Conventional solar chimney power plants (Solar Updraft Power Plants) usually are made of the following parts:
Extensive description and important information about solar chimney technology are posted on the website http://en.wikipedia.org/wiki/Solar_updraft_tower
Thus the solar chimney power plants operate with the moving air stream due to the escaping warm air through the solar chimney. The moving air stream is warmed by the solar irradiation passing through the transparent roof of the greenhouse.
The warmed air mass inside the greenhouse becomes less dense than the ambient air thus its buoyancy is pushing the air inside the greenhouse to escape through the solar chimney to the upper layers of the atmosphere.
The escaping air mass through the solar chimney is replaced by fresh air entering the open surface of the greenhouse. The entering ambient air is heating during its motion from the periphery of the greenhouse towards the base of the solar chimney and forced to escape through it etc.
Thus the solar chimney power plants are practically creating artificial wind, passing through its open periphery and forcing the air turbines and their engaged electric generators to rotate, generating electricity.
Note that due to the thermal storage capacity of the soil beneath the solar collector, solar chimney power plants can generate uninterrupted electricity, 365 days a year 24 hours a day if necessary.
Generally we can prove that at a particular location of a solar chimney power plant, the annual electricity (and its rated electric power) is proportional to the product of the height of the chimney on the area of the solar collector. I called the coefficient ratio geometric performance of the plant, and as it is evident from the small experimental power plant built at Kompotades GREECE, http://www.youtube.com/watch?v=RVJIM6spTjU, the geometric performance of solar chimney power plants can be improved significantly with the change in dimensions and geometrical arrangement of the principal components of the plant.
Conventional solar chimney power plants have the following disadvantages, which could be overcome by the—proposed in the present invention—enclosed solar chimney power plant, as described hereafter:
The rate of conversion of kinetic energy into electricity is equal to the product of the efficiencies of the air turbine and its electric generator.
Therefore the kinetic energy of the air passing through the air turbines and of which a percentage will be converted into electricity, is significantly greater than the kinetic energy of the rising column of the solar chimney. Experimentally this it was shown in a small enclosed solar chimney power plant built at Kompotades Greece.
The air turbines in the enclosed solar chimney power plants can always operate at higher air speeds and therefore do not need gearboxes. The fine adjustment of the frequency of rotation and the consequent optimization of their performance can be achieved, if necessary, using electronic frequency converters.
By increasing the air speed of the air turbines and deceasing their diameters, and therefore increasing their speed of rotation as it is proposed for the enclosed solar chimney power plants , we can use appropriate axial fans, already existing in abundance in the market, as air turbines.
So the proposed invention, based on the new elements that emerged from the recent study of the small experimental solar chimney power plant built in Kompotades Greece http://www.youtube.com/watch?v=RVJIM6spTjU, is a much simpler and lower cost solar chimney power plant, named enclosed because its solar collector is closed peripherally and eliminates all the disadvantages of the conventional solar chimney power plant technology.
Moreover the proposed enclosed solar chimney power plant has other important advantages, such as the fact that it needs little maintenance and can be combined with solar PV panels or solar parabolic troughs to build hybrid solar power plants.
The basic elements of a typical enclosed solar chimney power plant, needing detailed description, that differs from the corresponding elements of a conventional solar chimney power plant, are:
The glass roof on the top of the truncated pyramid is embracing tightly the solar chimney to ensure the tightness of the solar chimney. The glass roof of this truncated pyramid is elevated towards the solar chimney in order to facilitate the movement of the inner air stream, while dust that normally is resting on the outer glass surface (1.3) can be removed by outside winds, rain or by any artificially cleaning procedure.
The glass roof of the greenhouse is resting firmly on the vertical peripheral wall (1.1) that encloses the solar collector.
The air turbines are placed inside appropriate circular openings (1.4) on the vertical peripheral wall which is enclosing the solar collector. The height of the outer vertical wall enclosing the solar collector is therefore greater than the diameter of the air turbines. The peripheral wall that is enclosing the solar collector may be of transparent or opaque material while the air turbines (2.1) are always of horizontal axis and fitted with an appropriate inclination to the radius of the peripheral wall in order for the stream of cold air entering through the turbines to form a whirl.
Each opening of an air turbine will be equipped with a moving air blocking system (2.3). Each air blocking system, remotely controlled, can open or close tightly its respective opening releasing or blocking the flow of air that is forcing to rotate its respective air turbine, while simultaneously are connecting and disconnecting the electric power to its corresponding generator (2.2). So when the speed of the incoming air stream to the air turbine is less of a set point will block the flow of certain openings, so the air flow to the remaining openings will be fortified.
Also in each opening (1.4), and on top of the solar chimney, there can be installed a metal mesh blocking the entry of any small animal or bird into the greenhouse. In the enclosing peripheral wall there should exist at least one access door to the inner part of the solar collector (greenhouse).
The soil beneath the roof of the solar collector can be covered with a rubber or plastic black cover to ensure greater absorption of solar irradiation passing through the transparent glass roof of the solar collector.
Below or on the black soil cover, if necessary, there can be placed closed pipes filled with water in order to increase the thermal capacity of the soil to ensure the operation of the power plant well beyond the sunset.
From the description of the solar collector it is obvious that its base, which can be covered by the black soil cover, is free, except at the points where the metal supports of the infrastructure of the glass roof are mounted. Thus this empty surface can be used as a placement land for photovoltaic (PV) panels or solar parabolic troughs. PV panels, if possible, can be installed even without their protective glass cover, as they are protected beneath the glass roof of the enclosed solar collector.
The PV panels, using simple and low cost brackets can be installed inside the enclosed solar collector and take the tilt and orientation required. Also note that if required for better performance, the PV panels may be moved seasonally, by qualified personnel, changing their inclination or orientation.
Because photovoltaic panels and parabolic trough mirrors are protected without the adverse influence of external weather phenomena (rain, snow, hail, humidity, strong winds, lightning, etc.) are likely to have better performance and will definitely have a longer life.
The presence of PV panels or parabolic troughs beneath the glass roof of the enclosed solar collector does not substantially affect the electricity generation output of their enclosed solar chimney power plants.
Based on this a hybrid solar power plant that combines an enclosed solar chimney power plant and a photovoltaic park with PV panels installed on the floor of the enclosed greenhouse will have the following advantages:
The hybrid solar station can operate several hours after sunset and if necessary continuously throughout the course of 24 hours, due to its enclosed solar chimney power plant
Similar analysis with similar positive results will result from hybrid solar power plants consisting of an enclosed solar chimney power plant combined with parabolic troughs placed inside the enclosed greenhouse under its glass roof.
So the enclosed solar chimney power plant, beyond its advantages, compared to the conventional solar chimney power plant, has also the useful property to be combined with the major solar technologies creating hybrid solar power plants with lower construction cost, lower maintenance cost and other important advantages compared with the conventional solar power plants.
1.1 Enclosed solar collector (enclosed greenhouse)
1.2 Transparent glass roof of the enclosed solar collector
1.3 Peripheral wall of the enclosed solar collector
1.4 Indicative opening of the peripheral wall
2.1 Air turbine
2.2 Electric generator
2.3 Indicative air blocking system
Number | Date | Country | Kind |
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20130100574 | Oct 2013 | GR | national |
Filing Document | Filing Date | Country | Kind |
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PCT/GR2014/000059 | 10/6/2014 | WO | 00 |