Remote Mexican village uses solar power to purify water
news.mit.edu
news.mit.edu
Please tell me the condensing coils are used to pre-heat the incoming water...
> [water's] enthalpy of vaporization, 40.65 kJ/mol, is more than five times the energy required to heat the same quantity of water from 0 °C to 100 °C (cp = 75.3 J/(K mol))
https://en.wikipedia.org/wiki/Enthalpy_of_vaporization#Therm...
Keep in mind water vapor is lighter than dry air of the same temperature; it takes up about 2000x as much volume as the same mass of liquid water. The vast majority of the steam that goes into a practical condensing coil will come right out the other side, only a tiny amount of the steam that's in very close proximity to the surface of the coil will actually condense, which like, if you imagine steam going into a curly metal pipe immersed in water, I'd hope it's intuitive that tons of steam would make it out.
You'd need crazy long and thin pipes, crazy high pressure, and crazy pipe configurations so there's way more steam surface area than water being heated, in order to boil water with the equivalent amount of steam.
There's other tradeoffs here, of course. Both solar panels and reverse osmosis machines are expensive, they're like fancy machined semiconductors and ceramics and stuff, whereas an evaporator is some metal pipes and tanks and maybe some glass or mirrors, so depending on application they may be much more cost effective. But in terms of efficiency, there's no comparison.
In such remote places, there are regular outbreaks of serious waterborne diseases like cholera and dysentary, hepatitis A is widespread, and amoebas, giardia, schistosoma, various parasitic worms, etc. are endemic.
The hard part is setting up the social/institutional structures to maintain the equipment. The technological problems per se are relatively straightforward at this point.
Rural peasants typically don’t have the technical knowledge, connections, or capital to set up their own water treatment facilities, and often communities are too remote and sparsely populated to be worth piping fresh water in from a long distance.
I particularly appreciated how the MIT engineers trained local residents to operate and maintain the system, and they set up enough payment structure for the plant to pay for its ongoing costs. If that can be sustained indefinitely without too much need for additional external help, then the project should hopefully keep people healthy for decades, on only a small up-front investment.
'At this price, the community reaps a profit of about 49,000 pesos, or $3,600, per year. The community has appointed a committee to manage the incoming funds, setting aside some money for maintenance and repair of the system, and investing the rest back into the community.'
So this is not an important piece of news at all. Sorry.
'She adds that the residents in La Mancalona have taken ownership of the technology, having been trained to operate it on a day-to-day basis, from changing out ultraviolet lights and filters to testing the water quality and replacing batteries. They also have a list of local suppliers for replacement parts.'
24 hour operation may not be requirement. Clean water stores just fine.
I was going to list a counter example of a place where wind would be a better idea, but all the cloudy places I can think of have rain, so they probably get water from that. It's a big world though, I'm sure lots of places have bad enough sun that the number of panels would make the cost tip in favor of wind.
I had 10 liter can and I needed 3 liters/day, so I started the windmill only twice per week.
There are many small scale wind generators that produce more than enough energy to run watermakers on yachts, much more cheaply solar panels for the energy output.
This has been a solved problem for quite a few years.
Wind blows 24 hours ...
Not everyone in Mexico lives on the Baja coast. ... 3 times more water ...
What part of "uses solar power to purify water" lead you to believe it has anything to do with quantity?There are abundant small-scale wind turbines available, but there are rarely opportunities for them to perform nearly as well per installation effort & cost, as large 1MW+ turbines mounted on massive towers. A town of 100 households who each set up wind turbines in their backyards are paying >10x what a town of 100 households who buy a share in a wind farm coop for the same amount of electricity are paying. Wind has gotten very cheap very quickly over the years since Altamont Pass was put in with 100kW turbines, and a lot of it is down to bigger turbines and towers.
http://www.sunnypanels.com/wp-content/uploads/2014/11/wind-e...
http://www.power-technology.com/projects/solaronesolar/image...
Solar photovoltaic power, on the other hand, scales down fairly well. It doesn't deal with altitude-dependent winds. The economies of scale, while still considerable, are smaller because no matter the scale, all solar photovoltaic facilities involve parts that fit on a shipping pallet.