Electrode water heater
10281138 ยท 2019-05-07
Assignee
Inventors
Cpc classification
F22B1/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24H1/203
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
H05B3/60
ELECTRICITY
F24H1/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An electrode water heater/steam generator is provided. The electrode water heater/steam generator comprises a housing for containing water therein. The housing has at least an opening for transmission of water therethrough. At least two electrodes are disposed inside the housing and secured thereto such that at least one of the electrodes is enabled to vibrate during provision of AC electrical power. Electrical circuitry connects at least one of the electrodes to a live wire of an AC electrical power supply and at least another of the electrodes to a neutral wire of the AC electrical power supply.
Claims
1. An electrode water heater comprising: a housing for containing water therein, the housing having at least an opening for transmission of water therethrough; at least two electrodes disposed inside the housing and secured thereto, wherein a first and a second end portion of at least one of the electrodes are secured to the housing such that the at least one electrode is movable with respect to the housing in a direction of a longitudinal axis of the at least one electrode and in directions perpendicular thereto to enable the same to vibrate during provision of AC electrical power; and, electrical circuitry connected to the electrodes, the electrical circuitry for connecting at least one of the electrodes to a live wire of an AC electrical power supply and at least another of the electrodes to a neutral wire of the AC electrical power supply.
2. The electrode water heater according to claim 1 wherein the electrodes are disposed in a nested fashion.
3. The electrode water heater according to claim 2 wherein the electrodes are connected to the live wire and the neutral wire in an alternating fashion.
4. The electrode water heater according to claim 3 wherein the number of electrodes is greater than two.
5. The electrode water heater according to claim 4 wherein the number of electrodes is an odd number.
6. The electrode water heater according to claim 3 wherein the electrodes comprise an inner electrode having a longitudinal axis and at least one hollow cylinder placed concentric thereto.
7. The electrode water heater according to claim 6 wherein the inner electrode is fixedly mounted to the housing and the at least one hollow cylinder is enabled to vibrate.
8. The electrode water heater according to claim 6 wherein the inner electrode and the hollow cylinder have a circular cross section.
9. The electrode water heater according to claim 8 wherein in operation the longitudinal axis is oriented substantially vertically.
10. The electrode water heater according to claim 9 wherein a first opening is placed in a top end of the housing and a second opening is placed in a bottom end of the housing.
11. The electrode water heater according to claim 1 wherein the electrodes are placed between a first end and a second end of the housing and wherein a first opening is placed in the first end for provision of water and a second opening is placed in the second end for removal of water after heating.
12. The electrode water heater according to claim 1 wherein the first and the second end portion of the at least one electrode are accommodated in respective grooves disposed in the housing and wherein the grooves have a predetermined width and a predetermined depth such that there are gaps between the at least one electrode and the housing in a direction of the longitudinal axis and in directions perpendicular thereto.
13. An electrode water heater comprising: a housing for containing water therein, the housing having at least an opening for transmission of water therethrough; at least two electrodes disposed inside the housing and secured thereto, wherein a first and a second end portion of at least one of the electrodes are secured to the housing such that the at least one electrode is movable with respect to the housing in a direction of a longitudinal axis of the at least one electrode and in directions perpendicular thereto to enable the same to vibrate during provision of AC electrical power; and, electrical circuitry connected to the electrodes, the electrical circuitry for connecting each of the electrodes to a live wire of a multiphase AC electrical power supply.
14. The electrode water heater according to claim 13 wherein the first and the second end portion of the at least one electrode are accommodated in respective grooves disposed in the housing and wherein the grooves have a predetermined width and a predetermined depth such that there are gaps between the at least one electrode and the housing in a direction of the longitudinal axis and in directions perpendicular thereto.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) One embodiment of the present invention is described below with reference to the accompanying drawings, in which:
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DETAILED DESCRIPTION
(9) Unless defined otherwise, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which the invention belongs. Although any methods and materials similar or equivalent to those described herein can be used in the practice or testing of the present invention, certain methods and materials are now described.
(10) While the description of the embodiments hereinbelow is with reference to an instant water boiler for providing relatively small quantities of hot/boiling water/steam for human consumption in a residential household setting, it will become evident to those skilled in the art that the embodiments of the invention are not limited thereto, but are also adaptable for providing larger quantities of hot/boiling water/steam in various other applications such as, for example, heating and industrial processes.
(11) Referring to
(12) The electrodes 106.1-106.7 are connected to insulated wiring 108.1 and 108.2 in an alternating fashion, as illustrated in
(13) Water is provided to the electrodes 106.1-106.7 and removed therefrom after heating via apertures 112, 113 disposed in the top plate 102.2 and the bottom plate 102.1. The apertures 112, 113 can be placed such that the water is approximately equally distributed around the electrodes 106.1-106.7 and dimensioned to enable a water flow therethrough within a predetermined range. For example, in applications where the heater 100 is empty when not in use, the water flow is restricted to the extent such that a power surge is prevented when the heater 100 is started.
(14) In operation AC current is passed through the water disposed between adjacent electrodes heating the same. A large electrode surface area in contact with the water can be disposed in a relatively small volume, for example, by providing a plurality of nested electrodes such as concentric ring electrodes, as illustrated in
(15) As is evident, the electrode water heater 100 is implementable employing different numbers of two or more electrodes. Furthermore, the electrodes may have other shapes than circular ring shape such as, for example, rings having oval or square cross sections, plates, half spheres.
(16) The electrode water heater 100 is designed in dependence upon the electrical conductivity of the water, the range of the water flow rate, the range of desired hot water temperatures, and the electrical power (Voltage and frequency), using standard electrical engineering methods. The electrodes can be designed such that the electrical power drawn by the device does not exceed a predetermined limit.
(17) It is noted that, while the electrode water heater 100 is described with its longitudinal axis 120 oriented substantially vertical, the same is also operable with the longitudinal axis 120 oriented substantially horizontal or at angles therebetween.
(18) Referring to
(19) Referring to
(20) Alternatively, the user interface 152 and the sensors 140, 142, and 144 are omitted and the control circuitry 150 is employed for limiting the supply of electrical power to the electrode heater 100, for example, to 1200 W, in order to prevent a power surge.
(21) The instant water heater 200 comprises a base plate 170 having mounted thereto a curved tube 172 made of, for example, stainless steel. A bottom end of the tube 172 comprises inlet 176 for being connected to a water supply for receiving water therefrom. A top end of the tube 172 is mounted to the electrode water heater 100 via water inlet 130. Control housing 178 comprises the control circuitry 150 connected to the electrode water heater 100 via cable 174containing the wiring 108.1, 108.2, 108.3, 140A, 142A, and 144Aand user interface 152. The control housing can also comprise a solenoid valve for regulating the water flow through the tube 172 in dependence upon user input received via the user interface 152. The user interface comprises, for example, conventional knobs that are turned for determining the water flow and the temperature or push buttons. In operation, water is received at the inlet 176 and provided to the electrode water heater via tube 172 and provided therefrom after heating via water outlet 132A, as indicated by the block arrows in
(22) The electrodes 106.1-106.7 of the electrode water heater 100 as employed in the instant water heater 200 are made of aluminum having the dimensions of: height H.sub.E of 1.39; width W.sub.E of 0.031; and outside diameters D.sub.OE in ascending order of 0.375, 0.938, 1.5; 2.063, 2.625, 3.188, and 3.75. The housing is made of Acetal having the inside dimensions of: height H.sub.IH of 1.27 and diameter D.sub.IH of 4.00. The grooves 122 have the dimensions of: depth D.sub.G of 0.065 and width of W.sub.G of 0.055.
(23) Alternatively, the electrode water heater 100 is employed in a boiler type water heater such as, for example, a kettle, as illustrated in
(24) Further alternatively, the electrode water heater 100 is implemented for producing steam, for example, by providing a reduced amount of water such that only a bottom portion of the electrodes 106 is submerged in the water. Optionally, an electrolyte such as, for example, baking soda, is added to the water to increase the efficiency of the steam production.
(25) Further alternatively, the electrode water heater 100 is adapted for being connected to multiphase AC electrical power. For example, the electrode water heater 100 is provided with three electrodes 106 with each electrode being connected to a live wire associated with one phase of three phase AC electrical power. In particular for generating steam, high frequency and high voltage can be used, for example, a frequency of 400 Hz and each phase having a voltage of 200V.
(26) The present invention has been described herein with regard to certain embodiments. However, it will be obvious to persons skilled in the art that a number of variations and modifications can be made without departing from the scope of the invention as described herein.