High-pressure instant steam generator
11953197 ยท 2024-04-09
Assignee
Inventors
Cpc classification
F22B27/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F22B1/288
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F22B1/282
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F22G5/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F22B27/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F22B35/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F22B1/287
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F22G3/009
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F22G1/165
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F22G5/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F22B1/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F22B27/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F22B27/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F22B35/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F22B35/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F22B35/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F22G1/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F22G3/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A high-pressure instant steam generator is disclosed. The steam generator unit comprises a HP unit, a HP water-band heater, an evaporator, a super heater, and at least a spray gun attachment. The high-pressure unit comprises a main pump for supplying a liquid from a storage tank in case of independent unit. The HP water band heater connected to the HP unit via a needle valve and a first manifold. The evaporator connected to the band heater via a second manifold and a check-valve, configured to convert the liquid into steam at a saturation point. The super heater connected to the evaporator via a check-valve, configured to heat the generated steam to the saturated temperature. The high-pressure steam attachment or spray gun connected to the super heater via a fourth manifold, configured to spray the generated high-pressure steam for sanitizing the surface the surface of the object being treated.
Claims
1. A high-pressure instant steam generator acts as a dependent system, comprising: a high-pressure unit comprises a main pump for supplying a liquid from a storage tank or water hose at high pressure via at least one pressure relief valve, a flow regulator, and a diverter; a high-pressure water band heater fluidly connected to the high-pressure unit via a needle valve and a first manifold through a channel, configured to heat the liquid supplied from the high-pressure unit; an evaporator fluidly connected to the high-pressure water band heater via a second manifold and an inlet check valve through the channel, wherein the evaporator is configured to convert the liquid received from the high-pressure water band heater into steam at a saturation point; a super heater fluidly connected to the evaporator via an outlet check valve and a third manifold through the channel, wherein the super heater is configured to heat the generated steam to the saturated temperature, and a high-pressure steam attachment or spray gun fluidly connected to the super heater via a fourth manifold through the channel, wherein the high-pressure steam attachment or spray gun is configured to enable the user to conveniently apply the generated high-pressure steam on the surfaces of the object, thereby effectively sanitizing and potentially removing surface-level containments.
2. The high-pressure instant steam generator of claim 1, wherein the high-pressure water band heater further comprising a hollow section, one or more helical coils or tubes disposed within the hollow section, wherein the helical coils are configured to allow high pressure water; a heater configured to radiate on the helical coils through which liquid flows for heating the liquid, and a thermostat configured to protect the heater from damages by switching off when the temperature reaches its maximum allowable limit.
3. The high-pressure instant steam generator of claim 1, wherein the helical tubes are made of a material includes copper, steel, and aluminum.
4. The high-pressure instant steam generator of claim 1, wherein the high-pressure water band heater length is selected depending on the heat required to raise the temperature water entering the heater to the saturations point at the pressure at which water enters the heater.
5. The high-pressure instant steam generator of claim 1, wherein the needle valve is configured to control the liquid flow.
6. The high-pressure instant steam generator of claim 1, wherein the first manifold is configured to receive at least one first pressure sensor, wherein the first pressure sensor is configured to measure the pressure of the liquid and generate a current/voltage signal, which will send to the main control panel or a micro processing unit for further programming.
7. The high-pressure instant steam generator of claim 1, wherein the second manifold is configured to receive at least one hot water pressure sensor and a temperature sensor, wherein the hot water pressure sensor is configured to measure pressure of the liquid flow and the temperature sensor is configured to measure the temperature of the liquid.
8. The high-pressure instant steam generator of claim 1, wherein the third manifold is configured to receive at least one steam pressure sensor and a steam temperature sensor, wherein the steam pressure sensor is configured to measure pressure of the steam and the steam temperature sensor is configured to measure the temperature of the steam.
9. The high-pressure instant steam generator of claim 1, wherein the fourth manifold is configured to receive at least one super heat steam pressure sensor and a super heat temperature sensor, wherein the super heat steam pressure sensor is configured to measure the pressure of the generated steam and the super heat temperature sensor is configured to measure the temperature of the generated steam.
10. The high-pressure instant steam generator of claim 1, wherein the evaporator further comprising: an evaporator chamber or a doubled walled vessel having an inner housing and an outer housing, wherein the inner housing comprises at least three orifices, which are configured to force the liquid to the annular space between inner and outer vessel at a high velocity and causes the liquid to atomize thus the evaporation of the water is faster and at a higher efficiency.
11. A high-pressure instant steam generator acts as an independent system, comprising: a micro pump with a motor assembly for supplying a liquid from a storage tank or water hose at high pressure, wherein the storage tank comprises a level switch, a filter low level indicator, and an over flow pipe; a high-pressure water band heater fluidly connected to the micro pump with a motor assembly via a needle valve and a first manifold through a channel, configured to heat the liquid supplied from the high-pressure unit, wherein the needle valve is configured to control the liquid flow; an evaporator fluidly connected to the high-pressure water band heater via a second manifold and an inlet check valve through the channel, wherein the evaporator is configured to convert the liquid received from the high-pressure water band heater into steam at a saturation point; a super heater fluidly connected to the evaporator via an outlet check valve and a third manifold through the channel, wherein the super heater is configured to heat the generated steam to the saturated temperature, and a high-pressure steam attachment or spray gun fluidly connected to the super heater via a fourth manifold through the channel, wherein the high-pressure steam attachment or spray gun is configured to enable the user to conveniently spray or apply the generated high-pressure steam on the surfaces of the object, thereby effectively sanitizing and potentially removing surface-level containments.
12. The high-pressure instant steam generator of claim 11, wherein the micro pump is a fixed-displacement pump.
13. The high-pressure instant steam generator of claim 11, wherein the high-pressure water band heater further comprising a hollow section, one or more helical coils or tubes disposed within the hollow section, wherein the helical coils are configured to allow high pressure water; a heater configured to radiate on the helical coils through which liquid flows for heating the liquid, and a thermostat configured to protect the heater from damages by switching off when the temperature reaches its maximum allowable limit.
14. The high-pressure instant steam generator of claim 11, wherein the helical tubes are made of a material includes copper, steel, and aluminum.
15. The high-pressure instant steam generator of claim 11, wherein the high-pressure water band heater length is selected depending on the heat required to raise the temperature water entering the heater to the saturations point at the pressure at which water enters the heater.
16. The high-pressure instant steam generator of claim 11, wherein the first manifold is configured to receive at least one first pressure sensor, wherein the first pressure sensor is configured to measure the pressure of the liquid and generate a current/voltage signal, which will send to the main control panel or a micro processing unit for further programming.
17. The high-pressure instant steam generator of claim 11, wherein the second manifold is configured to receive at least one hot water pressure sensor and a temperature sensor, wherein the hot water pressure sensor is configured to measure pressure of the liquid flow and the temperature sensor is configured to measure the temperature of the liquid.
18. The high-pressure instant steam generator of claim 11, wherein the third manifold is configured to receive at least one steam pressure sensor and a steam temperature sensor, wherein the steam pressure sensor is configured to measure pressure of the steam and the steam temperature sensor is configured to measure the temperature of the steam.
19. The high-pressure instant steam generator of claim 11, wherein the fourth manifold is configured to receive at least one super heat steam pressure sensor and a super heat temperature sensor, wherein the super heat steam pressure sensor is configured to measure the pressure of the generated steam and the super heat temperature sensor is configured to measure the temperature of the generated steam.
20. The high-pressure instant steam generator of claim 11, wherein the evaporator further comprising: an evaporator chamber or a doubled walled vessel having an inner housing and an outer housing, wherein the inner house comprises at least three orifices, which are configured to force the liquid to the annular space between inner and outer vessel at a high velocity and causes the liquid to atomize thus the evaporation of the water is faster and at a higher efficiency.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1) The foregoing summary, as well as the following detailed description of the innovation, is better understood when read in conjunction with the appended drawings. For the purpose of illustrating the innovation, exemplary constructions of the innovation are shown in the drawings. However, the innovation is not limited to the specific methods and structures disclosed herein. The description of a method step or a structure referenced by a numeral in a drawing is applicable to the description of that method step or structure shown by that same numeral in any subsequent drawing herein.
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DETAILED DESCRIPTION OF EMBODIMENTS
(37) A description of embodiments of the present innovation will now be given with reference to the Figures. It is expected that the present innovation may be embodied in other specific forms without departing from its spirit or essential characteristics. The described embodiments are to be considered in all respects only as illustrative and not restrictive.
(38) Referring to
(39) In one embodiment, the high-pressure unit (HPW) 101 comprises a main pump 104 for supplying a liquid from a storage tank 102 at high pressure via at least one pressure relief valve 110, a flow regulator 112, and a diverter 114. In one embodiment, the high-pressure unit 101 further comprises a loop path or channel for preventing excess flow using a system relief valve 108 and a non-return valve 106, wherein the non-return valve 106 could avoid the flow to pass through this path when the pressure in the system relief valve 108 returns aside falls below suction pressure. In one embodiment, the flow from the main pump 104 has fixed displacement of about, but not limited to, max 1 GPM or 3.75 LPM.
(40) In one embodiment, the high-pressure water band heater 103 is fluidly connected to the high-pressure unit 101 via a needle valve 116 and a first manifold 129 through a channel. In one embodiment, the high-pressure water band heater 103 is configured to heat the liquid supplied from the high-pressure unit 101. In one embodiment, at least one first pressure sensor 131 is securely inserted into the first manifold 129. The first pressure sensor 131 is configured to measure the pressure of the liquid and generate a current/voltage signal, which will send to a main control panel or a micro processing unit for further programming. In one embodiment, the needle valve 116 is configured to control the liquid flow.
(41) In one embodiment, the evaporator 105 is fluidly connected to the high-pressure water band heater 103 having helical coils/water coil heater assembly 118 via a second manifold 122 and an inlet check valve 126 through the channel, wherein the evaporator 105 is configured to convert the liquid received from the high-pressure water band heater 103 into steam at a saturation point. In one embodiment, at least one hot water pressure sensor 120 and a temperature sensor 124 are securely inserted into the second manifold 122, wherein the hot water pressure sensor 120 is configured to measure pressure of the liquid flow and the temperature sensor 124 is configured to measure the temperature of the liquid. In one embodiment, the evaporator 105 could be positioned on an evaporator stand 144.
(42) In one embodiment, the super heater 107 is fluidly connected to the evaporator 105 via an outlet check valve 127 and a third manifold 130 through the channel, wherein the super heater 107 having a super steam heater assembly 134 is configured to heat the generated steam to the saturated temperature. In one embodiment, at least one steam pressure sensor 128 and a steam temperature sensor 132 are securely inserted into the third manifold 130, wherein the steam pressure sensor 128 is configured to measure pressure of the steam and the steam temperature sensor 132 is configured to measure the temperature of the steam.
(43) In one embodiment, the high-pressure steam attachment or spray gun 142 is fluidly connected to the super heater 107 via a fourth manifold 138 through the channel, wherein the high-pressure steam attachment or spray gun 142 is configured to enable the user to conveniently apply the generated high-pressure steam on the surfaces of the object, thereby effectively sanitizing and potentially removing surface-level containments. In one embodiment, the fourth manifold 138 is configured to receive at least one super heat steam pressure sensor 140 and a super heat temperature sensor 136, wherein the super heat steam pressure sensor 140 is configured to measure the pressure of the generated steam and the super heat temperature sensor 136 is configured to measure the temperature of the generated steam. In one embodiment, the plurality of components of the steam generator unit 100 could be mounted on a foundation plate 109 using copper/SS tubes, flexible tubes, a float switch, a breather, male stud couplings, and cheese screws. In one embodiment, the steam generator unit 100 further comprises an electrical control panel.
(44) In one embodiment, the brief technical specification of the steam generator unit units (100 and 200) such as: maximum steam pressure is about 17 psi, maximum flow rate of water required for steam generation is about 30 grams/minute (?30 CC/minute), flow rate is adjustable up to 10 CC/minute, maximum pressure of steam generated is about 150 psi/200 psi, maximum temperature of super-heated steam is about 200 Deg C. to 250 Deg C., heating sources are band heaters, which are used to instant heating of water and super heating steam, and a specially designed evaporator. In one embodiment, the steam generator unit 100 could be a dependent system. Here dependent system means there is no separate storage tank and high-pressure pump. The system gets water required from the main high pressure washing system. High pressure water is fed directly to the first band heater. In another embodiment, the steam generator unit 100 could be an independent system. Here independent system means it has its own storage tank and high-pressure pump.
(45) In one embodiment, the steam generator unit 100 is configured to instantaneously generate steam within 3 to 4 seconds. In an exemplary embodiment, the steam generator unit 100 is configured to instantaneously generate steam of 0.5 grams within 3 to 4 seconds. In theoretically the steam generator unit 100 generates steam of 0.5 grams within 0.85 seconds.
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(47) In one embodiment, a proper clamping arrangement is made to secure the helical coil tube 150 to in position firmly. The heat from ceramic heater radiates on the helical coil 150 through which water flows. Besides the band heater 103 is contact with helical coils 150. Thus, heat is transmitted both by radiation and conduction on to water. The water coils 150 entering the heater, existing and also all related external parts are insulated to increase the efficiency of heater. By the time, water comes out of heater 103 it would have reached the saturations temperature. The entire assembly is proprietary item. The power of this unit is around, but not limited to, 400 watts to 500 watts.
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(49) In one embodiment, the inner housing comprises at least three orifices, which are configured to force the liquid to the annular space between inner and outer vessel at a high velocity and causes the liquid to atomize thus the evaporation of the water is faster and at a higher efficiency. Thus, water is converted to steam without any rise change in temperature in the outer chamber. The outer chamber receives heat by radiation from the band heater, which is a purchase item. Now steam lives axially the evaporator, via a check valve 126, the purpose of the check valve 126 is to avoid steam flowing in reverse direction. The complete evaporator 105 is a proprietary item, specially designed for the purpose it is meant for. Then steam passes through insulated pipes in to the super heater. In the pipe line steam pressure is measured by the pressure sensor 128 (shown in
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(52) The pressure controller 192 is a long pin, which presses the nozzle valve 193, which is normally held closed due to spring 194 force. Thus, the valve 193 is opened allowing steam to pass through spring adjust washer. The washer has slots on its periphery. Then steam passes through annular holes in the nozzle housing on its face. The passage of steam is opened by pressing the knob 195, which in turn pushes the pressure controller 192. Proper high pressure, high temperature seals are provided wherever required, to avoid leakage of steam. The required pressure adjustment or reduce blowing pressure from about 175 psi to 150 psi. In such case, the user needs to un-screw the pressure adjuster. The value could be read on the digital display monitor. The user could increase pressure using the pressure adjuster. By doing so you are varying spring force.
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(54) In one embodiment, the steam generator unit 200 is an independent unit, to produce high pressure water. In one embodiment, the expansion vessel is a light PVC construction, or any such material moulded tank has a capacity of 8 to 5 Liters. The expansion vessel temporarily holds a small amount of water ready to use for steam generation. The flow is automatic through non-return valve to the barrel of micro pump when motor is working. The motor on and off is control remotely from the electrical control panel and the control panel is placed in a convenient position, wherein all the control is electrical except the flow control by needle valve. In one embodiment, the controls of the steam generator unit (100 and 200) are remotely housed and comprise a microprocessor unit, so that the sequence of operation can be programmed.
(55) In another embodiment, the steam generator unit 200 acts an independent system, which is a cleaning system on its own. The high-pressure water of required flow 30 cc/minute is supplied by a micro pump 202. The micro pump 202 draws water from miniature tank 210, which is similar to fish tank used in house aquarium. In one embodiment, the steam generator unit 200 has its own related valves, control flow, pressure, and also sensors of pressure and temperature. The sensors will provide signals to operate the unit from a microprocessor or from electrical control units remotely. It is necessary to read the PID diagram/steam circuit as shown in
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(63) Preferred embodiments of this innovation are described herein, including the best mode known to the inventors for carrying out the innovation. It should be understood that the illustrated embodiments are exemplary only and should not be taken as limiting the scope of the innovation.
(64) The foregoing description comprises illustrative embodiments of the present innovation. Having thus described exemplary embodiments of the present innovation, it should be noted by those skilled in the art that the within disclosures are exemplary only, and that various other alternatives, adaptations, and modifications may be made within the scope of the present innovation. Merely listing or numbering the steps of a method in a certain order does not constitute any limitation on the order of the steps of that method. Many modifications and other embodiments of the innovation will come to mind to one skilled in the art to which this innovation pertains having the benefit of the teachings in the foregoing descriptions. Although specific terms may be employed herein, they are used only in generic and descriptive sense and not for purposes of limitation. Accordingly, the present innovation is not limited to the specific embodiments illustrated herein.