Showing posts with label BESS. Show all posts
Showing posts with label BESS. Show all posts

Monday, May 13, 2013

SolarCity Sees Energy Storage ‘Viable’ Within 10 Years, CEO Says

SolarCity Corp. (SCTY), the solar power provider led by billionaire Elon Musk, will complete about 100 energy storage systems for customers this year and plans to expand as costs decline, according to its chief executive officer.



“It’ll be a viable product in the next ten years,” SolarCity CEO Lyndon Rive said today in an interview in San Francisco. “We don’t know yet how big the next phase is going to be, but this is a long term investment, full stop,” he said. “We will solve the storage issue.”

The San Mateo, California-based company is installing 8 kilowatt-hour battery packs provided by Tesla Motors Inc. (TSLA) and combining them with energy management systems that allow for remote monitoring. Storage will be crucial to balance the U.S. electric grid as solar expands from 1 percent of total generation capacity today, according to Rive.

“The criticism that solar gets is that it’s intermittent, that you can’t depend on it, but at 1 percent it still doesn’t matter,” Rive said. “Once you get to 20 percent, it starts to matter,” he said.

Rooftop solar systems that SolarCity provides don’t have the same risk of dropping off in large amounts from the grid, though that is an issue with larger utility-scale systems, according to Rive.

“The fear of intermittency actually comes from large central solar,” he said. “We can forecast very accurately what power you’re going to produce based on the weather conditions that we see,” he said.

SolarCity has 395 energy storage “pilots” under contract, according to a filing March 27.

Musk is Tesla’s CEO as well as SolarCity’s chairman and it’s largest shareholder. Rive is his cousin.



Source: Bloomberg

Thursday, April 25, 2013

PV storage market to reap $19 billion by 2017


From US$200 million in 2012, the photovoltaic storage market is projected to be worth $19 billion in 2017, mainly driven by the German energy storage subsidy, reports IMS Research. While Germany is set to lead the residential sector, Asia and the Americas will dominate the utility-scale market.



From just $200 million in 2012, the U.K.-based research firm expects the photovoltaic storage market to be worth $19 billion in 2017. Meanwhile, it forecasts that global photovoltaic storage installations will, on average, boast over 100% annual growth for the next five years, to reach a cumulative capacity of nearly 7 GW.

Overall, Germany is expected to lead the residential and commercial sector; however, with an anticipated 2 GW by 2017, Asia and the Americas will dominate the utility-scale sector.

While Germany is forecast to install almost 2 GWh of effective storage capacity in its residential sector during the next 5 years, markets like the U.K., Italy, North America, Australia and other smaller European markets are set to account for the remaining around 3 GW of expected capacity by 2017, PV analyst Sam Wilkinson tells pv magazine.

IMS Research primarily attributes the anticipated rapid growth to Germany’s new incentive program, scheduled to come into effect on May 1. "Because domestic electricity rates now significantly exceed residential feed-in tariff rates, there is strong interest in increasing self-consumption in residential PV systems to maximize the financial return of the system," comments Wilkinson in a statement.

Wilkinson adds that 8 MW of photovoltaic systems with storage were installed in Germany last year. "The introduction of the widely anticipated subsidy will quickly accelerate uptake by making the lifetime cost of PV systems with storage cheaper compared to those without it."

According to IMS Research figures, the subsidy for a typical German household with a photovoltaic system including storage will bring electricity costs down to under $25,000 over a 20 year period, compared to just under $30,000 without it.




Specifically, the company calculates that the typical electricity costs for a German household with no photovoltaic system will be around $50,000 over a 20 year period; compared to just over $25,000 for a household kitted out with a 5kW photovoltaic system (inc. FITs at the current rate); just under $30,000 for a household with a 5kW photovoltaic system (inc. FITs at the current rate) with storage, but without a storage subsidy; and just under $25,000 for a household with a 5kW photovoltaic system (inc. FITs at the current rate), with storage and a storage subsidy.

As aforementioned, Germany is expected to be the dominant market player in the residential and commercial sector, and is likely to account for nearly 70% of all storage installed in residential photovoltaic systems in 2013. However, its leadership is set to be challenged by other regions as they develop opportunities.

"We do expect that other countries will follow Germany’s example and adopt similar subsidy schemes to promote the use of PV energy storage – particularly where there is a case for promoting self-consumption and grid stability," Wilkinson says.

"Even without subsidies though, storage can be an attractive proposition in conjunction with residential PV systems in some markets, such as the U.K., where the market is forecast to begin growing quickly in 2014, when the price of batteries is predicted to have fallen sufficiently to make PV storage financially viable."

Regarding utility-scale photovoltaic storage solutions, IMS Research forecasts that the market will add over 2 GW annually by 2017. Asia and the Americas are expected to lead the way.

"Storage is also predicted to be used in larger systems, in order to improve the integration of PV into the grid, increase the financial return of PV systems and meet the increasingly demanding connection requirements that some countries are imposing on intermittent electricity sources like PV," writes the company in the statement.

According to the "Grid Scale Battery Storage Market 2013-2023" study recently released by Global Information Inc. and Visiongain, demand for grid energy storage will reach $113.5 billion in 2017, up from $2.8 billion. "Representing close to a 5,694 percent increase in capacity, grid storage will reach 185.4 gigawatt-hours (GWh) of capacity compared to 3.2 GWh in 2012," says the report in a statement released.

Meanwhile, it says the global grid scale battery storage market is forecast to reach $1.17 billion in 2013.



Source: PV Magazine

Tuesday, April 23, 2013

Germany to Support Solar Energy Storage with New 25 Million EUR Subsidy

Just saw this article this morning in the last days tweets & thought:  This good news comes at a good time because my DIY ESS Kit is almost ready ! ;-)




April 18th, 2013

NEW YORK CITY -- Germany will subsidize consumers' purchases of battery systems to store power from solar panels through a 25 million-euro ($32.6 million) program to promote wider use of renewable energy, according to the German Solar Industry Association.
The government will pay 660 euros a kilowatt of storage capacity under a program that begins May 1, the trade group said today in a statement. The systems will also stabilize the flow of electricity into the grid.

Correction: "The government will pay 660 euros a kilowatt of storage capacity"  : Energy is measured in kWh : they meant here 660 EUR of incentive per kWh, which is prettty good !




Storage is a policy-driven market, Brian Warshay, an analyst for Bloomberg New Energy Finance in New York, said today in an interview.

“I’d expect for the incentive, which is set at a pretty healthy rate for most systems, to be used up quickly,” he said.

Editor's Note: For more information about this subsidy and the energy storage market, see our recent in-depth articles here:


Solar Storage Market Set for Rapid Growth

March 28th, 2013

LONDON -- News that Germany plans to launch a €50 million solar storage incentive is the latest indicator that solar storage's time has come.

Under the program, German owners of solar systems with storage will be entitled to a low-interest loan from KfW, the state-owned bank, and a repayment allowance from the Ministry of Environment, which will cover 30 percent of the battery system's cost. The program will apply to newly-installed PV facilities with storage and solar plants with storage systems installed after December 31, 2012. Systems under 30 kW will be eligible for the subsidy.

Although lack of emissions trading revenue for the Energy and Climate Fund is said to be currently delaying the program, it is predicted that it will soon move forward, possibly by the originally specified date of 1 May.

This incentive will make almost any emerging energy storage technology capable of tying into a PV array cost-effective, according to Brian Warshay of Lux Research. Subsidizing a storage system's energy capacity rather than its power capacity, as does California's Self Generation Incentive Program (SGIP), is a more logical approach, says Warshay, because the solar shifting application requires more energy than power. Germany's incentive will benefit technologies capable of longer discharge duration such as molten salt and flow batteries rather than most lithium-ion batteries, Warshay said.

Research firm NanoMarkets believes the growth of the solar storage market is driven by declining costs for PV modules and reductions in government support for solar power. Without attractive subsidies, self-consumption can be more valuable than selling power and storage becomes desirable. NanoMarkets predicts that demand for storage in the residential and commercial sectors will soon show rapid growth.

A Growing Need

According to IMS Research's recent survey of over 400 purchasers of PV inverters including distributors, installers, integrators, EPCs and wholesalers, the need for energy storage in solar systems is growing fast. Although energy storage is still a young market, nearly one third of respondents said they expect to be using storage in over 40 percent of the PV systems they install by 2015.

Survey respondents from Germany, Italy and the UK identified energy storage as more critical than any other requirement for future PV inverters. When IMS asked what the main driver for the adoption of energy storage would be, the most common response was a reduction in battery prices helping to drive system prices down and make storage financially viable.

IMS found that over 60 percent of respondents believed that an acceptable increase in system price for the inclusion of energy storage would be between 10 percent and 29 percent; however, almost 30 percent of respondents indicated they would be willing to pay even more.

Grid Benefit

According to the 2013 Storage Study from the Fraunhofer Institute, carried out for German solar trade body BSW-Solar, battery storage systems used in conjunction with a PV system can increase the absorption capacity of existing power grids by up to 66 percent.

“The positive effects that decentralized photovoltaic battery systems have on the power grid cannot be overstated,” said Dr Christof Wittwer, head of the Intelligent Energy Systems department at the Fraunhofer Institute for Solar Energy Systems.

“The success of the Energiewende depends on the use of solar batteries as grid-assistive short-term storage capability,” said Jörg Mayer, managing director of the German Solar Industry Association. “What we need now is the initial spark for the development of decentralized battery storage systems, so that we can quickly achieve progress in terms of technology, and above all in terms of costs. With an increasing production of batteries, solar storage systems will quickly come down in price, thus enabling savings in grid expansion.”

Move Fast

Nanomarkets' report entitled Storage 2013 predicts that the global market for solar storage systems will be worth US$2 billion by 2018. Dr. Eicke Weber, head of the newly-established German Energy Storage Association, has called this a “conservative estimate”. Italian energy consultancy BIP said the battery market will reach at least 9 GW of capacity by 2020 from today's 270 MW.

And the commercial sector's uptake is growing in line with the residential sector's. Nicola Cosciani, head of energy storage at Italian industrial battery maker Fiamm, says heavy power users such as cement and steel makers are looking at solar storage. “Germany and Italy will be explosive markets for residential storage and big energy users are also starting to show an interest. This is a game changer,” he said in a Reuters interview.

When implemented, Germany's incentive will result in a short but rapid boom in distributed storage, Warshay predicts. “Developers with any hopes of addressing this market opportunity will need to move quickly into Germany to establish partnerships that will help decipher the bureaucratic requirements necessary to benefit from this new policy,” he said.

Technology growth

Considerable technological innovation is expected in energy storage, yet traditional lead-acid batteries will be the main revenue generator over the next decade, accounting for more than $950 million in revenues in 2018, research firm Global Information (GI)'s Solar Storage 2013report has found. Lead-carbon technology will improve the margins on this type of battery, generating another $135 million by 2018, the report said.

There is also growing interest in the use of lithium batteries in the solar sector; GI expects these batteries to generate $235 million by 2018. Chinese solar energy storage firms seem likely to focus on lithium batteries since China is a major source of lithium. "




Energy Storage Series: Why We Need It, And Why We Don't 

April 4th, 2013

New Hampshire, USA -- It's almost a cliché that there's a "friendly debate" pitting utilities against renewable energy. But concerns on the utility side of the table are real: intermittency, potential destabilization at the feeder level, non-baseload, and peaks in generation that don't necessarily match demand peaks. Today's power infrastructure involves unpredictability in both supply and demand that is extremely difficult to manage. The choice comes down to two options: over-generate so as to not undersupply, or find ways to better match up supply and demand.

"To balance the grid and keep it in a stable condition, you're going to need energy storage," said Doug Staker, VP of business development for Demand Energy. "Every customer interaction, every presentation, one question I'm getting now: what can you do to help me with storage?" He said there's a "huge lack of information and education" about whether energy storage is ready and in what form (e.g. which technology to use, and whether it's centralized vs. distributed) "People really want to understand how to integrate energy storage into a variety of applications."

As more renewable energy comes into the power mix, "high-response energy storage seems to be the way," added Chris Wheaton, CFO of Energ2. "We think storage is an equivalent leg of the chair" alongside solar and wind energy generation.

"In general energy storage is a good thing — except that it is not cost-effective for bulk energy storage," counters Mahesh Morjaria, VP of PV technology applications at First Solar. If the goal is to manage variable energy generation, Morjaria suggests, then the whole grid can act as energy storage, if managed properly. "When part of the resource is not available or generating, other resources are able to provide the load," Morjaria said. "That's the beauty of it, in a more cost-effective manner." Storage too can provide grid flexibility, agreed Morjaria, but it's simply not yet cost-effective enough.

What's It For?

Discussing large-scale energy storage depends on what problems are being solved. "People forget what energy storage is: an enabler," explained Erick Petersen, VP of marketing at Demand Energy. It's not that grid-scale energy storage *can't* be deployed — it's a question of what do you want do with it, whether it's achieve true grid stability, or flatten loads to reduce peak congestion, or provide ancillary services. "The benefits stack up the highest as you move the edge of the grid," he said. "People get lost in the debate whether it should be grid-scale, which battery is right — the answer is, 'All of it,' depending on the problem you're trying to solve."

Reliability and Flexibility

Germany is widely accepted as having a much more robust incorporation and management of renewable energy generation. But even there, many believe the nation's energy overhaul means storage is a matter of not if but when. Wheaton thinks "the jury's still out whether Germany will have an energy storage program." Rick Luebbe, CEO of Energy2, points to a Sandia Labs calculation that problems start emerging at a 20 percent renewables mix at which point storage has to enter the discussion.

Germany has been able to accommodate roughly 22 percent of a renewables mix, mostly variable wind and solar — and they're doing it by leveraging flexibility in their grid "without going out and acquiring a whole bunch of storage," Morjaria points out. Similarly, California's 33 percent renewables target won't rely on building massive amounts of bulk energy storage. In both cases, "they're figuring out other ways to achieve grid flexibility," he said.

In California the difference between trough and peak load on a summer day can be 20 gigawatts, Staker pointed out. "People talk about the [grid] having flexibility and capability to absorb excess generation — and that's true," he said. "But more system saturation becomes more problematic," once you have to start doing things like firming up wind power with gas peakers that by definition want to run in a steady-state condition and not vary up and down to plug intermittent gaps.

Demand Response

"Demand response has been the cure-all for all kinds of system challenges," Staker said. He recalled an effort from Baltimore Gas & Electric with a demand/response plan to reimburse customers for turning off their air conditioners for a few hours during critical peak events. But the system was one-way and radio-based, and closed-loop — no way to really know who responded. So an urban secret spread: wrap your AC in tinfoil to block the signals, and cash in the reimbursement. That, he said, illustrates a problem with demand/response: "at the end of the day, customers can just opt out."

If response time is the target, hydro and possibly compressed air make sense, balancing on a 24-hour cycle, says Luebbe. But either of those options are selective based on geography. For shorter-timeframe needs, electrochemical storage comes into play, with multiple technologies to choose from (lead/acid, lithium-ion, flow, molten, ultracapacitors, hybrid configurations). For balancing solar power into a facility or a grid, lead-acid batteries "will probably be just fine," he said, while flow and molten batteries will emerge at point-of-use to balance intermittent power from a local grid (e.g. cell-phone towers).

Still, Morjaria thinks the costs for energy storage still aren't low enough to make it feasible for this time-shifting. Even if there's a significant difference in the cost of every kilowatt-hour that can be fed into and pulled out of the grid, adding costs associated with energy storage eliminates those potential gains. "In California they're talking about PPAs on the order of $85/MWh [$0.08/kWh]. That's what they expect from solar energy," he points out. (Note that a recent deal in New Mexico was for less than six cents/kWh, and ironically for a First Solar project.) Storing energy and pumping it out adds to that cost — Morjaria ballparks it at $0.20/kWh — which quickly snuffs out any price arbitrage.

Frequency Regulation

Morjaria did acknowledge one area where energy storage is indeed viable: frequency regulation. Constantly adjusting power input to offset increased/decreased demand and keep frequency constant, responding very fast with charging and deploying energy in very short cycles — "that's where energy storage has an interesting role to play," Morjaria said. A123 and Beacon Power have explored that in NY ISO and other places, FERC has tweaked regulation to support it, and "it seems to be making some sense," Morjaria noted. But that isn't necessarily a practice that depends on variable generation from renewables.

Frequency response can stretch out some power output at the expense of some quality, but power coming from renewable sources "is simply not high enough for most independent power producers and transmission to handle," said Chris Wheaton, CFO of Energ2.

What It Costs

The big question in energy storage, Wheaton says, boils down simply: what does it cost to build more generation (to oversupply), vs. how to store and manage energy? Today it's more "economically rational" to build more generation, whether it's solar or wind or even coal, he noted. As energy storage technology costs come down — and as there is better understanding and calculation of externalized costs, such as societal impacts — "we will see those lines cross, and more utilities will go to energy storage as a more economical means to serve the grid."

Fundamentally, economics determines the decision of over-generation vs. energy storage; right now "either energy storage is not cheaper, or the payback is not enough to shift over," noted Luebbe. As the cost (dollars per kilowatt-hour) come down and energy storage costs intersect with those in over-generation, "then everyone will do it because it's economically the logical thing to do."

Part of that economic determination, Luebbe says, has to define, manage and regulate the externality of emissions. That will play out differently in different countries and economies, he noted — how will many countries hit the Kyoto Protocol targets without big changes to grid infrastructures, and how is oxygen interpreted as contributing to emissions calculations. Even the presence of some pilot stage energy storage projects "tells me we're pretty close" to that cost intersection, Luebbe said. "



Source: Renewableenergyworld.com








Monday, March 11, 2013

LiFePO4 CALB CA180FI cells voltage check

My LiFePO4 CALB CA180FI cells are still in balance after 3 weeks of use

I just did one time a bottom balance at the very beginning and after many charge/discharge cycles (full or not), they remain in balance as expected


Nothing complicated, no BMS, no shunt balancers, you DO NOT need any of this to keep your LiFePO4 cells working and in good condition

NEDAP - PowerRouter to use Lithium-ion batteries in 2013

Along with the release of their lastest 4.0 software version, NEDAP announced they will be using Lithium-ion (we do not know the exact chemistry) batteries for their Energy Storage Sytem called PowerRouter, in sometime in 2013






It had been based on Lead Acid / AGM Batteries since its creation and this move seams to be logical since we all know that lead acid life is not that good in terms of cycles and energy density. The move to Li-ion is a good thing, provided that no weird BMS stuff is deteriorating the cells ...





Source: NEDAP PowerRouter



Wednesday, March 6, 2013

LiFePO4 24V 3A Chargers received from Hong Kong

These are tpics taken few weeks ago when I received the first 3 low cost LiFePO4 chargers from Hong Kong. They will allow a slow charge at 100W each, but multiplied by the number of chargers (6 in total soon, as I ordered another set of 3) it will charge at around 600W and I can switch them ON & OFF one by one, adjusting the use of "green" power going into my batteries






AC 110-220V, they give 30V at 3A DC and have a tiny fan (I did not see until I got them)

Wednesday, February 20, 2013

California Sets 50MW Target for Grid Energy Storage

Moving past “paralysis by analysis,” the CPUC asks Southern California Edison to find 50MW of grid energy storage by 2021




California has just set a big new target for energy storage on the grid -- 50 megawatts of it, to be exact.

That’s how much energy storage capacity the California Public Utilities Commission (CPUC) is asking Southern California Edison to procure over the next eight years, according to a final decision issued Wednesday. It’s not a lot, compared to the total of 1,400 to 1,800 megawatts CPUC is asking the massive Southern California utility to procure between now and 2021 -- but it's still among the first, if not the first, state regulatory rulings that put grid storage at center stage.

The new decision also certifies energy storage as “preferred resources,” alongside energy efficiency, demand response and distributed generation resources, in California's Energy Action Plan, which tells utilities in which order they’re to buy the power and energy resources they need. Wednesday’s decision sets aside an additional 600 megawatts of capacity for SCE to obtain from such preferred resources.

All in all, it’s a “much-needed market signal that energy storage will be considered as a key asset class to help California address its long-term local reliability and environmental quality needs,” according to Janice Lin, executive director of the California Energy Storage Alliance (CESA). CESA’s member list includes some heavyweights in batteries (LG Chem, Panasonic, Saft), as well as two ice-energy air-conditioning storage players that happen to have significant operations in California: Calmac and Ice Energy.

Wednesday’s CPUC ruling comes amidst a years-long process to set energy storage requirements for the state as it grapples with the challenges of its renewable portfolio standard (RPS) ambitions. California wants to grow its share of grid power from renewable resources (mostly intermittent wind and solar, though some baseload geothermal and biomass as well) from about 20 percent today to 33 percent by decade’s end.

That’s going to introduce huge new stability problems for the grid. Energy storage expert Ed Cazalet has predicted that California could need up to 4 gigawatts of energy storagecapacity to help reach the 33 percent RPS, with both centralized, utility-scale wind power and distributed solar power as key factors to manage.

California Assembly Bill 2514, passed in 2010, called for a study of the state’s needs for grid-scale storage, but didn’t set any hard numbers on how much. The CPUC took up the issue last year, and it’s still in process.

Southern California Edison, along with big fellow state investor-owned utilities Pacific Gas & Electric and San Diego Gas & Electric, have opposed specific procurement mandates. SCE wrote in a CPUC filing that mandates “only serve to increase the return on investment of private storage developers,” while distorting the market for energy storage technologies not yet competitive in purer market terms.

There’s no doubt that many forms of energy storage -- batteries, in particular -- remain too expensive to compete against grid power. Where batteries have been deployed is in trouble spots on the grid: far-off distribution substations where batteries are cheaper than putting in new transmission lines to handle rare peak loads, or islanded grids (like Hawaii) facing an influx of on-again, off-again wind and solar power.

Of course, utilities also don’t want to be forced to engage with storage resources they don’t control -- and it’s likely they will need to be forced to open the market to third-party storage projects that work in the context of broader energy markets. Where storage is an intelligent alternative to transmission or generation build-out, and can help integrate renewables, it should be deployed. Of course, cheap natural gas also makes the status-quo approach of using peaker plants a potentially attractive option, though not so much in California, where clean air rules are the toughest in the nation.

CPUC Commissioner Michel Peter Florio, who authored Wednesday’s decision, called it a testament to the state's need to "move beyond paralysis by analysis with respect to energy storage" -- an apparent sign of impatience with the slow approach being taken to AB 2514 implementation. We’ll see if the CPUC applies similar logic to decisions for PG&E and SDG&E.

California is home to several large-scale energy storage project funded by Department of Energy smart grid stimulus grants. PG&E is building a 300-megawatt, 10-hour compressed air energy storage (CAES) system in the Central Valley, and Southern California Edison has been working with A123 Systems on an 8-megawatt, 32 megawatt-hour lithium-ion batterywarehouse of sorts in the Tehachapi mountain range. Both are aimed at stabilizing and integrating the state’s wind power resources into the grid.

We’re also seeing some examples of distributed energy storage emerge, though far smaller in scope and just getting started, with everything from backyard or garage batteries to backup solar installations (Tesla and SolarCity, Silent Power and Hanwha) to substation-scale grid balancing units in the 1-2 megawatt range (Greensmith and SDG&E).



Monday, February 18, 2013

LiFePO4 ESS with New Control Board & New CALB CA180FI - First Test

After working on this new Control Board the whole week end, I could finally test it for the first time sunday afternoon, and it worked :-)

Wiring of the AC breakers for Chargers and GTI (Grid Tie Inverters)


No more plugs, but simply wires


GTI side standard connector


I could not find any cable clamping devices, so I used these wooden spatulas from the office coffee machine and they work great 

Wiring the DC part, from the battery pack to the Tyco Kilovac contactor, and then to the GTI stack

Top view

CALB CA180FI Battery pack terminals: Thick cable & small Control Board supply cable

It works and pushes 1000W into my home grid


At night, I still had to rework on my programming for the Arduino to handle Charge & Discharge ...

and this is Wattson Anywhere graph showing generation in green

Friday, February 15, 2013

Yeehaaaa ! My 8 CALB CA180FI Cells arrived this morning ! :-)

I still can not believe they are here finally ... I had been thinking and waiting to buy them

The delivery guy did bring one out of two parcels upstairs and my wife texted as I was on my way to work, so turned my Vectrix around and went back to take care of this - I did not want to leave these in the hallway of our building all day long -

She opened one of the box for me

and here they are, well packaged 

wow ! just as I expected :-)

And then off to work ...
I can not wait to get back home to measure the voltage of each cell, start wiring them up in series, etc ..

A lot of bottom balancing ahead ...

I read again and will use the precious advices of Jack Rickard from EVTV on these super cells 


Special Thanks to Anne Kloppenborg from Amsterdam ;-)

LiFePO4 ESS - La suite

First I soldered these 2 x 20 pins together to bring ground and 5V to all the relays

It looks nice & clean like this and the connections are tight


Then I worked on the 24V command part wiring: battery pack leads, fuse, voltmeter, automotive relay, Tyco Kilovac contactor, Charge Mode relay, GTI Mode relay, main switch, 24V to 5V DC-DC power supply ... 

These are the battery pack leads, with 8mm small lugs, which will be screwed directly onto the terminals

More tonight or tomorrow ...

Wednesday, February 13, 2013

LiFePO4 ESS - Working on the New Control Board Layout

After getting back from work with my new piece of wood, I tried to fit it with the plactic cover

but, no luck, it was few millimeters longer, so I had to trim it a little

until it fits nice and snug :-)

Then I started dismounting the old Control Board to get the relays and other connectors






I don't even have to make an opening for the voltmeter and I like the way it looks through the translucid plastic, Wattson style ;-)

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