Coarse bubble diffuser for wastewater treatment
09539550 ยท 2017-01-10
Inventors
- Thomas E. Frankel (Poughkeepsie, NY, US)
- Seoungil Kang (Poughkeepsie, NY, US)
- Todd D. Ritter (Poughkeepsie, NY, US)
Cpc classification
B01F23/23123
PERFORMING OPERATIONS; TRANSPORTING
C02F3/201
CHEMISTRY; METALLURGY
B01F23/231241
PERFORMING OPERATIONS; TRANSPORTING
B01F23/23125
PERFORMING OPERATIONS; TRANSPORTING
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
B01F23/231263
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
An apparatus is presented that includes a body and a membrane. The body defines an externally hemispherical body portion with an orifice, as well as a channel passing through the body and terminating in the orifice. The membrane is formed at least in part of an elastomeric material and overlies a portion of the externally hemispherical body portion. The membrane defines a plurality of holes therein, and a plug that is inserted into the orifice and the channel. When submerged at the bottom of a wastewater treatment tank and in gaseous communication with a distribution conduit providing compressed gas, the apparatus may function to release bubbles into the wastewater. When the compressed gas is turned off, the apparatus acts as a check valve that stops water from entering the diffuser and the distribution conduit.
Claims
1. An apparatus comprising: a body defining: an externally hemispherical body portion with an orifice; a channel passing through the body and terminating in the orifice; and a membrane formed at least in part from an elastomeric material, overlying at least a portion of the externally hemispherical body portion, and defining: a plurality of holes therein; and a plug inserted into the orifice and the channel.
2. The apparatus of claim 1, wherein the orifice is disposed at a crown of the externally hemispherical body portion.
3. The apparatus of claim 1, wherein the body further defines a hollow cylindrical stem that surrounds a portion of the channel and is at least partially externally threaded.
4. The apparatus of claim 3, wherein the channel passes linearly from an end of the hollow cylindrical stem to the orifice.
5. The apparatus of claim 1, wherein the channel is cylindrical.
6. The apparatus of claim 1, wherein the orifice is round.
7. The apparatus of claim 1, wherein the body further defines an externally cylindrical body portion that abuts a base of the externally hemispherical body portion.
8. The apparatus of claim 7, wherein the externally cylindrical body portion is characterized by a diameter smaller than a diameter of a base of the externally hemispherical body portion so that a circular edge is formed at the base of the externally hemispherical body portion.
9. The apparatus of claim 7, wherein the membrane further defines a cylindrical membrane part that at least partially overlies the externally cylindrical body portion.
10. The apparatus of claim 9, wherein the cylindrical membrane part defines a pair of parallel circular external ridges.
11. The apparatus of claim 1, wherein the plug is at least partially conical.
12. The apparatus of claim 1, further comprising a circular clamp encircling the membrane and the body.
13. The apparatus of claim 12, wherein the circular clamp is operative to fixate the membrane to the body.
14. The apparatus of claim 1, wherein the membrane is operative to expand away from the body in response to passing of compressed gas through the channel towards the orifice.
15. The apparatus of claim 14, wherein an extent of insertion of the plug into the orifice and the channel decreases when the membrane expands away from the body.
16. The apparatus of claim 14, wherein, without the membrane expanded away from the body, the plug is inserted into the orifice and the channel so as to form a watertight seal between the membrane and the body.
17. A system comprising: a distribution conduit; a body attached to the distribution conduit and defining: an externally hemispherical body portion with an orifice; a channel passing through the body and terminating in the orifice, and in gaseous communication with an interior of the distribution conduit; and a membrane formed at least in part from an elastomeric material, overlying at least a portion of the externally hemispherical body portion, and defining: a plurality of holes therein; and a plug inserted into the orifice and the channel.
18. The system of claim 17, wherein: the distribution conduit, the body, and the membrane are submerged in a liquid; and the system is operative to release bubbles into the liquid through the plurality of holes via a provisioning of gas to the channel through the distribution conduit.
19. The system of claim 17, wherein the distribution conduit defines a set of male threads.
20. The system of claim 17, wherein the body is threaded into the distribution conduit.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) These and other features, aspects, and advantages of the present invention will become better understood with regard to the following description, appended claims, and accompanying drawings where:
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DETAILED DESCRIPTION OF THE INVENTION
(10) The present invention will be described with reference to illustrative embodiments. For this reason, numerous modifications can be made to these embodiments and the results will still come within the scope of the invention. No limitations with respect to the specific embodiments described herein are intended or should be inferred.
(11)
(12) Additional details of a representative one of the diffusers 100 are shown in
(13) The diffuser 100 may be separated into a body 105, a membrane 110, and a circular clamp 115. The body 105 defines: an externally hemispherical body portion 120, an externally cylindrical body portion 125, an internal hollow cylindrical body portion 130, several internal structural fins 135, and a threaded hollow cylindrical stem 140. The threaded hollow cylindrical stem 140 combines with the internal hollow cylindrical body portion 130 to form a straight-walled cylindrical channel 145 that terminates in a round orifice 150 disposed at a crown of the externally hemispherical body portion 120. At the same time, the externally cylindrical body portion 125 abuts a base of the externally hemispherical body portion 120. The diameter of the externally cylindrical body portion 125 is smaller than a diameter of a base of the externally hemispherical body portion 120 so that a circular edge 155 is formed at the base of the externally hemispherical body portion 120. The several internal structural fins 135 span between the internal hollow cylindrical body portion 130 and the externally hemispherical body portion 120 to give the body 105 structural integrity.
(14) The membrane 110 has a shape that mimics somewhat the external shape of the body 105. That is, the membrane 110 defines a cylindrical membrane part 160 that is attached to a base of a hemispherical membrane part 165. The hemispherical membrane part 165 defines a plurality of holes 170 therein. When the diffuser 100 is assembled, the hemispherical membrane part 165 overlies the externally hemispherical body portion 120, while the cylindrical membrane part 160 overlies the externally cylindrical body portion 125. An internal circular shoulder 175 at the interface of the cylindrical membrane part 160 and the hemispherical membrane part 165 abuts the circular edge 155 of the body 105 to reduce the chance of the membrane 110 lifting away from the body 105. Externally, the cylindrical membrane part 160 defines a pair of parallel circular external ridges 180.
(15) The membrane further defines a conical plug 185, which projects internally from the crown of the hemispherical membrane part 165. In accordance with aspects of the invention, the conical plug 185 is inserted into the round orifice 150 and the cylindrical channel 145 of the body 105. With the conical plug 185 fully inserted into the round orifice 150 and the cylindrical channel 145 as shown in
(16) The circular clamp 115 encircles the cylindrical membrane part 160 and the externally cylindrical body portion 125 so as to compressively fixate the membrane 110 to the body 105. The circular clamp 115 falls between the pair of parallel circular ridges 180 so that the chance of the membrane 110 translating up or down in the circular clamp 115 is reduced.
(17) In one or more embodiments, the body 105 may be made of a hard plastic such as, for example, acetal, while the membrane 110 may be formed of an elastomeric material such as, as just two examples, silicone rubber or ethylene propylene diene monomer (EPDM) rubber. The membrane 110 may further be coated with polytetrafluoroethylene (PTFE) or impregnated with fluorine. Manufacture of both the body 105 and the membrane 110 may be by injection molding. The circular clamp 115 may comprise a conventional metallic hose clamp that may be sourced commercially.
(18)
(19) In the present illustrative embodiment, the diffuser 100 is mounted to the distribution conduit 1000 via the threaded hollow cylindrical stem 140, which is threaded into an internally threaded neck 1005 that protrudes upward from the remainder of the distribution conduit 1000.
(20) Once so fixated, the cylindrical channel 145 of the body 105 is in gaseous communication with the interior of the distribution conduit 1000. The provisioning of compressed gas into the distribution conduit 1000 therefore forces gas into the cylindrical channel 145 of the body 105 towards the round orifice 150 (upward directed arrows in
(21) Returning to
(22) As indicated above, it is preferred that the conical plug 185 be of sufficient length that it does not completely exit the round orifice 150 and the cylindrical channel 145 when the diffuser is in operation, that is, with the diffuser 100 producing bubbles and the membrane 110 expanded somewhat away from the body 105 (
(23) Prototypes of the above-described diffuser 100 were manufactured, and the submerged prototypes were observed to create plumes of bubbles when supplied with compressed gas. Headloss versus gas flow was also measured. Headloss essentially measures the loss in energy in the gas as it passes through the diffuser. The results of these measurements are shown in
(24) The diffuser 100, and more generally, diffusers falling within the scope of the invention, present several advantages. For example, with the diffuser 100 configured as set forth above, attaching the membrane 110 to the body 105 is as simple as applying the membrane 110 to the body 105 as indicated in
(25) Installation of the diffuser 100 onto the distribution conduit 1000 and its subsequent removal are also very easy, and may therefore be performed by largely unskilled labor. Installation of the diffuser 100, for example, is as easy as screwing the threaded hollow cylindrical stem 140 into the internally threaded neck 1005 of the distribution conduit 1000. Removal is performed by simply unscrewing these components.
(26) At the same time, the distribution conduit 1000 provides an opportunity to retrofit existing wide band coarse bubble diffusers with diffusers similar to the diffusers 100. Wide band coarse bubble diffusers frequently include male threaded portions (i.e. nipples) that allow these diffusers to be threaded into gas distribution pipes with corresponding female threaded receivers. Returning to
(27) Perhaps, most importantly, the diffuser 100 and diffusers in accordance with aspects of the invention provide the desired check valve function in a reliable manner and with little maintenance. That is, the diffuser 100 allows gas to pass in one direction when turned on, but reliably prevents water from entering the diffuser 100 and the distribution conduit 1000 when turned off. A wastewater treatment plant may therefore turn their systems on and off at will without suffering degradation associated with fluid and sludge entering the piping. Wastewater system performance is thereby maintained while maintenance requirements are reduced. The variable-sized orifice produced by the unique interaction of the conical plug 185, the round orifice 150, and the cylindrical channel 145 allow a uniform air distribution across a piping grid over a wide range of air flows.
(28) It should again be emphasized that the above-described embodiments of the invention are intended to be illustrative only. Other embodiments can use different types and arrangements of elements for implementing the described functionality. For example, while the illustrative body 105 set forth above is shown to include certain internal elements (e.g., the internal hollow cylindrical body portion 130 and the internal structural fins 135), alternative bodies falling within the scope of the invention may be arranged in a different manner. A body may, for example, be essentially solid with a cylindrical channel passing therethrough. These numerous alternative embodiments within the scope of the appended claims will be apparent to one skilled in the art.
(29) Moreover, all the features disclosed herein may be replaced by alternative features serving the same, equivalent, or similar purposes, unless expressly stated otherwise. Thus, unless expressly stated otherwise, each feature disclosed is one example only of a generic series of equivalent or similar features.
(30) Any element in a claim that does not explicitly state means for performing a specified function or step for performing a specified function is not to be interpreted as a means for or step for clause as specified in AIA 35 U.S.C. 112(f). In particular, the use of step of in the claims herein is not intended to invoke the provisions of AIA 35 U.S.C. 112(f).