Showing posts with label Hawaii. Show all posts
Showing posts with label Hawaii. Show all posts

Thursday, February 1, 2024

A huge battery has replaced Hawaii's last coal plant




From Canary Media


Hawaii shut down its last coal plant on September 1, 2022, eliminating 180 megawatts of fossil-fueled baseload power from the grid on Oahu — a crucial step in the state’s first-in-the-nation commitment to cease burning fossil fuels for electricity by 2045.

But the move posed a question that’s becoming increasingly urgent as clean energy surges across the United States: How do you maintain a reliable grid while switching from familiar fossil plants to a portfolio of small and large renewables that run off the vagaries of the weather?

Now Hawaii has an answer: It’s a gigantic battery, unlike the gigantic batteries that have been built before.

The Kapolei Energy Storage system actually began commercial operations before Christmas on the industrial west side of Oahu, according to Plus Power, the Houston-based firm that developed and owns the project. (The company just had the good sense to wait to announce it until journalists and readers had fully returned from winter holidays.)

Now, Kapolei’s 158 Tesla Megapacks are charging and discharging based on signals from utility Hawaiian Electric. The plant’s 185 megawatts of instantaneous discharge capacity match what the old coal plant could inject into the grid, though the batteries react far more quickly, with a 250-millisecond response time. Instead of generating power, they absorb it from the grid, ideally when it’s flush with renewable generation, and deliver that cheap, clean power back in the evening hours when it’s desperately needed.

“It feels incredible to be part of what Hawaii and Hawaiian Electric are doing to get to 100% renewable energy and to play this enabling role to help them get one step closer,” Plus Power Executive Chairman Brandon Keefe told Canary Media.

The construction process had its setbacks, as did the broader effort to replace the coal plant with a roster of large-scale clean energy projects. The Kapolei battery was initially intended to come online before the coal plant retired. Covid disrupted deliveries for the grid battery industry across the board, and Kapolei’s remote location in the middle of the Pacific Ocean didn’t make things easier. By summer 2021, Plus Power was hoping to complete Kapolei by the end of 2022, but it ended up taking another year. Even then, it has joined the grid before several of the other large solar and battery projects slated to replace the coal plant’s production with clean power.

Grid batteries operate in a fundamentally different way than coal plants, so Hawaiian Electric and Plus Power crafted a new framework to replace what needed to be replaced. The old coal generator provided three key values to Oahu, Keefe explained: energy (the bulk volume of electricity), capacity (the instantaneous delivery of power on command), and grid services (stabilizing functions for the grid, wonky but vital to keeping the lights on).

The battery directly replaces the latter two: It matches the coal plant’s maximum power output (or ​“nameplate capacity,” in industry parlance), and it is programmed to deliver the necessary grid services that keep the grid operating in the right parameters. The grid runs within a certain frequency, but events can cause the frequency to stray out of bounds, say if another power plant trips offline or a sudden rush of solar production outstrips consumption. The Kapolei project provides a first line of defense, called ​“synthetic inertia,” responding to and correcting grid deviations in real time. If the situation continues to deteriorate past a specified threshold, the battery’s fast frequency response kicks in as a second line of defense.

With 565 megawatt-hours of storage, the battery can’t directly replace the coal plant’s energy production, but it works with the island’s bustling solar sector to fill that role. ​“We’re enabling the grid to add more clean renewable energy to the system to replace the energy from the coal plant,” Keefe said.

Hawaiian Electric’s modeling suggests it can reduce curtailment of renewables by an estimated 69% for the first five years thanks to Kapolei Energy Storage, allowing surplus clean electricity that would otherwise go to waste to get onto the grid.

The utility also requested ​“black-start capability.” If a disaster, like a cyclone or earthquake, knocks out the grid completely, Hawaiian Electric needs a power source to restart it. The Kapolei batteries are programmed to hold some energy in reserve for that purpose. Plus Power located the project near a substation connected to three other power plants so the battery ​“can be AAA to jump-start those other plants,” Keefe said.

The combination of all these abilities in one site — capacity, grid services, black start — leads Keefe to call Kapolei ​“the most advanced battery energy storage facility on the planet.”

The new battery is just the latest dispatch from Hawaii’s long-held spot at the vanguard of the energy transition. This is the state that hit mass rooftop solar adoption first and crafted the first utility-scale solar-battery plant in Kauai (not coincidentally, Plus Power CCO Bob Rudd had a hand in that project during his tenure at Tesla).

But when renewables growth and fossil-plant retirements pass a certain threshold, as they have in Hawaii, simply adding more wind, solar or batteries isn’t sufficient. The clean technologies, which run on digitally controlled inverters, have to start maintaining the grid, not just feeding it.

Plenty of other batteries provide frequency services to other grids, and a few of them are larger than Kapolei. But this is the only large-scale battery that we’ve seen capable of combining the basic peak capacity, frequency response, synthetic inertia and grid-rebooting tasks. That’s because Kapolei plays a more central role in its grid than battery plants do elsewhere.

After years of construction, California’s grid battery fleet surpassed 5,000 megawatts installed last year, but that only equates to 7.6% of the mammoth nameplate capacity of the state’s grid. Kapolei alone constitutes about 17% of Oahu’s peak capacity. Hawaiian Electric needed it to take on more responsibility than batteries elsewhere have ever had to.

Take inertia, which stabilizes grid frequency, as one example. Old plants provide this passively, through the spinning mass of their turbines; inertia didn’t need to be defined and compensated for separately in bygone decades because it was part of the package of running a power plant.

Now, across the country, the grid is moving to a model of maximizing cheap renewables when they are available and burning fuel when renewables aren’t. But the thermal plants need to be spinning to provide inertia — sometimes, on the mainland, renewables get curtailed to keep old coal plants running so they can deliver these grid services, Keefe said. This can be a bad deal for electricity customers, not to mention the climate.

Advanced batteries provide a synthetic version of this inertia through savvy programming of their inverters. This offers a more economic alternative while avoiding unnecessary carbon emissions. They also are faster and more precise — Keefe likened the Kapolei battery to a zippy electric sports car compared to the lumbering diesel bus of old thermal plants. That makes batteries a good technical fit for grids that are becoming increasingly volatile due to the fluctuations of renewable production.

Longer-term, U.S. climate goals require a phaseout of fossil fuels from the electric grid. Hydropower and nuclear plants help deliver valuable grid inertia without carbon emissions, but they aren’t on track to grow.

That’s why this project matters to the clean energy shift everywhere: It’s one of the first real-life examples of how to shift critical grid functions from fossil-fueled plants to clean energy plants. And eventually, the kind of grid services Kapolei has pioneered will have to scale nationwide.



Friday, April 29, 2022

Hawaiian Airlines first big airline to get Starlink

 From Tesmanian


SpaceX launches Starlink satellites to Low Earth Orbit on a weekly basis to expand broadband coverage globally. To date, the company operates around 2,200 satellites and it already beams internet service to over 250,000 customers living across 29 countries and has over half-a-million service pre-orders it is in the process fulfilling. SpaceX’s goal is to provide high-speed internet with low-latency anywhere on the planet.

On Monday, April 25, Hawaiian Airlines announced it will become the first major airline to provide free SpaceX Starlink Wi-Fi for passengers. The airline will equip its Airbus A330 and A321neo aircraft, as well as an incoming fleet of Boeing 787-9s, with Starlink terminals to access the satellite constellation during transpacific flights next year. Hawaiian Airlines currently does not provide any Wi-Fi service during flights because they have not found a reliable network that serves flights over the Pacific Ocean. 

“When we launch with Starlink we will have the best connectivity experience available in the air,” said Hawaiian Airlines President and CEO Peter Ingram. “We waited until technology caught up with our high standards for guest experience, but it will be worth the wait. Our guests can look forward to fast, seamless and free Wi-Fi to complement our award-winning onboard Hawaiian hospitality.”

“Hawaiian Airlines is ensuring its passengers will experience high-speed internet the way we expect it in the 21st century, making hassles like downloading movies before takeoff a relic of the past,” said SpaceX Vice President of Starlink Commercial Sales Jonathan Hofeller. “With Starlink, the inflight experience is greatly simplified so that once passengers step onboard the plane the internet works seamlessly throughout their flight. Soon, passengers will enjoy all the benefits of having the world’s best inflight internet connectivity from the comfort of their seats.”

In November 2021, Hofeller participated in a panel discussion at the Airline Passenger Experience Association where he shared that the company was already testing it with several aircraft. “We have our own aviation product in development […] we’ve already done some demonstrations to date, and looking to get that product finalized to be put on aircraft in the very near future,” he said. The Starlink antenna used aboard airplanes will feature technology similar to its consumer terminals “with obvious enhancements for aviation connectivity,” according to Hofeller.

The Hawaiian Airlines announcement comes after Delta Airlines told reporters it is performing “exploratory testing” of the Starlink internet technology and JSX charter airline announced it will equip 100 airplanes with SpaceX Starlink terminals.  



Monday, August 16, 2021

Hawaiian Electric to pay customers to install batteries

 



From Energy Storage News


Hawaiian Electric has launched a new programme that will pay customers to add battery storage to an existing or new rooftop solar system.

The ‘Battery Bonus’ scheme is a one-time cash incentive paid to residential and commercial customers on the island of O‘ahu, which Hawaiian Electric hopes will move the state toward its goal of 100% clean energy by 2045.

Capped by the Public Utilities Commission (PUC) at a total 50MW supplied from storage among all participants, the programme has three levels of incentive.

The first is US$850/kW for those accepted for the first 15MW. Hawaiian Electric will confirm the yield by checking battery data.

Second, US$750/kW for those accepted for the next 15MW and, third, US$500/kW for those accepted for the last 20MW.

“The Public Utilities Commission sees the value that solar and batteries can bring to our grid, and have unveiled a new program to accelerate adoption here in Hawaii,” said Robert Harris, Sunrun’s director of public policy for Hawaii.

Applications will be accepted until June 20, 2023, or until the cap is reached, with customers required to use a contractor. Taxable payments will be made to the solar-plus-storage system owner.

Customers who take part must use or export stored electricity at the contracted amount on a two-hour schedule specified by Hawaiian Electric between 6pm-8pm every day (including weekends and holidays) until December 31, 2023.

After this, they will be given the option to move onto the scheme’s next phase – a ten-year programme to be defined by the PUC.

“The Hawaii Commission is encouraging customers to install batteries so as to keep their own lights on, as well as prevent system-wide blackouts,” said Harris. “This is just one more instance proving that clean, distributed energy resources can and should replace fossil fuel power across the United States.”

Last year, Hawaiian Electric submitted eight contracts representing nearly 300MW of solar energy generation and about 2,000MWh of energy storage to be built on the islands of O'ahu and Maui.


This report isn't completely clear.   Battery storage is measured in kWh (kilowatt-hours).  So a battery with, say, a 10 kWh capacity could deliver 1 kW of output over 10 hours or 10 kW over one hour or any combination in between.  (Though in practice, maximum output over a short period is bad for the battery.)  According to this report, it looks as if users will be paid for the power output during the two-hour window in the evening, which makes more sense.  Assuming 5 kW of output over 2 hours, the subsidy would be 5*$850 = $4250, or about half the cost of 14 kWh Tesla Powerwall.   That's substantial―a 14 kWh Tesla Powerwall battery cost roughly $8500 installed, so a 50% subsidy.  Nice.  But it works to offset the evening demand peak, so presumably makes sense for the utility too.

The State of Victoria has a similar battery rebate program, with the rebate last fiscal year of A$4174 (± US$3000) falling this FY to A$3500 (± US$2500).  However, Victoria's rebate is untaxed. 


Friday, April 3, 2020

244 Tesla Megapacks in Hawaii

Hawaii


From Electrek:

Tesla is working on a bid to deploy one of the biggest battery systems in the world with 244 Megapacks, Tesla’s latest giant battery system, on a Hawaiian island.  
After a lot of rumors and anticipation, Tesla launched its “Megapack” last year.

It’s the company’s latest energy storage product, after the Powerpack and the Powerwall, and it is meant as an even bigger option targeting electric utility projects.

According to Tesla, a single Megapack has up to 3MWh of storage capacity and a 1.5MW inverter.

Tesla CEO Elon Musk asked utilities to buy the new Megapack to replace polluting [,expensive] and inefficient peaker plants.

Some electric utilities have started taking Musk up on his offer as we started hearing about several new Megapack deployments over the last few months.

Hawaiian Electric, Hawaii’s biggest electric utility serving 95% of the state, is developing a massive energy storage project in Kahe Valley, O‘ahu.

The goal is to provide both load-shifting services and create backup power to its electric grid:
  • Load-shifting: Stores energy during periods of low customer demand, for use during early-morning hours and at night when electricity demand is at its highest. This type of BESS enables the electric grid to accommodate more renewable sources, such as solar and wind, while it displaces thermal generation and helps lower emissions.
  • Contingency: Allows stored energy to be sent to the grid as a quick response to an unexpected event such as a sudden drop in energy production from wind, solar, or a thermal power plant. This quick-response capability improves grid reliability and reduces the likelihood of customer outages.

They have been taking proposals since last summer and Tesla’s proposal to use Megapacks for the project appears to be one of the frontrunners.

With a planned capacity of 810MWh, the project would become one of the biggest batteries in the world.  To put it into perspective, it would have more than six times the energy capacity of Tesla’s 100MW/129MWh Powerpack project in South Australia, which was the biggest battery in the world when it was completed a few years ago.

Wednesday, November 6, 2019

Interesting demand response

"Demand response" is, properly, paying big users to stop using electricity at times when demand exceeds capacity.  It is not the same thing as "load shedding" (alias "blackouts") which is from the point of view of consumers involuntary and affects everyone within the area served by a single (or several) electricity substation(s).  What's being talked about in this article from CleanTechnica is not strictly demand response, but is something akin to it.  And very clever it is too.


Hawaiian Electric (HECO) recently added 2.5MW of grid services to its grid, allowing it to store energy during peak solar and wind production periods, and did so without any traditional batteries, flywheels, or pumped hydro. Even better, the hardware required is very minimal, and in fact, most of it already exists in every residential grid in the world.

Demand response grid services are important because the times when renewable energy is flowing do not always match up with when people are using electricity. In the below graph, you can see that if we can shift the energy use from the peak demand time (red) to times when peak renewable generation is happening (yellow), you can use more clean energy. Pretty simple, right? As always, the devil’s in the details.

Hawaii’s startup ecosystem is not well known, but the confluence of high costs (of everything), being 3000 miles from the nearest landmass, and a steady influx of capital from military and tourism create an interesting space for innovation. Given that Hawaii, like many islands, is largely powered by diesel generators, the cost of electricity is insanely high, making Hawaii a great laboratory for cleantech startups.

One of these startups, Shifted Energy, a developer of software and controllers that retrofit electric water heaters, has partnered with Open Access Technology International (OATI) to outfit up to 2,400 water heaters with smart controls through Hawaiian Electric’s Grid Services Purchase Agreement. Shifted Energy installs controllers on residential water heaters to allow utilities to effectively use them as batteries. The company will deploy a 2.5 megawatt storage system for HECO, the company announced last week, creating what’s often referred to as a virtual power plant, or VPP.

“The controllers are free to participants and property managers,” says founder and CTO Olin Lagon, “and participants in this Hawaii program will receive a monthly bill credit between $3 and $5, depending on how often their heater has the ability to contribute to the program. But, more importantly to us, a lot of people are renters, multi-family apartment dwellers, or can’t afford solar panels, batteries, or other clean energy technologies. Our technology empowers everyone with an electric water heater to participate in the fight against climate change and the transition to cleaner energy.”

The company has spent years optimizing an algorithm that takes into account typical hot water usage, so as to maximize the positive outcome and still supply hot water when needed. Here in Hawaii, peak demand time (about 5–9 PM on weekdays) is a time when the grid is strained, and when the most dirty energy is being used. So, by shifting the time a water heater kicks on and warms up to times when there is excess solar on the grid, the technology can help reduce the peak demand, and therefore, the amount of dirty, expensive energy that is used during that time. 


Saturday, March 30, 2019

Hawaiian solar plus batteries down 43% in 3 years

From PV Magazine:

In only a few years, solar paired with energy storage has gone from a niche concept to the new reality of the U.S. power system. And it all really came down to price.

While the 14.5 cents per kilowatt-hour that SolarCity was able to achieve with solar plus storage on Kaua’i was groundbreaking three and half years ago when it was announced, today Hawaiian regulators set a new threshold for the price that solar projects fully backed by four-hour batteries must beat: 10 cents per kilowatt-hour.

The Hawaiian Public Utilities Commission (HPUC) has approved contracts between the subsidiary utilities of Hawaiian Electric Industries and the developers of six projects, representing a combined capacity of 247 MW of solar, and 998 megawatt-hours of energy storage – meaning that the entire capacity of all six projects will be fully backed by four-hour batteries. [It's actually more like 12 hours of storage, given solar's capacity factor of around 30%]

The price for each of these contracts was between eight and ten cents per kilowatt-hour. This is cheaper than both gas peaker plants and HEI’s current cost of fossil fuel generation, much of which is petroleum-based, which the company put at around 15 cents per kilowatt-hour.
These projects will substantially add to the utility-scale solar generation in Hawaii. Unlike all other states that pv magazine has studied, the large majority of solar that has gone online in Hawaii is rooftop solar, not large-scale.

These six projects will dramatically increase the volume of utility-scale solar on the island chain, and using 2017 capacity factors provided by the U.S. Department of Energy, pv magazine estimates that these will generate somewhere in the neighborhood of 480 gigawatt-hours of electricity annually, more than tripling the current output of utility-scale solar as the island moves towards its mandate to get all of its electricity from renewable energy sources by 2045.

But perhaps more important than that is that these projects can be used to supply electricity during the evening peak and on cloudy days, moving solar from an intermittent, mid-day supply of electricity to a dispatchable resource.

As such, they are ushering in the age of the solar peaker. And there will be more where these came from.
[Read more here]

That's an annual compound rate of decline of 12.7%.  Extrapolate that out for just another  4 years and costs will nearly halve again.  It's just getting harder and harder for fossil fuel advocates and denialists.  Sad.

Tuesday, February 26, 2019

Solar panels in Alaska



From CleanTechnica:

File this one under W for When You’ve Lost Alaska, You’ve Lost. The great oil-producing state of Alaska is beginning to deploy solar panels to reduce the use of diesel fuel for electricity generation and reduce sky-high electricity bills in remote rural villages — and yes, the solar panels work just fine in cold, snowy weather.
Also did you know that Alaska has solar resources comparable to Germany? 
The new project is located in the Native Village of Hughes [66° N] and is being partially funded by the Energy Department. In its blog, the DOE noted that Hughes currently consumes 40,000 gallons of diesel for power generation every year.

The diesel situation is really messing with the local economy:

…The Village powerhouse generates 100% of the electricity it produces from diesel flown in on Korean War-era planes. And because Hughes lacks sufficient fuel storage to make fuel delivery by barge cost effective, residents who use over 500 kWh per month pay more than $0.70/kWh—nearly four times the state average.

Yikes! Those are Douglas DC-6 planes, to be exact. The last one rolled off the assembly line in 1958, so you do the math.

Where were we? Oh right, the solar panels. The size of the new installation is smallish, at 120 kilowatts, but everything is relative. When completed, it will be the largest solar installation in Alaska to date.

The new solar panels will be part of a solar-diesel microgrid that includes energy storage. Once up and running later this spring, the microgrid will reduce the village’s dependency on diesel by about 25% and save about $1 million in electricity costs over the next 20 years.

[There's a lot more about the project in the original article]
Some observations:
  • Solar works even this far north!
  • It's extremely cost effective because diesel-powered electricity is so expensive.  The same situation applies in many "island grids", for example, Hawaii.  But as renewable costs decline it will be true everywhere that renewables are materially cheaper than fossil fuels.
  • Although a small wind turbine suitable for such a small community would not be nearly as efficient as the new behemoths now being built around the world now, its electricity would likely still be cheaper than diesel.  Adding wind to the mix would reduce diesel demands in winter and make the renewable generation less variable on average.

Tuesday, January 8, 2019

Mind-blowing solar plus storage contracts


We all know that wind and solar are now cheaper than coal, and even in the USA, where gas is cheap, sometimes than gas too.  But the fossil-fuel spruikers will leap into words and point out that the sun doesn't shine at night and the wind doesn't blow all the time.  (We didn't know that.)  So the holy grail is wind or solar with enough storage to "firm" it, i.e., to provide the equivalent output to baseload power stations.  In Hawaii, a classic example of "island grids", the latest solar plus storage contracts now provide that, and significantly more cheaply than oil-fired power stations.  That is indeed mind-blowing.

From GreenTech Media:

This week Hawaiian Electric Company sent seven new solar-plus-storage contracts to state regulators. Six come in at record-low prices for the state, under 10 cents per kilowatt-hour.

The projects, which now await regulatory approval, would add 262 megawatts of solar and 1,048 megawatt-hours of storage distributed over three islands. The company said the projects will provide power “in place of volatile prices of fossil fuels,” which it quotes at about 15 cents per kilowatt-hour. 

Both the pricing and the size of the contracts are significant. 

“It’s hard to overstate the scale of this announcement,” said Dan Finn-Foley, a senior energy storage analyst at Wood Mackenzie Power & Renewables. 

Past solar-plus-storage prices in Hawaii came in at 13.9 cents per kilowatt-hour in 2016 and 11 cents per kilowatt-hour in 2017. One of the projects announced this week by Hawaiian Electric is more expensive than the latter price — 15 megawatts of solar and 60 megawatt-hours of storage at 12 cents per kilowatt-hour. But another 90 megawatts of solar and 360 megawatt-hours of storage came in at what Finn-Foley called a “jaw-dropping” 8 cents per kilowatt-hour. That means that from 2016 to 2019 solar-plus-storage PPA prices in the state dropped by 42 percent. 

Will Giese, executive director at Hawaii’s Solar Energy Association, called the pricing “mind-blowing.” 

“With prices like these, it’s easy to understand the confidence of Hawaiian electric providers that their islands can hit 100 percent renewables ahead of the 2045 mandate,” said Finn-Foley. 

[Read more here]



Some notes:


  1. These contracts are for solar plus 20 hours of storage, assuming a solar capacity factor of 20%, 16 hours at a capacity factor of 25%.  This is enough to provide baseload power.  Remember, apart from places like Las Vegas, the highest electricity demand is during the day--some 60%.  This suits solar power almost perfectly, with the only problem being that demand peaks after the sun does, requiring some 4 hours of storage to fill that gap.  The rest of the storage satisfies night demand.
  2. The total cost is something like 9 cents/kWh or $90/MWh--for "firm" electricity.  This compares with oil at $150/MWh, coal at an average of $102/MWh and gas at $58/MWh (in the US--it's twice as expensive elsewhere)
  3. The costs have fallen 42% in 3 years.  They will go on falling.  The gap between "firm" solar or wind and fossil fuels will only get bigger.
  4. Such cost comparisons don't only apply to Hawaii, but to any off-grid community, such as mines, remote towns, other islands, etc.  In fact another 30% cost decline over the next couple of years (which is very likely) will mean that even non-islanded grids will find these costs very attractive.  Only fully-depreciated and paid-off coal power stations will still be competitive.  And they're wearing out because they're aging and will have to be progressively shut down over the next 20 years.  The future is renewables.
  5. The utilities really like the fixed costs of solar (and wind) compared with variable costs of fossil fuels.  Regulators won't let them adjust their selling prices fast enough to compensate for swings in oil, coal and gas prices.  But with solar and wind, because they have no fuel inputs, the costs are fixed and known in advance.  Perfect.