Israel Should Be Funding Alternative Energy, Not Another Gas Pipeline
The title of the post, is the same as that of this article from The Jerusalem Post.
This is the introductory sub-title.
A pipeline only serves interests of the gas tycoons and not the taxpayers or the environmentally minded residents of the region.
The pipeline is proposed to run to Eilat in the South of Israel, which is an area, that gets enough sun for most of its electricity needs.
Some points from the article.
- Jordan will be 100 % daytime solar by 2030.
- Israel could be 100 % daytime solar by 2030.
- The Arava region of Israil will achieve this aim, by the end of this year.
The article gives an interesting insight into how you get electricity, when you have plenty of sun.
Highview Power And Railway Electrification
In Encore Joins Highview To Co-Develop Liquid Air Energy Storage System In Vermont, I gave brief notes about a proposed Highview Power CRYOBattery in Vermont.
- The system will supply 50 MW for eight hours.
- The total capacity will be 400 MWh.
Other articles have suggested, that the system could be built on the site of a demolished coal-fired power station, which still has a good connection to the electricity grid.
In other words, I believe that a CRYOBattery can be considered to be a small 50 MW power station.
- It could be charged by local excess renewable energy during the day.
- It could be charged by excess renewal energy from the electricity grid during the night, when there can be large amounts of wind energy, that needs a home.
- Intelligent control systems, would balance the output of the CRYOBattery to the needs of the electricity grid.
It would be used in very much the same way as gas-turbine power-stations are used in electricity grids all over the world.
The Braybrooke Feeder Station
The National Grid is providing a feeder station at Braybrooke to support the Midland Main Line electrification.
This page on the Harbough Rail Users site is entitled Electrification Substation Plan for Braybrooke.
It gives this description of the sub-station.
Electrification of part of the Midland Main Line has moved a tentative step closer with the plans being prepared by National Grid for a feeder substation at Braybrooke, just outside Market Harborough. The location is where a high-voltage National Grid power-line crosses over the railway and the plan is for a substation and associated equipment plus an access road from the A6. The substation is due to be completed by October 2020 and is intended to feed the power supply for the Corby line pending electrification of the main line through Market Harborough.
This Google Map shows the rough area, where it will be located.
Note.
- The A6 crossing the Midland Main Line.
- The solar farm in the South-facing field, which has a 3MW capacity, according to the Eckland Lodge Business Park web site.
- Various planning documents say the transformers on the substation will be 400/25 kV units.
- This means that the power-line in the area must be a 400 kV.
Unfortunately, I can’t pick out the line of 400 kV pylons marching across the countryside. But they are rather large.
The pictures show a group of 400 kV pylons near Barking.
- The Midland Main Line at Braybrooke certainly seems to be getting a solid supply of electricity.
- It was originally planned, that the electrification would go all the way, but it was cut back to Kettering and Corby a couple of years ago.
- But to power, the electrification to Corby, it is being extended all the way to Braybrooke, so that the electrification can act as a giant extension lead for the Corby Branch Line.
The page on the Harborough Rail Users Site says this.
The Braybrooke substation is still planned, however, and the DfT has advised that the bi-mode trains will be able to switch power mode at speed. They would therefore be able to continue running electrically north from Kettering as far as Braybrooke before ‘pan down’
It would appear, that the end of the electrification will be at Braybrooke, but the sub-station seems to have enough power to extend the electrification further North if that is ever planned.
I also think, that is rather an efficient and affordable solution, with very little modification required to the existing electricity network.
But not all electricity feeds to railway electrification have a convenient 400 kV line at a handy site for installing all the needed transformers and other electrical gubbins.
How Much Power Will Needed To Be Supplied At Braybrooke?
This can probably be dismissed as the roughest or rough calculations, but the answer shows the order of magnitude of the power involved.
Consider.
- Braybrooke must be sized for full electrification of the Midland Main Line.
- Braybrooke will have to power trains North of Bedford.
- If there is full electrification of the Midland Main Line, it will probably have to power trains as far North as East Midlands Parkway station, where there is a massive power station.
- Trains between Bedford and Market Harborough take thirty minutes.
- Trains between Bedford and Corby take around thirty minutes.
- Four trains per hour (tph) run between Bedford and Market Harborough in both directions.
- The system must be sized to handle two tph between Bedford and Corby in both directions.
- The power output of each Class 360 train, that will be used on the Corby route is 1,550 kW, so a twelve-car set will need 4.65 MW.
- I can’t find the power output of a Class 810 train, but an InterCity 125 with similar performance has 3.4 MW.
- A Class 88 bi-mode locomotive has a power output of 4 MW when using the electrification.
I estimate that Braybrooke could have to support at least a dozen trains at busy times, each of which could need 4 MW.
Until someone gives me the correct figure, I reckon that Braybrooke has a capacity to supply 50 MW for trains on the Midland Main Line.
A Highview Power system as proposed for Vermont, would have enough power, but would need a lot more storage or perhaps local wind or solar farms, to give it a regular charging.
Riding Sunbeams
Riding Sunbeams are a company, who use solar power to provide the electricity for railway electrification.
I’ll let their video explain what they do.
It’s a company with an idea, that ticks a lot of boxes, but would it be able to provide enough power for a busy electrified main line? And what happens on a series of rainy or just plain dull days?
Highview Power
Could a Highview Power energy storage system be used?
- To store electricity from local or grid electrical sources.
- To power the local electrification.
If required, it could be topped up by affordable overnight electricity, that is generated by wind power.
The Highview Power system could also be sized to support the local electricity grid and local solar and wind farms.
Conclusion
I think that Riding Sunbeams and Highview Power should be talking to each other.
Hydrogen Islands
I found this concept on the ITM Power web site.
This was the sub-title.
Islands tend to have abundant renewable resources yet they rely heavily upon importing fossil fuels, often at relatively high cost.
And this was the body of the page.
The integration of renewables into an island’s power grid soon creates substantial balancing and curtailment problems. These can be overcome by deploying controllable rapid response electrolysers to produce green hydrogen for the island’s transport, heat and power sectors. Projects such as BigHit are demonstrating how this may be achieved.
It would create a zero-carbon island for an Internet tycoon or a Bond villain.
I’m certain that the concept would work for somewhere like a farm or even a small village, which is effectively a landlocked island, with perhaps wind turbines or solar panels.
Australia’s New Community Solar, Solar-Storage, ‘Solar Hydro’ And Solar Hydrogen Projects
The title of this post is the same as that of this article on Energy Storage News.
This is the introductory paragraph.
In the past couple of weeks, national and state government organisations in Australia have announced various stages of consideration for solar projects with a range of advanced and innovative storage solutions attached.
The article then goes on to describe some projects.
RayGen’s PV Ultra System
This paragraph describes the PV Ultra system.
The fully dispatchable power plant would use RayGen’s own technology PV Ultra, which is a combination of photovoltaic (PV) solar generation with the more expensive and engineering-intensive concentrated solar technology using angled mirror towers (heliostats). The PV Ultra system would generate both electricity and heat.
It’s obviously using what Australia has a lot of; sun to advantage.
RayGen’s Innovative Thermal Storage
This paragraph outlines the principle of RayGen’s thermal method of storage.
This generation technology would in turn be co-located and connected to a ‘Thermal Hydro’ energy storage facility, with 17 hours of storage, which again is based on a technology RayGen is developing. Unlike pumped hydro energy storage which uses two reservoirs at different heights, relying on gravity to drive turbines, the Thermal Hydro plant would use a hot reservoir and a cold reservoir, linked together.
The principle of operation is described in this second paragraph.
The PV Ultra solution will therefore cool one reservoir using photovoltaic power and grid power when needed, while also heating the other reservoir using the heliostats. The difference in temperature would then generate electricity, via an Organic Rankine Cycle engine, a device which uses thermodynamic cycles to convert steam into mechanical energy and is widely used for biomass, waste incinerators and other existing generation types.
The article states that an Organic Rankine cycle engine has an efficiency of about seventy percent. I have linked to Wikipedia, which gives a good explanation of the Organic Rankine cycle, which is typically used in waste heat recovery and biomass power plants.
RayGen’s Flagship Project
RayGen’s flagship project will be rated at 4 MW, with a storage capacity of 50 MWh. It will be used to provide power in the West Murray region.
New South Wales Community Projects
The article then describes a group of community projects that are being set up in New South Wales.
This is the introductory paragraph
Elsewhere in Australia, the government of New South Wales approved grants earlier this month to assist the development of seven solar projects, all but one of which will include energy storage. Notably, five out of the seven will also be community distributed energy projects, including one standalone shared battery energy storage site.
Some points from the article include.
- The total solar power is rated at 17.2 MW.
- The energy storage is rated at 39.2 MWh
- One site is co-located with hydrogen electrolysis and storage,
New South Wales has certainly launched an ambitious plan.
Conclusion
I like RayGen’s system and the New South Wales initiative.
I also think, that both projects could find applications in some of the hotter places in the world.
Could solar power systems like these solve power supply problems in Africa, India and other sun-rich places>
Novel Long-Duration Energy Storage System Installed At World’s Largest CSP Plant
The title of this post is the same as that of this article on Recharge.
This is the sub-title.
Technology that stores power in molten aluminium inaugurated at 580MW Noor Ouarzazate solar complex in Morocco.
Other points from the original article.
- The idea is from Swedish start-up; Azelio.
- The the Noor Ouarzazate solar complex is rated at 580MW
- Noor is Arabic for light.
- Energy is stored as heat in molten recycled aluminium at 600 °C.
- When energy is needed, a Stirling engine is used to generate energy.
- Waste heat can also be captured and used to heat buildings.
- The system has a 90 % round-trip efficiency.
I feel this could be a winner in the long term.
The Power Of Battery Storage
This article on Fastmarkets is entitled Neoen To Expand Li-ion Battery Capacity at Hornsdale Plant.
This is the introductory paragraph.
Australia’s Hornsdale Power Reserve, the world’s biggest lithium-ion battery plant, is set to expand capacity by 50% to 150 megawatts, according to Neoen SA, the French power producer that owns and operates the site.
If you read the article and the Wikipedia entry for Hornsdale Power Reserve (HPR), you’ll see why it is being expanded.
This paragraph is from Wikipedia.
After six months of operation, the Hornsdale Power Reserve was responsible for 55% of frequency control and ancillary services in South Australia.[11] By the end of 2018, it was estimated that the Power Reserved had saved A$40 million in costs, most in eliminating the need for a 35 MW Frequency Control Ancillary Service.
Somewhat surprisingly, the power is mainly generated by the associated Hornsdale Wind Farm.
These are some statistics and facts of the installation at Hornsale.
- There are 99 wind turbines with a total generation capacity of 315 megawatts.
- HPR is promoted as the largest lithium-ion battery in the world.
- HPR can store 129 MWh of electricity.
- HPR can discharge 100 MW into the grid.
- The main use of HPR is to provide stability to the grid.
HPR also has a nice little earner, in storing energy, when the spot price is low and selling it when it is higher.
It certainly explains why investors are putting their money in energy storage.
Wikipedia lists four energy storage projects using batteries in the UK, mainly of an experimental nature in Lilroot, Kirkwall, Leighton Buzzard and six related sites in Northern |England. One site of the six has a capacity of 5 MWh, making it one of the largest in Europe.
But then we have the massive Dinorwig power station or Electric Mountain, which can supply ,1,728-MW and has a total storage capacity of 9.1 GWh
Consider.
- Electric Mountain has seventy times the capacity of Hornsdale Power Reserve.
- Electric Mountain cost £425 million in 1984, which would be a cost of £13.5 billion today.
- Another Electric Mountain would cost about £1.6 billion per GWh of energy storage.
- Hornsdale Power Reserve cost $ 50 million or about £26 million.
- Hornsdale Power Reserve would cost about £0.2 billion per GWh of energy storage.
So it would appear that large batteries are better value for money than large pumped storage systems like Electric Mountain.
But it’s not as simple as that!
- There aren’t many places, as suitable as North Wales for large pumped storage systems.
- Omce built, it appears pumped storage system can have a long life. Electric Mountain is thirty-five years old and with updating, I wouldsn’t be surprised to see Electric Mountain in operation at the end of this century.
- Battery sites can be relatively small, so can be placed perhaps in corners of industrial premises or housing developments.
- Battery sites can be built close to where power is needed, but pumped storage can only be built where geography allows.
- Pumped strage systems can need long and expensive connections to the grid.
- I think that the UK will not build another Electric Mountain, but will build several gigawatt-sized energy storage facilities.
- Is there enough lithium and other elements for all these batteries?
- Electric Mountain is well-placed in Snowdonia for some wind farms, but many are in the North Sea on the other side of the country.
In my view what is needed is a series of half-gigawatt storage facilities, spread all over the country.
Highview Power looks to be promising and I wrote about it in British Start-Up Beats World To Holy Grail Of Cheap Energy Storage For Wind And Solar.
But there will be lots of other good ideas!
Renewable Energy Outperforms Fossil Fuels For A Whole Quarter
The title of this post is the same as that of an article in today’s copy of The Times.
This is the introductory paragraph.
Wind and solar farms and other sources of renewable power have produced more electricity than fossil fuels for the first time in a three-month period.
This is a good figure, but how do we compare with the rest of the world.
This Wikipedia entry is entitled List Of Countries By Electricity Production Prom Renewable Sources.
These are some example percentages of renewable energy production.
- Albania – 100 %
- Australia – 14.5 %
- Belgium – 16.6 %
- Brazil – 80.4 %
- Canada 65.0 %
- China – 24.5 %
- Denmark – 60.5 %
- Egypt – 8.2 %
- Ethiopia 93.6 %
- France – 17.5 %
- Germany – 29 %
- Hungary – 10.1 %
- Iceland – 100.0 %
- India – 16.88 %
- Indonesia – 15.9 %
- Iran – 5.8 %
- Iraq – 6.4 %
- Ireland – 24.7 %
- Israel – 2.5 %
- Italy – 37.3 %
- Japan – 15.0 %
- Kuwait – 0.1 %
- Libya – 0.0 %
- Malaysia – 13.7 %
- Netherlands – 12.1 %
- New Zealand – 83.9 %
- Norway – 97.2 %
- Poland – 13.7 %
- Qatar – 0.3 %
- Pakistan – 32.7 %
- Russia – 16.9 %
- Saudi Arabia – 0.0 %
- South Africa – 3.2 %
- South Korea – 2.8 %
- Spain – 38.1 %
- \sweden – 57.1 %
- Switzerland – 59.8 %
- Taiwan – 4.2 %
- Turkey – 32.9 %
- UAE – 0.3 %
- United Kingdom – 27.9 %
- United States – 14.7 %
Figures are for 2016
Austria Scraps Its Sun Tax
The eye-catching title of this post is the same vas that of this article on PV Magazine.
This is the introductory paragraph.
The nation’s political parties have found agreement on a green electricity package which is expected to create stable conditions for the next three years. From next year, €36 million will be made available annually for the further support of PV systems and energy storage.
As to the Sun Tax, this is explained further on.
The association has already seen one of its other demands met with the cancellation on Thursday of the ‘sun tax’ on the consumption of power generated by householders with rooftop arrays. Under the previous rules, solar households could consume 25 MWh of self-generated solar free of charge but then had to pay a €0.015 levy on every subsequent kilowatt-hour consumed during the life of the PV system.
|All parties seem pleased with the scrapping of the tax.
Riding Sunbeams Deploys Solar Array
The title of this post is the same as that of this article on Railway Gazette.
These are the introductory paragraphs.
Riding Sunbeams Ltd has installed a 30 kWp solar test unit with around 100 panels near Aldershot which is directly supplying electricity to power signalling and lighting on Network Rail’s Wessex Route.
This will enable data to be gathered to assess how much larger solar arrays could be used to power trains.
Note that kWp is peak kW. On a very sunny day, 30 kW is the highest power level that will be supplied.
This page on the Energy Saving Trust is entitled Costs and Saving and this is said.about solar generation in the South of England.
A 4kWp system in the south of England can generate around 4,200 kilowatt hours of electricity a year – that’s the same amount of electricity as it takes to turn the London Eye 56 times. It will save around 1.6 tonnes of carbon dioxide every year.
For comparison, they say this about solar generation in Scotland.
A 4kWp system in Scotland can generate about 3,400 kilowatt hours of electricity a year – that’s the same amount of electricity as it takes to turn the Falkirk Wheel 2,200 times. It will save approximately 1.3 tonnes of carbon dioxide every year.
I’d be interested to know, the two locations, where they measured the sunlight.
It was a lovely sunny day recently, when I passed through Aldershot station, so I’ll use the Southern England figures.
- Uprating the Energy Saving Trust figures by 30/4 gives a yearly output of 31,500 kWh,
- The daily output is 86.3 kWh.
- The hourly output based on a 0600-2200 sixteen hour day is 5.4 kWh
There would probably be a battery to make the most of the electricity generated.
Powering Feeder Stations For Third-Rail Electrification
As the Railway Gazette article says, the trial installation at Aldershot station will be used to power signalling and the station, which will then give figures to assess how trains can be powered.
In the September 2017 Edition of Modern Railways, there is an article entitled Wires Through The Weald, which discusses electrification of the Uckfield Branch in Sussex, as proposed by Chris Gibb. This is an extract.
He (Chris Gibb) says the largest single item cost is connection to the National Grid, and a third-rail system would require feeder stations every two or three miles, whereas overhead wires may require only a single feeder station for the entire Uckfield Branch.
It would appear that 750 VDC rail-based direct current electrification needs many more feeder stations, than 25 KVAC overhead electrification.
Could a solar system from Riding Sunbeams supply power in the following situations?
- Places where there was space for a solar array.
- Remote locations, where a connection to the grid is difficult.
- Places, where the power supply needed a bit of a boost.
How large would an individual solar feeder station need to be?
Consider a feeder station on a rail line with these characteristics.
- Third-rail electrification
- Four-car trains
- Each train uses three kWh per vehicle mile.
- Two trains per hour (tph) in both directions.
- Electrification sections are three miles long.
- Trains run from six in the morning to ten at night.
- Trains pass at speeds of up to 100 mph.
The hourly electricity need for each section would be 144 kWh or 2304 kWh per day and 841 MWh for the whole year.
The Energy Saving Trust says this.
A 4kWp system in the south of England can generate around 4,200 kilowatt hours of electricity a year.
Using these figures says that a solar array of 800 MWp will be needed to provide the power for one feeder station.
Consider.
- The largest solar array in the UK is Shotwick Solar Farm, which has a capacity of 72 MWp.
- Shotwick covers 730 acres.
Am I right to question if that enough electricity to create a feeder station to power trains, can be produced reliably from a solar array and a battery?
I’d love to have the electricity usage and bill for one of Network Rail’s typical third-rail feeder stations. Not that I’d want to pay it!
How Would Station Stops Be Handled?
When a modern electrical multiple unit stops in a station, there is a three-stage process.
- The train decelerates, hopefully using regenerative braking, where the braking energy is returned through the electrification to hopefully power nearby trains.
- The train waits in the station for a minute or so, using power for air-conditioning and other hotel functions.
- The train accelerates away using track power.
Would a Riding Sunbeams system provide enough capacity to accelerate the train away?
In What Is The Kinetic Energy Of A Class 710 Train?, I calculated the kinetic energy of a very full Class 710 train, which is just about as modern and probably efficient, as you can get.
These were my results.
- 50 mph – 15.3 kWh
- 60 mph – 22.1 kWh
- 90 mph – 49.4 kWh – Operating speed of a Crossrail Class 345 train.
- 100 mph – 61.3 kWh – Operating speed of many electric multiple units.
These kinetic energy values are low enough to make it possible that a modern electric multiple unit can run using on-board batteries.
- Regenerative braking would be captured in the batteries.
- Hotel power in the station can be provided by batteries.
- Batteries can cruise the train through sections of line without electrification or with a poor electrical supply.
Suppose there is a twenty mile gap between two stations; A and B, where trains cruise at 90 mph.
- The train arrives at station A, with a battery that has been charged on previous parts of the journey from the electrification.
- Regenerative braking energy will be stored in the battery on braking.
- Acceleration to 90 mph will need 49.4 kWh of electricity from the battery.
- Using my 3 kWh per vehicle mile figure, going from A to B, will need 4 cars * 20 miles * 3 = 240 kWh of electricity.
It looks like a battery with a capacity of 300 kWh would handle this situation
Could this be fitted into a four-car train, like an Aventra?
In this article in Global Rail News from 2011, which is entitled Bombardier’s AVENTRA – A new era in train performance, gives some details of the Aventra’s electrical systems. This is said.
AVENTRA can run on both 25kV AC and 750V DC power – the high-efficiency transformers being another area where a heavier component was chosen because, in the long term, it’s cheaper to run. Pairs of cars will run off a common power bus with a converter on one car powering both. The other car can be fitted with power storage devices such as super-capacitors or Lithium-ion batteries if required. The intention is that every car will be powered although trailer cars will be available.
Unlike today’s commuter trains, AVENTRA will also shut down fully at night. It will be ‘woken up’ by remote control before the driver arrives for the first shift
This was published over eight years ago, so I suspect Bombardier have refined the concept.
If 424 kWh can be fitted under the floor of a two-car Class 230 train, I’m sure in a train designed for energy storage at least 500 kWh or maybe as high as 1000 kWh could be fitted to a four-car Aventra.
A 500 kWh battery would give a battery range of just under forty miles, whilst a 1000 kWh battery would give a ninety-five mile range.
Obviously, the battery would need to be charged, but in many cases the range would take the train between two existing electrified lines. Think Ipswich -Cambridge, Newcastle-Carlisle, the Fife Circle Line, the Uckfield Branch and Ashford-Hastings!
Conclusion
Riding Sunbeams may be suitable for providing local power for signalling and stations, but batteries on trains looks like it could be a better way of powering trains.
World’s First Solar-Powered Trains Are Coming To England
The title of this post, is the same as that on this article on Lonely Planet.
This is the first paragraph
The first ever solar unit to directly supply a railway line with electricity has been put in place in England, paving the way for the world’s first solar-powered trains
I am not sure yet about this technology., powering large sections of the UK’s railways.
But the technology does have applications, if it is combined with energy storage.
Boosting Power With Third-Rail Electrification
Third-rail electrification has a problem, in that it needs to be fed with power every few miles. Inevitably, as timetables get busier, there are areas, where there is not enough power to supply the trains.
These systems can provide that fill-in power.
Note that 25 KVAC overhead electrification doesn’t have the problem, as the wires themselves distribute the electricity.
This means that the Great Western Main Line electrification is only supplied with power from the electricity grid at three places; the two ends and one in the middle.
Electrification In Visually-Sensitive Places
Look at this picture of Brunel’s magnificent Wharncliffe Viaduct.
It has been recently electrified and some groups object to the electrification of Grade I Listed structures like this.
Most modern electric trains can be dual-voltage and can work on both electrification systems used in the UK; 25 KVAC overhead and 750 VDC third rail. They can also change between electrification systems at maximum speed
So could we see selective use of solar-powered third-rail electrification in visually-sensitive areas?
Possibly! But battery/electric trains may be a better alternative!
Charging Battery-Electric Trains
There are some branch lines, that will be served by battery-electric trains in the future.
These solar-powered systems could be used to provide the energy to charge the batteries for the return journey.
Powering Remote Stations
Stations are increasingly needing better electricity supplies with more lighting and various ticket and parking machines, and charging for electric cars will become more important.
Solar power systems and batteries could be used.
Conclusion
Solar power will be increasingly used on the railways, with a large number of stations like Blackfriars and the recently-opened White Hart Lane.
But that will happen, irrespective of the result of the Aldershot trial, as many stations are easy places to install solar panels, either on the roof or redundant spaces.
This Google Map shows one of my local stations; Haggerston.
It was rebuilt and reopened in April 2010, so solar panels were probably not thought about for the station.
From my helicopter, it appears that the stations at Dalston Junction, Hoxton and Shoreditch High Street, which were all built at the same time, don’t have solar rooves either.
Perhaps Transport for London and/or Network Rail should rent their roof areas to companies, who run solar farms?
I’m sure there’s a mutually beneficial deal in there somewhere!
As to powering trains, I’m sure they that Riding Sunbeams has a place on third-rail networks, where power needs boosting.
However, electric trains with batteries might be a better option in other applications.



