Claims
- 1. A method of treating raw contaminated water from a water supply comprising:
providing a housing having a first port and a second port; providing in the housing at least one separator element arranged within the housing including a water permeable membrane with a characteristic of preventing contaminants in the raw water from passing therethrough, a product water conducting layer arranged adjacent the water permeable layer for receiving water passing through the water permeable layer, and a product water carrier duct connected to the water conducting layer for receiving water therefrom; communicating the raw water from the water supply to the first port to pass over the membrane such that product water passes through the membrane leaving contaminants in the raw water to form a concentrated contaminated water stream and passing the stream to the second port; providing a product water outlet port in the housing connected to the carrier duct for receiving product water therefrom; extracting contaminants from the concentrated contaminant water stream in a concentration chamber to form a return stream; returning at least some of the return stream to the housing at said one of the first and second ports to pass again over the element; and injecting gas into the water at a position in the system such that the concentrated contaminant water stream when it enters the concentration contains injected gas.
- 2. The method according to claim 1 wherein the gas is at least primarily air.
- 3. The method according to claim 1 wherein the gas is injected at a position where the water is under pressure from the pump.
- 4. The method according to claim 1 wherein the contaminants are extracted by feeding the concentrated contaminated water stream from said other of the first and second ports to a concentration chamber which is configured to reduce the velocity of the stream to cause by the velocity change deposition of some of the contaminants therefrom so as to settle in and collect in the concentration chamber, the concentration chamber being arranged such that the stream when extracted therefrom leaves the deposited contaminants in the chamber.
- 5. The method according to claim 4 wherein the injected water from the element passes into the concentration chamber where excess gas above saturation from the water collects as a cap in the chamber.
- 6. The method according to claim 5 wherein pressure in the cap is periodically released to cause expansion of the cap to effect purging of the chamber.
- 7. The method according to claim 1 wherein there is provided a main pump for pumping the raw water from the source to an increased operating pressure and wherein the air is injected downstream of the main pump.
- 8. The method according to claim 1 wherein the amount of gas injected is arranged such that oxygen in the gas is substantially wholly consumed in oxidizing contaminants in the water so that the return stream of water is saturated with low reactivity gases such as nitrogen.
- 9. The method according to claim 1 wherein the bubbles in the gas produced by the venturi increase the flocculation of particulate contaminants such that the flocculated contaminants collect in the chamber.
- 10. The method according to claim 1 wherein the gas injection causes fine crystallization of low molecular weight organics.
- 11. The method according to claim 1 wherein the injected gas is arranged to displace more volatile, less soluble contaminant gases such as methane or hydrogen sulfide and including extracting the volatile contaminant gases.
- 12. The method according to claim 9 wherein the volatile contaminant gases are collected in an air cap in the concentration chamber.
- 13. The method according to claim 12 wherein the air cap is maintained at a predetermined volume by a gas release valve having a discharge opening at a predetermined intended water level.
- 14. The method according to claim 13 wherein the gas release valve includes a slow discharge opening for continuous slow release of the gas.
- 15. The method according to claim 1 wherein the membrane surface is scrubbed by the gas as gas dissolved in the water is released by the pressure drop across the membrane.
- 16. The method according to claim 1 wherein the air is injected by a venturi.
- 17. The method according to claim 16 wherein the venturi comprises:
a tubular member arranged for connection to a first pipe at a first end and a second pipe at a second end; the tubular member defining an interior bore and having an abutment shoulder within the bore; the tubular member having an opening in one side; and an insert member with a cylindrical body arranged for insertion into the interior bore and a head at one end defining a flange at said one end for engaging said abutment shoulder; the insert member having a venturi duct passing through the body from said one end to the opposite end at the second sleeve; the insert member having an air injection bore at right angles to the venturi duct and communicating with the opening.
- 18. The method according to claim 17 wherein the tubular member comprises a T-fitting with a first pipe receptacle at the first end, a second pipe receptacle at the second end and a third pipe receptacle at the opening at the side and wherein the shoulder is defined by an end abutment of the first receptacle.
- 19. The method according to claim 17 wherein the tubular member comprises a tubular pipe having a cylindrical interior bore and at least one collar attached to the interior bore with one side face of the collar defining said abutment shoulder.
- 20. The method according to claim 19 wherein the tubular pipe has a first collar attached to the interior bore with one side face of the collar defining said abutment shoulder and a second collar spaced longitudinally of the first collar, the second collar having an inner diameter less than that of the first collar and the cylindrical body of the insert member having a stepped portion of reduced diameter engaging into the second collar.
- 21. A venturi for attachment to two pipe portions for injecting a second fluid into a first fluid flowing through the pipe portions comprising:
a tubular member arranged for connection to a first pipe portion at a first end and a second pipe portion at a second end; the tubular member defining an interior bore and having an abutment shoulder within the bore; the tubular member having an opening in one side; and an insert member with a cylindrical body arranged for insertion into the interior bore and a head at one end defining a flange at said one end for engaging said abutment shoulder; the insert member having a venturi duct passing through the body from said one end to the opposite end at the second sleeve; the insert member having an air injection bore at right angles to the venturi duct and communicating with the opening.
- 22. The venturi according to claim 21 wherein the tubular member comprises a T-fitting with a first pipe receptacle at the first end, a second pipe receptacle at the second end and a third pipe receptacle at the opening at the side and wherein the shoulder is defined by an end abutment of the first receptacle.
- 23. The venturi according to claim 21 wherein the tubular member comprises a tubular pipe having a cylindrical interior bore and at least one collar attached to the interior bore with one side face of the collar defining said abutment shoulder.
- 24. The venturi according to claim 23 wherein the tubular pipe has a first collar attached to the interior bore With one side face of the collar defining said abutment shoulder and a second collar spaced longitudinally of the first collar, the second collar having an inner diameter less than that of the first collar and the cylindrical body of the insert member having a stepped portion of reduced diameter engaging into the second collar.
- 25. A method of treating raw contaminated water from a water supply comprising:
providing a separator housing having a first port and a second port; providing in the separator housing at least one separator element arranged within the housing including a water permeable membrane with a characteristic of preventing contaminants in the raw water from passing therethrough, a product water conducting layer arranged adjacent the water permeable layer for receiving water passing through the water permeable layer, and a product water carrier duct connected to the water conducting layer for receiving water therefrom; in a first direction, communicating the raw water from the water supply to the first port to pass over the membrane such that product water passes through the membrane leaving contaminants in the raw water to form a concentrated contaminated water stream and passing the stream to the second port; in a second direction, communicating the raw water from the water supply to the second port to pass over the membrane such that product water passes through the membrane leaving contaminants in the raw water to form a concentrated contaminated water stream and passing the stream to the first port; periodically reversing the direction between the first direction and the second direction; providing a product water outlet port in the housing connected to the carrier duct for receiving product water therefrom; collecting the concentrated contaminant water stream to form a return stream, extracting contaminants from the stream and returning at least some of the stream to the housing at said one of the first and second ports to pass again over the element; providing a first and a second filter element, each arranged adjacent a respective one of the first and second ports such that water flowing through the respective one of the first and second ports also flows through the respective filter element; the first and second ports, the first and second filter elements, the collection of the concentrated contaminant water stream and the return stream being arranged such that, in the first direction, the return stream passes through the first filter element in a first filter direction to the first port and the concentrated contaminant water stream exits from the second port through the second filter element in a first filter direction and such that, in the second direction, the return stream passes through the second filter element in a second filter direction to the second port and the concentrated contaminant water stream exits from the first port through the first filter element in a second filter direction.
- 26. The method according to claim 25 wherein the first and second filter elements each have a separate filter housing mounted externally of the separator housing.
- 27. The method according to claim 25 wherein the first and second filter elements include a filter screen formed of an electron deficient material such as stainless steel.
- 28. The method according to claim 27 including applying a voltage to the filter screen.
- 29. The method according to claim 28 wherein the voltage is DC or slowly alternating.
- 30. The method according to claim 25 wherein the first and second filter elements each comprise:
a tubular filter housing having first and second end caps; a first port at one end cap; a second port in the tubular housing; a cylindrical filter screen mounted in the housing and attached to and carried by the end caps such that the first port communicates with the interior of the cylindrical filter screen and the second port communicates with an area outside the filter screen; the filter screen comprising a rigid, perforated cylindrical support, a fabric screen wrapped around the support and a covering layer wrapped around the fabric screen; whereby the fabric screen is supported for flow therethrough in both directions.
- 31. The method according to claim 30 wherein the fabric screen and the covering layer are attached to bands extending longitudinally of the support.
- 32. The method according to claim 30 wherein the fabric screen and the covering layer are wrapped by bands extending circumferentially of the support.
- 33. The method according to claim 30 wherein the perforated support comprises a well screen with a collar welded to each end.
- 34. The method according to claim 30 wherein the filter screen comprises at least two portions connected end to end by a support collar.
- 35. The method according to claim 25 wherein the first and second filter elements each comprise:
a tubular filter housing having first and second end caps; a first port at one end cap; a second port in the tubular housing; a tubular filter screen mounted in the housing and attached to and carried by the end caps such that the first port communicates with the interior of the cylindrical filter screen and the second port communicates with an area outside the filter screen; the filter screen comprising a plurality of longitudinally extending rods, end plates supporting the rods in parallel spaced relation and a fabric screen wrapped around the rods; the rods including an outer set and an inner set; the fabric screen being wrapped outside the outer rods and inside the inner rods so as to form a convoluted path.
- 36. The method according to claim 35 wherein the inner set of rods lies on a first imaginary cylinder and the outer set of rods lies on a second imaginary cylinder larger in diameter than the first.
- 37. The method according to claim 35 wherein the rods are connected to a source of a voltage for communicating the voltage to the fabric screen.
- 38. A filter element comprising:
a tubular filter housing having first and second end caps; a first port at one end cap; a second port in the tubular housing; a cylindrical filter screen mounted in the housing and attached to and carried by the end caps such that the first port communicates with the interior of the cylindrical filter screen and the second port communicates with an area outside the filter screen; the filter screen comprising a rigid, perforated cylindrical support, a fabric screen wrapped around the support and a covering layer wrapped around the fabric screen; whereby the fabric screen is supported for flow therethrough in both directions.
- 39. The element according to claim 38 wherein the fabric screen and the covering layer are attached to bands extending longitudinally of the support.
- 40. The element according to claim 38 wherein the fabric screen and the covering layer are wrapped by bands extending circumferentially of the support.
- 41. The element according to claim 38 wherein the perforated support comprises a well screen with a collar welded to each end.
- 42. The element according to claim 38 wherein the filter screen comprises at least two portions connected end to end by a support collar.
- 43. A filter element comprising:
a tubular filter housing having first and second end caps; a first port at one end cap; a second port in the tubular housing; a tubular filter screen mounted in the housing and attached to and carried by the end caps such that the first port communicates with the interior of the cylindrical filter screen and the second port communicates with an area outside the filter screen; the filter screen comprising a plurality of longitudinally extending rods, end plates supporting the rods in parallel spaced relation and a fabric screen wrapped around the rods; the rods including an outer set and an inner set; the fabric screen being wrapped outside the outer rods and inside the inner rods so as to form a convoluted path.
- 44. The element according to claim 43 wherein the inner set of rods lies on a first imaginary cylinder and the outer set of rods lies on a second imaginary cylinder larger in diameter than the first.
- 45. The element according to claim 43 wherein the rods are connected to a source of a voltage for communicating the voltage to the fabric screen.
Parent Case Info
[0001] This application is related to U.S. application Ser. No. 08/655,744 filed May 31, 1996and Ser. No. 08/762,668 filed Dec. 9, 1996, the disclosures of which are incorporated herein by reference. These applications corresponds to PCT International Application No. PCT/CA97/00378 which was published on Dec. 11, 1997 under publication No. WO 97/46305.
Continuations (1)
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Number |
Date |
Country |
Parent |
09134536 |
Aug 1998 |
US |
Child |
09768163 |
Jan 2001 |
US |