Jeff Dahn is recognized as one of the pioneering developers of the lithium-ion battery that is now used worldwide in laptop computers and cell-phones. Dahn's recent work has concentrated on increasing the energy density, improving the lifetime and lowering the cost of lithium ion batteries. 

Lukas Swan is the principal investigator at the Dalhousie University Renewable Energy Storage Laboratory with extensive experience and focused R&D on unique, elegant, and robust solutions to transition from fossil fuels to renewables. Swan's work encompasses variety of battery packs found in electric vehicles, freight trains, grid storage, remote islands, and more.

Dalhousie Renewable Energy Society is a student group that advocates for sustainability in engineering through hands-on experiences in renewable energy design projects and sustainability-focused events.







Sunday, October 18, 2020

POTUS Candidate Biden Clarifies his Position on a Green Future: Banning fossil fuels in 10 years 'not possible', talks solar power and batteries

 In longer article with much detail from the Thurday debate, Joe Biden was noted as giving more details - including the use of solar power and emerging battery technology, we quote

Building out transmission infrastructure is something Biden rarely, if ever, mentions on the campaign trail. It was one of several lengthy answers where the former vice president sought to demonstrate policy depth, as he did on education, tax policy, and even battery storage.

"The battery technology's increasing significantly so you're going to be able to have, for example, solar on your home and a battery the size," making a large box shape with his hands, "in your basement so when the sun doesn't shine for five days, you still have enough energy," Biden said.

::

"The difference between me and the new green deal is they say, automatically, by 2030 we're going to be carbon free. Not possible," Biden said.


Biden: Banning fossil fuels in 10 years 'not possible'
https://www.eenews.net/stories/1063716385
Adam Aton/16 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

The Groundbreaking Graphene SuperBattery and the Future of Electric Vehicles
https://www.azom.com/article.aspx?ArticleID=19711



https://www.skeletontech.com/skelcap-ultracapacitor-cells

 All SkelCap ultracapacitors are 2.85V and the Farads range from 1200F to 3400F.

Elon Musk confirms Tesla's new structural battery and cells will start in Europe

 From an article from electrek.com

Elon Musk has confirmed Tesla's new structural battery design, and 4680 cells are first going to Model Y, which will be produced at Gigafactory Berlin next year.

We already had a good idea it was happening since Musk teased that Tesla will introduce a "core structural design change" with Model Y produced in Germany, but it’s not confirmed.

The CEO confirmed on Twitter that the new structural battery pack technology will be first implemented in Berlin:

Berlin will use 4680 cell with structural battery pack & front & rear single piece castings. Also, a new paint system.

Lot of new technology will happen in Berlin, which means significant production risk. Fremont & Shanghai will transition in ~2 years when new tech is proven.

https://twitter.com/elonmusk/status/1313854912212750346

Oct 7, 2020

Tesla plans to first start Model Y production at Gigafactory Berlin during the second half of 2021.

 

Elon Musk confirms Tesla's new structural battery and cells are first going to Model Y at Giga Berlin
https://electrek.co/2020/10/07/elon-musk-tesla-structural-battery-cells-model-y-giga-berlin/
7 Oct 2020

 

Sunday, October 4, 2020

More media information on Airbus' Exit on Battery-powered Airplanes as it Moves to Hydrogen

CNN recently published Airbus' vision on future aircraft. Visually it is appealing.


This report adds to the previous reports. It is long and will let you read it and only quote this one paragraph, and several from another story from two weeks ago.

From the CNN story

The three ZEROe concepts program include a 120-200 passenger turbofan with a range of 2,000+ nautical miles, capable of operating transcontinentally and powered by a modified gas-turbine engine running on hydrogen. The liquid hydrogen will be stored and distributed via tanks located behind the rear pressure bulkhead.

Previously from flightglobal.com

Airbus is backing away from battery power in favour of pursuing hydrogen as a primary propulsion source for future aircraft development, over concerns that battery technology will not advance quickly enough to adapt to large airliners.

The airframer has unveiled three conceptual designs – two based on conventional turboprop and twinjet airframes, plus a third featuring a blended-wing fuselage design – as it commits to exploring a hydrogen-based zero-emission aircraft for potential service entry in 2035.

Speaking during a 21 September briefing, Airbus head of zero-emission aircraft Glen Llewellyn said that the airframer has seen a "decoupling" between the speed of battery technology progression and this 15-year timeframe.

 

 

 

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.


Sunday, November 16, 2014

Gigafactory sequel? California lobbies Elon Musk for second Tesla battery megaplant

http://www.bizjournals.com/sanjose/news/2014/09/23/gigafactory-sequel-california-lobbies-elon-musk.html

"""
Tesla Motors Inc.'s home state of California already saw the electric
car company's initial, hysteria-inducing $5 billion Gigafactory
project go to a lower-cost competitor after Nevada's $1.25 billion
incentive offer.

But Golden State lawmakers aren't giving up on the lure of several
thousand high-tech manufacturing jobs that easily.
"""

Saturday, October 25, 2014

New Li-ion anode achieves 70 percent charge in just two minutes



http://www.gizmag.com/quick-charge-li-ion-battery/34347/

A proof of concept nanotube-based anode for lithium-ion batteries has been developed by researchers at the Nanyang Technological University

Sunday, February 17, 2013

Chinese firm gets OK to buy failed U.S. battery maker A123

Chinese firm gets OK to buy failed U.S. battery maker

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, June 20, 2012

ANSYS Making Electric Vehicle Batteries More Practical And Efficient

http://www.virtualpressoffice.com:80/publicsiteContentFileAccess/860581/860581.html/?fileContentId=860581&fileName=860581.html&fromOtherPageToDisableHistory=Y
PITTSBURGH, June 20, 2012 /PRNewswire/ -- One year into a U.S. Department of Energy (DOE) funded project, ANSYS (NASDAQ: ANSS), General Motors LLC, the National Renewable Energy Laboratory (NREL) and ESim are leveraging engineering simulation technology to optimize electric and hybrid vehicle battery performance. The team achieved significant milestones during the past year in support of the DOE's Computer Aided Engineering for Electric Drive Vehicle Batteries (CAEBAT) project.
(Logo: http://photos.prnewswire.com/prnh/20110127/MM38081LOGO )
GM awarded ANSYS a subcontract to develop battery software tools that will help accelerate development of next-generation electric vehicles (EV). The project is a result of a competitive procurement through the DOE's NREL that was presented to GM last year (http://www.nrel.gov/news/press/2011/1472.html).
The main goal of the CAEBAT project is to incorporate existing and new battery models into engineering simulation software to shorten design cycles and optimize batteries for increased performance, safety and life span. The project is driving EV innovation.
The GM-ANSYS-ESim team's achievements over the past year include prototyping and validating three electrochemistry modeling approaches. The partners also prototyped a co-simulation feature, which blends battery multiphysics and system simulation technologies that enable engineers to shed unnecessary details and increase simulation efficiency without compromising the accuracy of the model.
"Traditionally, the EV battery industry depends mostly on the expensive and time-consuming process of design-build-test-break for prototyping and manufacturing these batteries," said Jan Aase, director of the vehicle development research lab at GM Global R&D. "However, the virtual development of engineered products has proven to be an effective way of evaluating many design alternatives. This specific team was selected because of their individual track records of success in their respective fields for providing reliable technologies that lead to efficient products."
The team is leveraging NREL's considerable experience in multiphysics, multi-scale modeling of lithium-ion battery systems. The resulting design tools will be made commercially available through ANSYS. GM plans to validate and apply the model to its electric vehicles in development.
"ANSYS is well known for providing reliable simulation technology to enable sustainable design across a wide range of industries, including automotive," said Sandeep Sovani, manager of global automotive strategy at ANSYS. "The recent demands from customers to make vehicles more practical coupled with government regulations are creating unprecedented innovation within the auto industry. ANSYS is proud to be at the forefront of this innovation surge by developing software tools that will accelerate the production of safe, reliable, high-performance and long-lasting lithium-ion batteries for EVs and make vehicles more fuel efficient and sustainable."
NREL expects that the resulting systems will become commercial offerings in about two years. This initiative is funded by DOE's Vehicle Technologies Program in the Office of Energy Efficiency and Renewable Energy.
About ANSYS, Inc.
ANSYS brings clarity and insight to customers' most complex design challenges through fast, accurate and reliable engineering simulation. Our technology enables organizations ― no matter their industry ― to predict with confidence that their products will thrive in the real world. Customers trust our software to help ensure product integrity and drive business success through innovation. Founded in 1970, ANSYS employs more than 2,200 professionals, many of them expert in engineering fields such as finite element analysis, computational fluid dynamics, electronics and electromagnetics, and design optimization. Headquartered south of Pittsburgh, U.S.A., ANSYS has more than 65 strategic sales locations throughout the world with a network of channel partners in 40+ countries. Visit www.ansys.com for more information.
ANSYS-G

Thursday, August 25, 2011

New energy storage device could recharge electric vehicles in minutes

Compared with supercapacitors and batteries, SMCs (with three different electrode thicknesses shown) offer both a high power density and high energy density. Image copyright: Jang, et al. ©2011 American Chemical Society

FROM:  http://www.physorg.com/news/2011-08-energy-storage-device-recharge-electric.html

(PhysOrg.com) -- It has all the appearances of a breakthrough in battery technology, except that it’s not a battery. Researchers at Nanotek Instruments, Inc., and its subsidiary Angstron Materials, Inc., in Dayton, Ohio, have developed a new paradigm for designing energy storage devices that is based on rapidly shuttling large numbers of lithium ions between electrodes with massive graphene surfaces. The energy storage device could prove extremely useful for electric vehicles, where it could reduce the recharge time from hours to less than a minute. Other applications could include renewable energy storage (for example, storing solar and wind energy) and smart grids.

The researchers call the new devices "graphene surface-enabled lithium ion-exchanging cells," or more simply, "surface-mediated cells" (SMCs). Although the devices currently use unoptimized materials and configurations, they can already outperform Li-ion batteries and supercapacitors. The new devices can deliver a power density of 100 kW/kgcell, which is 100 times higher than that of commercial Li-ion batteries and 10 times higher than that of supercapacitors. The higher the power density, the faster the rate of energy transfer (resulting in a faster recharge time). In addition, the new cells can store an of 160 Wh/kgcell, which is comparable to commercial Li-ion batteries and 30 times higher than that of conventional supercapacitors. The greater the energy density, the more energy the device can store for the same volume (resulting in a longer driving range for electric vehicles).
“Given the same device weight, the current SMC and Li-ion battery can provide an electric vehicle (EV) with a comparable driving range,” Bor Z. Jang, co-founder of Nanotek Instruments and Angstron Materials, told PhysOrg.com. “Our SMCs, just like the current Li-ion batteries, can be further improved in terms of energy density [and therefore range]. However, in principle, the SMC can be recharged in minutes (possibly less than one minute), as opposed to hours for Li-ion batteries used in current EVs.”
Jang and his coauthors at Nanotek Instruments and Angstron Materials have published the study on the next-generation devices in a recent issue of Nano Letters. Both companies specialize in nanomaterial commercialization, with Angstron being the world’s largest producer of nano graphene platelets (NGPs).
As the researchers explain in their study, batteries and supercapacitors each have their respective strengths and weaknesses when it comes to energy storage. While Li-ion batteries provide a much higher energy density (120-150 Wh/kgcell) than supercapacitors (5 Wh/kgcell), the batteries deliver a much lower power density (1 kW/kgcell compared to 10 kW/kgcell). Many research groups have made efforts to increase the power density of Li-ion batteries and increase the energy density of supercapacitors, but both areas still have significant challenges. By providing a fundamentally new framework for energy storage devices, the SMCs could enable researchers to bypass these challenges.

“The development of this new class of energy storage devices bridges the performance gap between a Li-ion battery and a supercapacitor,” Jang said. “More significantly, this fundamentally new framework for constructing energy could enable researchers to achieve both the high energy density and high without having to sacrifice one to achieve the other.”


The large surface areas of the SMCs’ electrodes enable rapid shuttling of large numbers of ions between electrodes, resulting in a fast recharge time. Image copyright: Jang, et al. ©2011 American Chemical Society
The key to the SMCs’ performance is a cathode and anode that contain very large graphene surfaces. When fabricating the cell, the researchers put lithium metal (in the form of particles or foil) at the anode. During the first discharge cycle, the lithium is ionized, resulting in a much larger number of lithium ions than in Li-ion batteries. As the is used, the ions migrate through a liquid electrolyte to the cathode, where the ions enter the pores and reach the large graphene surface inside the cathode. During recharging, a massive flux of lithium ions quickly migrates from the cathode to the anode. The electrodes’ large surface areas enable the rapid shuttling of large numbers of ions between electrodes, resulting in their high power and energy densities. As the researchers explain, the exchange of lithium ions between the porous electrodes’ surfaces (and not in the bulk of the electrode, as in batteries) completely removes the need for the time-consuming process of intercalation. In this process, the lithium ions must be inserted inside the electrodes, which dominates the charging time of batteries.
Although in this study the researchers prepared different types of graphene (oxidized, and reduced single-layer and multilayer) from a variety of different types of graphite, further analysis of the materials and configuration is needed for optimizing the device. For one thing, the researchers plan to further investigate the cells’ cycling lifetime. So far, they found that the devices could retain 95% capacity after 1,000 cycles, and even after 2,000 cycles showed no evidence of dendrite formation. The researchers also plan to investigate the relative roles of different lithium storage mechanisms on the device’s performance.
“We do not anticipate any major hurdle to commercialization of the SMC technology,” Jang said. “Although graphene is currently sold at a premium price, Angstron Materials, Inc., is actively engaged in scaling up the production capacity of graphene. The production costs of graphene are expected to be dramatically reduced within the next 1-3 years.”
More information: Bor Z. Jang, et al. “Graphene Surface-Enabled Lithium-Ion Exchanging Cells: Next-Generation High-Power Energy Storage Devices.” Nano Letters. DOI:10.1021/nl2018492 



Friday, March 25, 2011

Styrofoam to create incredibly fast-charging batteries

From Engadget: Styrofoam touches electrodes to create incredibly fast-charging wonderbatteries

Elon Musk's heart may have already given up on the humble battery, lusting after capacitors, but researchers at the University of Illinois have think there's life in the 'ol cells yet, creating batteries that charge and discharge in seconds. They've found a way to create electrodes using polystyrene beads as a sort of substrate, tiny spheres helping to set the porosity of either the nickel-metal hydride or lithium-manganese capacitor material. By adjusting the size and density of the bean bag innards the team was able to create an electrode porosity of 94 percent, which is just a few ticks short of theoretically ideal for exposing the maximum surface area of the electrode to the battery material. This results in extremely fast charges and discharges, the NiMH cell hitting 90 percent capacity in just 20 seconds and discharging in as quickly as 2.7 seconds. While we don't know just what kind of charging system the team was using to achieve this, even assuming a high-amperage stream of electrons this is still a remarkable feat. But, like most major advances there's a drawback: similar to Toshiba's SCiB batts the capacity of these cells is only about three quarters what it would be using normal battery construction, meaning you'd need roughly 25 percent more mass to get the same range in your ultra-fast charging EV of the future. That might just be a worthy trade-off.
ars technica
sourceNature Nanotechnology, University of Illinois