The object of the present invention is an ozone generator of a gas blow-through type, especially to produce a gas mixture of ozone/air or ozone/oxygen.
It is known, that in our modern age, sterilization effects of ozone gas are recognized and thus ozone-air and ozone-oxygen gas mixtures are used in more and more technical fields for sterilization purposes.
Experience of several years or even decades show, that sterilization methods using ozone gas are the most efficient against contagious pathogens present in our modern world in ever increasing numbers. This great efficiency is supported by measurements demonstrating that the sterilization effect of ozone is (depending on the ozone concentration) 3000-9000 times larger than, that of e.g. chlorine in gaseous or mist form. Experiments carried out in laboratory conditions show that the time necessary for killing E. coli bacteria is 15,000 seconds in the case of chlorine while only 4 seconds in the case of ozone.
Ozone does not only destroy most bacteria and viruses, but also destroys fungi, fungus spores, toxins produced by fungi and the whole of all other known pathogens. The reason of such an effective sterilization capability is the very strong oxidizing property of ozone.
This oxidation process is so quick and effective that microorganisms are unable to build up immunity (resistance), unlike in the case of conventional chemicals.
A further great advantage of sterilization carried out with ozone gas is that it does not leave behind residues after the treatment, the air in the treated areas is refreshed, and while completely destroying the pathogens, it also removes unpleasant odors and due to the ozone breaking down quickly, the precautionary waiting period is extremely short after the procedure.
Upon the examination of ozone generator apparatuses available at the present state of the art for producing ozone-air and ozone-oxygen gas mixture in the literature, among patent data and in practical application, a plurality of solutions may be found. The most widespread solution in the state of the art is the original solution of Siemens applied in different technical embodiments. This solution utilizes cylindrical grid electrodes and a cylindrical glass dielectric tube with an air gap on one or both sides in many cases with water cooling. There is also a great variety of high voltage drive generators, primarily in terms of the voltage and frequency of the drive voltage. These state of the art technologies are operational, but their solutions include their own limitations on efficiency, because a common disadvantage of all the solutions is that the surface area and number of the grid electrodes is limited, it is difficult to form the necessary air gap precisely, cooling of the system can only be carried out in a sophisticated manner due to the enclosed configuration, usually with a cooling liquid, and a malfunction of the cooling system may pose a fire hazard. Due to the aforementioned disadvantages, the performance of these ozone generators is greatly limited.
Hungarian utility model No. HU4286 (U) discloses an ozone generator, where in a tube (cylindrical mantle) shaped outer insulating housing flat electrodes and dielectric plates are arranged parallel with each other and the axis of the housing.
A disadvantage of this solution is that due to the limited volume capacity of the tube shaped outer housing, upgrading the apparatus for increasing its production capacity is difficult, and its control unit is not suitable for controlling the amount or concentration of the produced ozone.
However, a solution would be preferred, in which the ozone-production capacity of the apparatus may be simply increased by modular addition of corresponding subassemblies.
The object of the present invention is to provide an ozone generator apparatus capable of producing high concentration ozone in high quantities in continuous operation, having a simple structure, the number of ozone producing units may be easily increased modularly, the air or oxygen which is used as an ozone source flowing through the apparatus also functions as a cooling medium itself, having low operating costs, having high efficiency and good effectiveness, does not pose a fire hazard and the use of the apparatus does not cause environmental load or pollution in electric or any other form.
According to the object, the apparatus has to solve the following problems:
The apparatus has to ensure the production of high quantities of high-concentration ozone from the air or oxygen flowing through it.
The structure of the apparatus has to be suitable for simple and precise construction, production.
The number of ozone producing units disposed in the apparatus has to be simply and easily increasable.
The construction of the apparatus has to ensure that the air or oxygen flowing through it and functioning as the ozone source, also functions as a cooling medium in a way, that completely eliminates the fire hazard and the risk of environmental pollution.
The high-voltage electric generator of the apparatus has to ensure that its operation does not affect negatively the power network supplying it and has to ensure economical and safe operation of the ozone producing unit.
The high-voltage electric generator of the apparatus has to ensure the optimization of the electric parameters necessary for ozone production based on the temperature and humidity parameters of the air or oxygen functioning as the ozone source by the internal regulation of its operational parameters.
The high-voltage electric generator of the apparatus has to ensure adjustability of the amount and concentration of the produced ozone by external control of its operational parameters.
The aforementioned objects of the invention are achieved in one aspect by elaborating the ozone generator according to claim 1; preferred exemplary embodiments of the ozone generator are set forth in claims 2-10.
In a further aspect, the object of the present invention is achieved by the method according to claim 11, whose preferred embodiments are defined by claims 12-14.
One of the important findings forming the basis of the invention is that flat plate electrodes may be used for increasing the amount of produced ozone and to simplify the construction of the ozone producing apparatus. Increasing the surface area of the flat plate electrodes results in an increase in the amount of ozone produced.
Another important finding forming the basis of the invention is that by placing the groups of electrodes comprising flat plate electrodes next to and parallel to each other modularly, the total surface area of the electrodes—and the ozone production capacity along with it—may be increased greatly, while the space requirement of the electrodes is increased only to a smaller extent. The optimal number of the modularly arranged electrode groups is between 2 pc. and 30 pc. based on the desired maximal ozone production capacity, but naturally it may be substantially an arbitrarily great number.
Another important finding forming the basis of the invention is that if the flat plate electrodes are made of steel sheets preferably slitted and corrugated by extrusion, firstly the number of discharges occurring on the surface of the flat electrode plates is increased and secondly the efficiency of cooling of the electrode plates by the air or oxygen also functioning as ozone source is also greatly increased. The thickness of the flat electrode plates is preferably 0.3-1.5 mm.
A further important finding forming the basis of the invention is that the amount of ozone produced is greatly affected by the precise adjustment of the air gap between the flat plate electrodes and the dielectric plate, and by adjusting the air gap according to the type of the air or oxygen used as ozone source. A part of the finding is that the adjustment of the air gap to the precise dimensions can be ensured most effectively by the use of resilient insulating shim plates. The size of the air gap is 0.1-1.9 mm, while the size of the surface features of the plates is preferably at most twice the size of the air gap, e.g. 0.2-3.8 mm.
Another important finding forming the basis of the invention is that by using microcontrollers for internal control in the high-voltage power electric generator and by taking the environmental parameters (air temperature, humidity, field strength measured on the high-voltage units) into consideration when implementing adjustments, the signal shape and frequency of the supply voltage pulse arriving at the ozone producing structural unit may be brought significantly closer to the ideal parameters necessary for optimal ozone production. The supply voltage of the ozone producing structural unit is 6-12 kV and its frequency is preferably 1-35 kHz, its waveform is selected from the group comprising sine, square, triangle, sawtooth and any combinations thereof.
In order to provide practical manufacturing, the shape of the electrode and dielectric plates used in the modular arrangement may be produced preferably from a larger sheet by a suitable cutting method with creating minimal amounts of waste, i.e. the shape is preferably hexagon, triangle or tetragon, particularly preferably rectangle. The use of rectangle shaped plates is particularly preferable for filling the space available for the placement of the modules (the insulating housing), and also in the aspects of manufacturing and assembly.
The invention solves the aforementioned problems by placing an ozone producing structural unit in the path of the blown air or oxygen used as ozone source. The ozone producing structural unit is operated on the principle of alternating current auxiliary electrode cold arc discharge with its capacity increased by limited arc discharge, with an alternating voltage voltage source. This solution does not result in high-temperature arc discharges, thus the risk of fire hazard may be eliminated, and at the same time the device is capable of producing extremely large quantities of ozone. The ozone producing structural unit of the ozone generator is placed in one or more insulating housings/air ducts, preferably having a tetragonal cross section, placed in a direction parallel to or coaxial to the air blowing direction. The discharge occurs on two flat electrode plates of the same size, preferably made of stainless steel, preferably slitted and corrugated by extrusion. The flat electrode plates are arranged parallel to or at a small angle with each other. This flat electrode plate pair is parallel to the air blowing direction. The flat electrode plates are separated from each other by a flat dielectric plate, whose material may be any suitable dielectric known to a person skilled in the art, preferably glass or ceramic. Suitably formed air gaps are provided between the flat electrode plates and the flat dielectric plate. Electrode groups comprising the flat electrode plates, resilient insulating shim plates, the flat dielectric plate and insulating spacer frame elements are placed into the outer insulating housing in a suitably selected number, in a side-by-side configuration in a modular manner, which is held and fastened together by suitable fastening screws. The apparatus has an electric generator producing high voltage and high frequency voltage connected to the ozone producing unit by high voltage cables. The high voltage generator has a power supply with a capability to improve power factor, signal generator and signal selecting unit, signal amplifier and breaker bridge drive unit, a high frequency breaker unit with a full bridge system, a high voltage high frequency transformer and filter unit, a microcontroller based central control unit and sensors measuring ambient air temperature, humidity and electric field strength.
During the method according to the invention, parameters affecting the ozone production (such as air temperature, humidity, field strength measured on the high voltage units) are measured and the parameters of the signals applied to electrodes are adjusted with taking these into consideration, the voltage is preferably in the range of 6 to 12 kV, the frequency is preferably in the range of 1 to 35 kHz, the waveform is preferably selected from the group comprising sine, square, triangle, sawtooth and any combinations thereof. The invention is naturally not limited to the given values, values outside the given ranges can also be used as known to a person skilled in the art.
In what follows, the invention is described in detail with reference to the accompanying drawings, wherein
An advantage of the solution according to the invention is that the suitable connection of the components provide a mutual improvement in their beneficial properties resulting in a more positive effect and more efficient operation regarding the aforementioned objects, than other known solutions for similar purposes.
The invention is of course not limited exclusively to the embodiment of the ozone generator described above, but can be realized in several different ways within scope of protection set forth by the claims.
Number | Date | Country | Kind |
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U1600188 | Jul 2016 | HU | national |
Filing Document | Filing Date | Country | Kind |
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PCT/HU2017/050026 | 7/4/2017 | WO | 00 |