France to pave 1,000km of road with solar panels
globalconstructionreview.com
globalconstructionreview.com
Too true. When I spent some time in an urban technology research lab, the researchers and students gravitated strongly toward projects described as "a little tiny $X that you can carry with you." Their focuses narrowed from stage performances to screen-based art. In the Indra's web of city life, the wide, open space of rural areas was not only forgotten, but incomprehensible and unavailable as a resource for deployment.
Second thought: "Oh, the $ is a indicator of some kind."
Third thought: https://xkcd.com/1306/
You are likely not seeing the same "problem" that the powers that be in France are seeing. When looked at through the lens of graft, corruption and cronyism, it's 'simple, easy, and profitable'. Whether it ever delivers worthwhile amounts of power at efficient costs is entirely secondary.
I'm not even sure that's the correct goal.In the end Global warming , is , well, Global. So they key to solving it is making clean energy the default choice for the china, india, etc.
Is buying more solar panels helpful - sure it does help reduce the costs of solar panel manufacturing/installation. But is it one of the best places to invest, if the EU/france want to help ? i'm not sure - because there may be over investment in that area - since it's already economically viable on a large scale.
I wonder though, maybe there are areas of under investment with lots of potential ?
Also wouldn't the surface be less safe for driving in inclement weather, what's tire grip look like under bad weather conditions with this surface?
Sounds like a boondoggle to me.
However this really sounds as if the politicians bought a bill of goods and simply could not comprehend they don't understand the issues. As in, they are the smartest people they know so they are incapable of being sold a bill of goods that are bogus.
Concrete is better for fuel consumption and can last 2-4 times as long, but needs regular gaps for heat expansion which can cause noise issues and poor ware patterns. It's also far more expensive and end of life roads often spend long periods in poor repair.
Glass is actually a fairly competitive surface. Though, to expensive for most uses, people have used to for see though driveways etc.
Yes, but because it's cheap this isn't a big problem. Not to mention that glass will not last 5-20 years on a highway. It is much softer than the stones and other crap which will be scraped against it with car tyres. It will start to crack when it's hot. It will lose any grip very quickly (thus making it a public safety hazard) and won't function as a useful solar panel much faster than it will stop working. A driveway and a highway are very different problems to solve.
> Concrete is better for fuel consumption and can last 2-4 times as long, but needs regular gaps for heat expansion which can cause noise issues and poor ware patterns. It's also far more expensive and end of life roads often spend long periods in poor repair.
Yeah, concrete is good as well. I forgot to mention it.
> Glass is actually a fairly competitive surface. Though, to expensive for most uses, people have used to for see though driveways etc.
See above. I don't agree. And I don't see why people are trying to convince themselves that it isn't a stupid idea.
However, it's the kind of problem begging for a good solution. One option would be an ablative surface like asphalt where glass chunks are suspended in a clear resin. Probably a health hazard. Another is to only add panels down the center of a lane, which might push a marginal solution into feasibility.
PS: Nothing says they need to use glass, just a cheap durable and translucent substance.
The typical translucent substances people use in practice are various kinds of glass, plexiglass (not durable; scratches up a lot), transparent ceramics of various sorts (generally not cheap), gems like sapphire (not cheap, especially for large-scale applications). Anything I'm missing?
Don't forget Silicon is really quite tough so your really looking for something that can sit outside for 20 years vs. trying to protect fragile components.
The hard problem in road surfaces is not the sitting outside for 20 years. Glass, even cheap crappy glass, handles this last just fine; see windows in houses. The hard problems are dealing with repeated time-varying mechanical stress and dealing with thermal expansion (windows can play fast and loose with this by leaving expansion space around the glass inside the frame).
Crystal silicon [.6 - 1.3KIc (MPa · m1/2)] https://lirias.kuleuven.be/bitstream/123456789/355152/1/Ther... (Page 12)
Concrete [0.2-1.4 KIc (MPa · m1/2)] https://en.wikipedia.org/wiki/Fracture_toughness
This is an example of stupid thinking - "Roads are flat; solar cells are flat; lets combine them!" It ignores all the other requirements for a good (efficient, positive return) solar installation.
https://www.civicsolar.com/resource/effect-array-tilt-angle-...
I find it actually a great idea, especially with more electrical cars looking for plugs at those locations.
Some details and a video on https://www.aruco.com/2016/01/1000km-routes-solaires-france/ . The video does show how they think of it for side roads (and don't say it because PR).
edit: also part of the breakthrough here is that the upper layer is made of recycled glass and resin and is not slippery.
Bit surprised by the negativity around this on HN.
What would possible block the sun from reaching these solar cells...
> I find it actually a great idea, especially with more electrical cars looking for plugs at those locations.
Oh yeah.
The futur or "solar roads" is clearly not highways and express lanes. It's slow speed, commercial areas - as badly presented by Colas.
For the context, land use in Europe is so different than in the US. Suburbs don't crawl as much and space is more of a premium.
Thinking at a really local level, for a new retail space like this: https://goo.gl/maps/BRkQ5qNyaQU2 - the fields around the center are either here to stay or would be built on.
About 80% of this commercial space is parking lots. It's wasted space. Why not use it to produce power? Why use additional fertile or constructible terrain to add solar tiles?
Since 2015, businesses in France also have to build either gardens or solar panels on their rooftops (new constructions and redevelopments). So that's turning 90% of space used into something productive or "user-friendly". Again why not do it?
The pricing of those solar tiles is interesting: 6 euros per max watt produced on location. Cheap enough - and you get free power for parking users.
It's also great PR for solar to get inserted in people's lives at such locations.
You didn't get my point obviously. Parking spaces are to park on. When a car is on a parking space, it's blocking the light from tiles under it and also casting a shadow.
> Why use additional fertile or constructible terrain to add solar tiles?
Because they won't have cars park on them. They will also be at an optimal angle and cleaner.
The example above show the paring lot partially full with a lot of space for solar panel roads: https://goo.gl/maps/ZR5kNMZYGbE2
Also, in France, we're limited in farming space. Sure, it's going to go away eventually, while we outsource farming elsewhere, but replacing fields with solar panels is not as obvious of a tradeoff as it could be elsewhere in the world.
Sheep can still graze under the panels on farmland. Not that I'm advocating, farming sheep or using green fields for solar panels!
I personally doubt this will solve the softness issues (it will wear down quickly). But if it's not being used on highways, the wearing isn't as serious of an issue. I still think just building a solar farm is a much better idea.
> Bit surprised by the negativity around this on HN.
The "solar freaking roadways" people just pissed me off so much with their dumb crap. Not to mention that so many politicians took them seriously, lording them as an example of innovation. As a result, myself (and probably quite a few other people on HN) have built up a massive amount of skepticism when people talk about ideas like this, because we know they're a bad idea and wish people would stop pushing it.
https://www.youtube.com/user/Thunderf00t/search?query=solar
https://www.youtube.com/user/EEVblog/search?query=solar+road...
Horizontal placement, dust, scratches vs brittleness, mechanics of moving load bearing by tiling vs continuous surface, cost of PV turn it into a joke. We'd be better off putting them above the roads than on the roads.
If we wanted to generate electric power off of road surfaces, why not embed piezoelectric or some other compression-to-energy mechanism instead? Cars rolling over the road apply a tremendous amount of physical energy to the surface. Capture that energy. It's probably more than you'd get from solar.
This is a misunderstanding of thermodynamics.
There is no energy to be captured without adding friction to the existing situation. Even capturing the vibration would tax the vehicles traveling over the road.
This is similar to the old "smart steps" concept[1], which takes extra energy (beyond the energy already required to take a step) from the person walking on it.
1. http://www.cnn.com/2011/10/13/tech/innovation/pavegen-kineti...
The point is that there is already added friction (we want cars to grip roads and feet to have cushioned impact) and wear (asphalt is a liquid). Cars already compress roadways, brake on them, etc. To the other extent, a flexible base could reduce some of the wear by adding flexibility.
For "Smart Steps" yes, they consumer energy from the walker, but the walker also has less impact on joints. Running tracks prefer absorbing surfaces (rubber) for the increased friction vs concrete - not absorbing energy.
I suspect the energy and material requirements for making an energy-capturing dampening system that feels similar to asphalt to the vehicles overhead would far outweigh the benefits (I'm picturing some sort of electrolyte putty with thousands of wire leads every meter, funneling microamps of energy into a the heavier wire in a conduit underneath).
Vehicles are already losing friction energy to roads. This doesn't need to add to it.
Go back to engineering school for a few more years, is my advice to anybody trying to get energy out of roads. That potato clock we made in 2nd grade generates more energy.
Nevertheless, design enough things and mess around with energy capture schemes enough and you do develop some intuition in the matter of how hard it would be to implement, how much you would actually get back, how negligible that is. That intuition is screaming at us that this is a waste of time, your idea is bad, and you should feel bad.
What is easy to point out that you're trying to shift the burden for electrical power generation from solar/nuclear/coal, on to scarce and expensive oil, mediated through low efficiency automotive engines, and in the process increase road construction costs by orders of magnitude.
The only free lunch you get in automotive regenerative power for every car that passes, is on the downslope of very long hills at high speed. You can regenerate power here through the wheels (and that's slowly being put into the fleet as we start to use wheelhub motors & large battery banks), or through in-road baffles. You could do the same thing at traffic lights, but they don't have a predictable deceleration curve and speeds are much lower (making it feel choppy) and it's not an environment where you want to mess with people's sense of acceleration, for safety reasons.
However, given the few experiments conducted so far, it seems that it wouldn't be any more efficient than solar panels, moreover, the technology to cover roads with piezoelectric sections hasn't been tested out of research, AFAIK.
Here is a short "descriptive" made about 2 years ago : http://large.stanford.edu/courses/2012/ph240/garland1/
Assume a lane is about 4 meters. Thus we have 4 square kilometers as a target, if we assume a square meter of road is exactly as good as a square meter of dirt.
http://www.france-agri-invest.com/property_for_sale/91.html A Stunning Estate of 404 hectares near Toulouse Price: € 4,130,000 € including all fees
About 1€ per square meter. For farmland on the expensive, 'stunning' end of the spectrum.
Put it there. Whole program. Forget about the roads. Now you don't have to shut down FOUR THOUSAND KILOMETERS of active traffic-bearing road, or employ an army of thousands of installers, or repeatedly install it because it "lasts up to ten years". You don't have to deal with an extra layer of glass-polymer tile on top, you don't have to run all of the wiring in the least efficient and least maintainable manner possible, you don't have to do a bunch of things that become necessary if you stick it in the road.
1m^2 of solar panel at 20% efficiency achieves about 200 watts at theoretical best insolation. Solar panels are presently priced around 0.25€ per watt, so we arrive at a cost of around 50€ per square meter panel, or 50x as much as the land to place the panels on.
4 million Euros wouldn't be more than a tiny fraction of a program like this. Using the roads has the potential to increase costs by a factor 10x-1000x over using simple panels.
Give large incentives, better rates, it's not like the nuclear industry don't get a helping hand.
That looks pretty slippery.
> Wattway cells collect solar energy using a thin film of polycrystalline silicon, but are resistant to the passage of heavy goods vehicles and offer sufficient traction to prevent skids.
Ah. It is "sufficient". Okey Dokey.
Edit: Oh, and never let science get in the way of politics!
It depends where exactly in France.
As pointed out by other posters it's not the most efficient way of getting power for various reasons, so this must be mostly motivated by political reasons.
I really hope it's not slippery at all, I ride my motorbike all the time and a small skid has more consequences than with a car.
You can get solar tiles, but I have never seen them in the UK. I have seen houses with panels on top of existing slates/tiles.
Roads get very hot in the summer (in some places), and if you could store that heat for residential units in the winter that may be better than turning into electrical energy.
[1] http://www3.epa.gov/climatechange/kids/images/4-1-1solar_the...
There's also this stuff [2] but I've never actually seen it installed anywhere yet. It takes a completely different approach and is more like a metal roof than slates.
[0] http://www.solarcentury.com/uk/c21e-tiles-and-slates/
[1] http://www.solexenergy.co.uk/
[2] http://www.viking-house.co.uk/tri-solar-roof.html
(edited for formatting of the references)
But at least you're not driving on glass or dealing with car accidents on the roof (hopefully)
https://news.ycombinator.com/item?id=11001779
I guess they won't really be any different for this article
Does anyone know the economics of paving roads with cement or tar per m^2? The labor and material cost would be transferred and somewhat offset installing solar elsewhere.
I can not speak to the claims of safety, but I would imagine the decision is rational enough not to be endangering lives.
There is a very long way, in France, between political declarations of intention and actions, so I'm betting this will never be done. Which would probably be for the best, a predictable failure such as this project would slow down development of renewables in France even more.
on the other hand solar bike paths have has success, but a cyclist is let likely to break glass than a car.
As we passed one sign, it said something to effect of "Dawson City 1500km", which I remarked on over the radio as it was a nice round number (and, of course, quite some distance, and a large number you're unlikely to see on a road sign in the US due in part to the greater length of the mile).
My buddy chimed in "ONE POINT FIVE MEGAMETERS"
We laugh about it to this day.