The present invention relates to a method for efficient energy transformation by means of a gaseous medium comprising steam according to the preamble of claims 1 and 2. The present invention also relates to a device for efficient energy transformation by means of a gaseous medium comprising steam according to the preamble of claims 10 and 19. The present invention still further relates to a system for efficient energy transformation by means of a gaseous medium comprising steam according to the preamble of claim 11. The invention still further relates to a device for combusting a fuel according to the preamble of claim 23.
WO 2005/012818 discloses a method, a device and a system for heating by means of a gaseous medium comprising steam, said steam being produced from water, energy for heating the water being provided by burning a fuel, wherein the steam is mixed with exhaust gas from the combustion of said gaseous medium; and wherein said mixture is used for heating purposes. A problem with the device in WO 2005/012818 is that it is difficult to achieve a complete combustion of the fuel.
One object of the present invention is to provide a method for efficient energy transformation by means of a gaseous medium comprising steam, said steam being produced from a fluid medium, energy for heating the water being provided by burning a fuel, such that efficient energy transformation becomes more efficient.
Another object of the present invention is to provide a device and a system for efficient energy transformation by means of a gaseous medium comprising steam, said steam being produced from a fluid medium, energy for heating the water being provided by burning a fuel, such that efficient energy transformation becomes more efficient.
These and other objects, apparent from the following description, are achieved by methods, a device and a system for efficient energy transformation by means of a gaseous medium comprising steam which is of the type stated by way of introduction and which in addition exhibits the features recited in the characterising clause of the appended claims 1, 2, 10, 11, 19 and 23. Preferred embodiments of the inventive methods, devices and systems are defined in appended sub claims 3-9, 12-18, 18, and 20-22.
By using oil as a fluid medium a more efficient energy carrier is achieved.
By bringing a cold medium into contact with a mixture of steam and exhaust gas facilitates creating a shockwave with a very high velocity, useful for energy transforming purposes.
By arranging the refractory member such that the flame of the burner is protected from the cooling effect of the fluid medium, the combustion efficiency is improved, i.e. residual deposits and dangerous gases are avoided as practically everything is combusted. In this way all of the cooling influence and undesired side effects on the flame are eliminated. Because of the heat reflecting capacities of the ceramic chamber walls, several beneficial results are achieved, such as: a significantly higher chamber temperature, a complete combustion, and extremely clean exhaust gases. This consequently increases the efficiency of the device.
Further advantageous embodiments are set out in the dependent claims.
A better understanding of the present invention will be had upon the reference to the following detailed description when read in conjunction with the accompanying drawings, wherein like reference characters refer to like parts throughout the several views, and in which:
The device further comprises a member or wall 20, according to the present invention, comprising a refractory ceramic material, which member is arranged in the chamber 2 such that it surrounds the flame of the burner in its entire length, The refractory member preferably has an annular shape and is arranged to surround the flame as described above. The helically shaped pipe 4 is arranged to surround the refractory member 20 at a certain distance. The refractory member 20 has an axial height such that it almost reaches the steam chamber 6, the steam chamber 6 being arranged such that the top of the flame of the burner heats the bottom of said chamber 6.
In the combustion process about 40% of the generated gases are arranged to be guided upwards to baffle coils of the steam chamber 6 and to the mixing chamber. The remaining 60% are arranged to be guided downwards on the outside of the refractory ceramic member 20, between the refractory member and the helical pipe 4 to the bottom and guided around to the outside of the helical pipe 4 that partly acts as a feeder to the steam chamber 6, and partly as a cooler for the outside of the combustion chamber. Through this process a very stable temperature level is achieved in the combustion chamber.
The gases of combustion together with the preheated steam meet and mix in the mixing chamber. This mix contains 99.9% of the combustion energy, excluding any possible radiation losses. By mixing the steam and the gases generated by combustion a medium with extraordinary high energy content is attained. As the device, or steam generator, is equipped with all the necessary safety devices, pressure gauges and load regulators, exact temperature levelling as well as adjustment of relative levels and conditions of the steamex is made possible. Temperatures of the steamex of up to 600° C. and various properties may be generated.
A refractory member or wall such as described above in relation to
The cavity preferably is a confined container 54, designed to withstand high pressure, having a first inlet 54a for introducing the steam and exhaust gas mixture, i.e. the steamex, a second inlet 54b for introducing the second fluid medium, and an outlet 55, the outlet preferably being a nozzle 55 or the like. The container 54 preferably has a substantially spherical shape. The arrangement or device 1, 52 is connected at an outlet 52a thereof to the first inlet 54a of the container 54 via a steamex supply line 53 through which the steamex is intended to be transferred. The second inlet 54b of the container 54 is connected via a fluid supply line 57 to a fluid reservoir 56 or the like, which may be anything which holds a liquid including the sea or a lake, from which reservoir 56 fluid is intended to be transferred via the fluid supply line 57 to the second inlet of the container The first fluid medium is intended to be introduced in an inlet 52b in the arrangement or device.
According to one aspect of the present invention the first fluid medium and the second fluid medium are cold water. In this case water can be supplied from the same source or separate sources.
According to another aspect of the present invention the first fluid medium is oil and the second fluid medium is water.
According to yet another aspect of the present invention the first and the second fluid medium is oil, wherein the oil can be supplied from the same source or separate sources.
According to a still further aspect of the present invention the first fluid medium is water and the second fluid medium is oil.
The first and second fluid medium could also be constituted by any suitable medium other than oil or water.
When operated steamex, produced in the device as described above and having a temperature of e.g. approximately 360° C. and a pressure of e.g. approximately 200 bar, is supplied in the steamex supply line 53 at a certain rate through the first inlet 54a of the container 54 and into the container 54. Substantially coincidentally the second cold fluid medium, having a temperature of e.g. approximately 15° C., is supplied in the fluid supply line 57 at a certain rate through the second inlet 54b of the container. When the cold medium is brought in contact with the steamex a shock wave occurs due to the liquid evaporation expansion, the shock wave having a propagation velocity of more than Mach 3. The container 54 is designed such, and the rate of the supplied steamex and the supplied cold second fluid medium is such that a jet of liquid is ejected through the outlet opening, e.g. nozzle, having a very high velocity, and a temperature of e.g. approximately 90° C. This system could be applied to e.g. drive a boat, where the created jet gives the driving force, and the sea water is used to supply the container with cold water.
According to an alternative embodiment of the present invention the cavity into which the steamex and the cold fluid medium are introduced is a cavity in the housing of a wankel engine like configuration such that the condensation expansion occurs therein, i.e. using the wankel engine technique and rotating the shaft by means of the pressure caused by the condensation expansion.
There are several applications where the system 70 comprising the wankel engine lice configuration 72 may be used. For example for driving trains where the wankel engine like configuration 72 is intended to be arranged at, or rather constitute the, drive shaft of the train, such that the train is driven by means of the rotation of the rotor member 78 which is rotated by the force caused by the introduction of steamex and cold medium in the housing 76. The same solution may be applied to automobiles or other vehicles.
Where temperatures, pressures, efficiencies are mentioned they have been included for the purpose of increasing the intelligibility of the application and are only examples and do consequently not have any limiting effect on the interpretation of each element.
Where technical features mentioned in any claim are followed by reference signs, those reference signs have been included for the sole purpose of increasing the intelligibility of the claims and accordingly, such reference signs do not have any limiting effect on the interpretation of each element identified by way of example by such reference signs.
Number | Date | Country | Kind |
---|---|---|---|
0501126-7 | May 2005 | SE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/SE2006/050123 | 5/16/2006 | WO | 00 | 3/17/2009 |