Aeration device, a use thereof, and water purification installation with such an aeration device
09844760 · 2017-12-19
Assignee
Inventors
Cpc classification
C02F3/205
CHEMISTRY; METALLURGY
F04D29/056
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01F23/231141
PERFORMING OPERATIONS; TRANSPORTING
F04D29/058
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01F23/23125
PERFORMING OPERATIONS; TRANSPORTING
F16C32/0402
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01F23/23122
PERFORMING OPERATIONS; TRANSPORTING
F04D29/057
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C17/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02W10/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
Abstract
An aerator for aerating water comprises a distribution system for distributing air below the water surface and a compressor with an air inlet and at least one air outlet. The compressor is configured to be placed below the water surface. The infiltration of water at the air inlet is prevented by an intake pipe with one open end above the water surface and the other open end has a watertight connection to the compressor. The distribution system has a watertight connection to the air outlet and, due to its nature or by at least one valve, can hold back water. The housing is in thermal contact with the water to cool the compressor. The compressor is a centrifugal compressor that comprises an impeller that is driven by a shaft that it is mounted on air bearings, magnetic bearings or both.
Claims
1. An aerator for aerating water that comprises a distribution system for distributing air below a water surface and a compressor with an air inlet and at least one air outlet, whereby the compressor is configured to be placed below the water surface in that the compressor is provided with a closed housing configured to prevent an infiltration of the water into the compressor, whereby the infiltration of the water at the air inlet is prevented by an intake pipe being provided of which a first open end is above the water surface and a second open end has a watertight connection to the compressor, whereby the infiltration of the water at the at least one air outlet is prevented by the distribution system having a watertight connection to the at least one air outlet and, due to the watertight connection of the distribution system or by having at least one valve, the housing is closed to hold back the water and whereby the housing is in thermal contact with the water to cool the compressor, wherein the compressor is a centrifugal compressor that comprises an impeller that is driven by a shaft that is mounted on air bearings, wherein a portion of pressurized air from the action of the impeller also flows to the air bearings and then to the intake pipe, and wherein at least one the of the air inlet and/or the air outlet of the compressor is positioned under the motor and/or the impeller such that an air bubble will be enclosed in the compressor to hold back the water in the event of a leak when the compressor is placed below the water surface.
2. The aerator according to claim 1, wherein the distribution system comprises at least one diffuser.
3. The aerator according to claim 2, wherein at least one distribution arm is provided with a sidelong branch that is equipped with at least one diffuser.
4. The aerator according to claim 2, wherein the distribution system comprises at least two distribution arms leading away from the compressor, each distribution arm equipped with at least two diffusers.
5. The aerator according to claim 1, wherein the distribution system comprises at least two distribution arms leading away from the compressor, each distribution arm equipped with at least two diffusers.
6. The aerator according to claim 1, wherein the shaft is provided with a cavity extending in the length of the shaft, and that the compressor is provided with an air channel that runs from a pressure side to the intake pipe via the cavity.
7. The aerator according to claim 1, wherein the compressor and the distribution system are arranged so that the compressor and the distribution system are configured to rotate around a vertical axis.
8. The aerator according to claim 7, wherein the distribution system is equipped with a nozzle with a direction that has at least a component perpendicular to the radial direction.
9. The aerator according to claim 1, wherein the aerator can be taken out of the water as a whole by using a handle that is attached on top of the aerator.
10. The aerator according to claim 9, wherein the distribution system is connected to the compressor in a way that is self-supporting, or wherein support means are provided on the aerator to support the distribution system.
11. The aerator according to claim 1, wherein connections between the compressor and the intake pipe and between the at least one air outlet and the distribution system are detachable, whereby a valve in each of the intake pipe and the distribution system prevents the infiltration of water.
12. The aerator according to claim 1, wherein the housing comprises at least one condensate outlet at a bottom of the housing.
13. The aerator according to claim 1, wherein the housing further comprises cooling fins on the housing.
14. A water purification plant that comprises at least one basin for water that has to be aerated, wherein a component of the water purification plant is an aerator according to claim 1.
15. A use of an aerator according to claim 1 for introducing air into wastewater to be purified.
16. An aerator for aerating water that comprises a distribution system for distributing air below a water surface and a compressor with an air inlet and at least one air outlet, whereby the compressor is configured to be placed below the water surface in that the compressor is provided with a housing configured to prevent an infiltration of the water into the compressor, whereby the infiltration of the water at the air inlet is prevented by an intake pipe being provided of which a first open end is above the water surface and a second open end has a watertight connection to the compressor, whereby the infiltration of the water at the at least one air outlet is prevented by the distribution system having a watertight connection to the at least one air outlet and, due to the watertight connection of the distribution system or by having at least one valve, the housing is closed to hold back the water and whereby the housing is in thermal contact with the water to cool the compressor, wherein the compressor is a centrifugal compressor that comprises an impeller that is driven by a shaft that is mounted on air bearings, magnetic bearings or both, wherein the compressor and the distribution system are arranged so that the compressor and the distribution system are configured to rotate around a vertical axis, and wherein the aerator rests on a turntable that is configured to rest on the bottom of a reservoir in which the water is located.
17. An aerator for aerating water that comprises a distribution system for distributing air below a water surface and a compressor with an air inlet and at least one air outlet, whereby the compressor is configured to be placed below the water surface in that the compressor is provided with a closed housing configured to prevent an infiltration of the water into the compressor, whereby the infiltration of the water at the air inlet is prevented by an intake pipe being provided of which a first open end is above the water surface and a second open end has a watertight connection to the compressor, whereby the infiltration of the water at the at least one air outlet is prevented by the distribution system having a watertight connection to the at least one air outlet and, due to-the watertight connection of the distribution system or by having at least one valve, the housing is closed to hold back the water and whereby the housing is in thermal contact with the water to cool the compressor, wherein the compressor is a centrifugal compressor that comprises an impeller that is driven by a shaft that is mounted on air bearings, wherein a portion of pressurized air from the action of the impeller also flows to the air bearings and then to the intake pipe, wherein at least one the of the air inlet and/or the air outlet of the compressor is positioned under the motor and/or the impeller such that an air bubble will be enclosed in the compressor to hold back the water in the event of a leak when the compressor is placed below the water surface, wherein the distribution system comprises at least two distribution arms leading away from the compressor, each distribution arm equipped with at least two diffusers, and wherein at least one distribution arm is provided with a sidelong branch that is equipped with at least one diffuser.
18. An aerator for aerating water that comprises a distribution system for distributing air below a water surface and a compressor with an air inlet and at least one air outlet, whereby the compressor is configured to be placed below the water surface in that the compressor is provided with a housing configured to prevent an infiltration of the water into the compressor, whereby the infiltration of the water at the air inlet is prevented by an intake pipe being provided of which a first open end is above the water surface and a second open end has a watertight connection to the compressor, whereby the infiltration of the water at the at least one air outlet is prevented by the distribution system having a watertight connection to the at least one air outlet and, due to-the watertight connection of the distribution system or by having at least one valve, the housing is closed to hold back the water and whereby the housing is in thermal contact with the water to cool the compressor, wherein the compressor is a centrifugal compressor that comprises an impeller that is driven by a shaft that is mounted on air bearings, wherein a portion of pressurized air from the action of the impeller also flows to the air bearings and then to the intake pipe, wherein the compressor and the distribution system are arranged so that the compressor and the distribution system are configured to rotate around a vertical axis, wherein the distribution system is equipped with a nozzle with a direction that has at least a component perpendicular to the radial direction, and wherein the aerator rests on a turntable that is configured to rest on the bottom of a reservoir in which the water is located.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) With the intention of better showing the characteristics of the invention, a few preferred embodiments of an aerator according to the invention are described hereinafter by way of an example, without any limiting nature, with reference to the accompanying drawings, wherein:
(2)
(3)
(4)
(5)
(6) The aerator 1 shown in
DETAILED DESCRIPTION OF THE INVENTION
(7) The intake pipe 3 is provided with a covering 5 to keep out rainwater, a slip ring 6 for electrical connections and a handle, in this case in the form of a lifting eye 7.
(8) An external power supply cable 8 is connected to the slip ring, and a second cable 9 runs from the slip ring to a control unit 10 that is connected to the compressor 2.
(9) The air distribution system consists of two distribution arms 11 connected to the compressor 2 in the radial direction, each with four diffusers 12. The distribution arms are suspended from the intake pipe 4 via a suspension cable 13, and hang freely from the bottom of the basin in which the aerator 1 is placed.
(10) The aerator 1 stands on a turntable 14, that enables the aerator 1 to turn around its axis A-A′. This can be a turntable 14 that is fastened at or on the bottom of the basin so that it is free to turn, but it can also be an actively driven turntable.
(11) As shown in
(12) The compressor also comprises a centrifugal impeller 21 that is mounted on the shaft 17, and which is surrounded by a volute 22 on which air outlets 23 are provided.
(13) In this case an air bearing 24 is provided in a number of places between the rotor 16 and the housing 19. According to the invention the number of air bearings 24 can be freely chosen and also, according to an embodiment not shown in the drawings, the shaft 17 can be mounted on bearings by a combination of one or more air bearings with one or more magnetic bearings. However a variant in which the shaft 17 is mounted on one or more magnetic bearings is within the scope of the present invention.
(14) Condensate outlets 25 are provided at the bottom of the housing 19, and near the connection between the intake pipe 3 and the compressor 2.
(15) The motor housing 19 and the volute 22 together form a compressor housing that prevents the infiltration of water into the compressor.
(16) An oxygen sensor 26 is connected to the control unit 10.
(17) The operation of the aerator 1 is very simple and as follows.
(18) The aerator is lifted from the lifting eye 7 by an external lifting apparatus and placed in the desired position on a turntable 14 in a basin with water to be aerated.
(19) Electricity is supplied to the cable 8, and consequently also to the second cable 9, via the slip ring 6.
(20) The oxygen sensor measures the oxygen level in the water. If this is below a threshold, the control unit 10 will start up the motor 15, such that the rotor 16, the shaft 17 and the impeller 21 start to turn.
(21) Air is now sucked in from the atmosphere via the intake pipe 3 and pushed, due to the action of the impeller 21 and the volute 22, under pressure from the air outlets 21 to the distribution arms 11 and thereby the diffusers 12, whereby this air comes out as small bubbles 27 that can transfer their oxygen to the water. This is indicated in
(22) A proportion of the pressurised air on the outlet side of the impeller 21 also flows to the air bearings 24, along a path indicated by arrows Q in
(23) As soon as the oxygen concentration measured by the oxygen sensor 26 goes above the threshold, the motor 15 of the compressor is switched off again by the control unit 10.
(24) Because the diffusers 12 can allow air through but not water, while the compressor 2 is stopped no water can infiltrate the compressor 2 via the air distribution system 4.
(25) If the air distribution system 4 has elements that could allow water into the air distribution system 4 when the compressor 2 is stopped, suitable valves, for example non-return valves, must be provided to prevent this water from being able to damage the compressor 2.
(26) The heat generated in the motor 15 during use is conducted to the water via the cooling fins 20 of the motor housing 19, by which the motor 15 is cooled.
(27) During use water vapour in the air can condense in the aerator 1. The condensate formed can be removed via condensate outlets 25.
(28) A turning motion, independent of the driving force for this, of the entire aerator 1 is possible on account of the turntable 14, and on account of the slip ring that can maintain an electrical connection between a fixed power source on the berm and the turning motor.
(29) The cable 8, the second cable 9 and the slip ring 6 can also be used to transmit control signals to the control unit 10.
(30) The oxygen sensor 26 is optional, although without this oxygen sensor 26 the aerator 1 cannot control itself as a function of the oxygen content of the water, but can only be on or off, or it can adjust its operation on the basis of an external control signal.
(31) If the aerator 1 requires maintenance or cleaning, it can easily be taken out of the water as a whole, i.e. with the air distribution system, via the lifting eye.
(32) If various aerators 1 are in a single basin, a specific aerator 1 is only used by the automatic oxygen-dependent controller if necessary locally, such that unnecessary aeration, and thus unnecessary energy consumption, is avoided.
(33) The aerator 1 shown in
(34) One of the sidelong branches 28 of each distribution arm 11 is provided with a nozzle 29 that has a direction, i.e. a direction in which it ejects air in operation, that has at least a component that is perpendicular to the radial direction seen from the compressor 2.
(35) The use of this variant of the aerator 1 differs from the use described above in that a larger quantity of water is being aerated. Moreover during the use of this variant of the aerator 1, part of the air pushed into the air distribution system 4 by the compressor is pushed out of the nozzle 29. As a result a force is exerted on the air distribution system in the opposite direction, that makes the entire aerator, except for the lifting eye 7, the cable 8 and a part of the slip ring 6, turn on the turntable.
(36) This turning motion also ensures the mixing of the water around the aerator 1.
(37)
(38) This embodiment essentially differs from the embodiments described earlier, by the compressor with its air inlet and air outlet 23 being mounted lower, i.e. the air inlet and air outlet 23 are located below the impeller 21 and motor 15.
(39) In order to make this possible, the intake pipe 3 must follow a curve 30.
(40) The operation of this embodiment is as described above.
(41) The advantage of this embodiment is that in the event of a leak, the compressor 2 is protected against water damage by the air bubble present in the compressor housing.
(42) In a similar way to
(43) Here the aerator 1 cannot turn, and consequently a slip ring 6 is not necessary. The compressor 2 is detachable, via detachable shutoff devices 31, from the intake pipe 2 and the air distribution system 4, whereby valves in the detachable shutoff devices 31 prevent the intake pipe 2 and the air distribution system 4 from filling up with water.
(44) The compressor 2 can be taken out of the water basin by a lifting device and guided by a guide rail 32 for inspection, maintenance, etc, and then put back again afterwards.
(45) The present invention is by no means limited to the embodiments described as an example and shown in the drawings, but an aerator according to the invention can be realised in all kinds of variants, without departing from the scope of the invention.