Wastewater Treatment Method and System for Removal of Phosphorus, Nitrogen and Coliforms
20210188681 · 2021-06-24
Inventors
Cpc classification
C02F9/00
CHEMISTRY; METALLURGY
C02F1/288
CHEMISTRY; METALLURGY
C02F3/288
CHEMISTRY; METALLURGY
B01D39/06
PERFORMING OPERATIONS; TRANSPORTING
C02F3/00
CHEMISTRY; METALLURGY
International classification
Abstract
A novel wastewater treatment method, apparatus and system to treat wastewater from septic tanks, including a tertiary treatment for the passive removal of phosphorus, nitrogen and coliforms from sewage streams, is described. The method, apparatus and systems comprise a septic tank, an enviro-septic system, a dephosphatation system, a denitrification system and a polishing field, including related piping distribution and pumping systems. The invention further comprises an enviro-septic system comprising an advanced enviro-septic pipe, a filtration medium, a collection drain and associated distribution systems; a polishing field comprising an advanced enviro-septic pipe, a collection drain, a filtration medium, a collection drain and associated distribution systems; and a dephosphatation system comprising a filtration medium for the removal of phosphorus and coliforms and a denitrification system comprising a filtration medium for the removal of nitrogen. The wastewater treatment method is used to treat domestic, industrial and commercial sewage effluent.
Claims
1. A wastewater treatment method for the removal of phosphorus and coliforms comprising the steps of: settling a wastewater stream in a septic tank; filtering the wastewater stream through a septic system; removing phosphorus from the filtered wastewater stream outputted by the septic system through a dephosphatation system; and filtering the wastewater stream from the dephosphatation system using a polishing field.
2. The wastewater treatment method as defined in claim 28, the method further comprising removing nitrogen from the wastewater stream using a denitrification medium of the denitrification system.
3. (canceled)
4. (canceled)
5. (canceled)
6. A system for the removal of phosphorus and coliforms comprising: a septic system; a dephosphatation system fluidly connected to an output of the septic system; and a polishing field fluidly connected to an output of the dephosphatation system.
7. The system for the removal of phosphorus and coliforms as defined in claim 6, the system further comprising one or more pumping stations.
8. The system for the removal of phosphorus and coliforms as defined in claim 7 further comprising a low-pressure partition system (LPPS) and/or a low-pressure distribution system (LPDS).
9. The system for the removal of phosphorus and coliforms as defined in claim 6, wherein the septic system comprises perforated pipes covered by a geotextile.
10. The system for the removal of phosphorus and coliforms of claim 6, the system being adapted to further remove nitrogen comprising a denitrification system fluidly connected to the output of septic system, the polishing field being fluidly connected to an output of the denitrification system.
11. (canceled)
12. (canceled)
13. (canceled)
14. (canceled)
15. (canceled)
16. The system as defined in claim 21, one of the layers of sand filtration medium comprising a septic (AES) pipe in the center and a low-pressure pipe in the AES pipe.
17. The system as defined in claim 6, the dephosphatation system further comprising: a sealed container; and a dephosphatation medium installed in the sealed container.
18. The system as defined in claim 17, the dephosphatation system further comprising a dry membrane.
19. The system of claim 10, wherein the denitrification system further comprising: a compartment; and a denitrification filtration medium within the compartment.
20. The system as defined in claim 19, the denitrification system further comprising bags of white birch.
21. The system as defined in claim 6, wherein the polishing field further comprises: a chamber; one or more layers of materials to be placed in the bottom of said chamber, wherein said layers of materials are selected from the group consisting of crushed stone, geogrid, sand filtration media and fill soil; and one or more openings adapted to receive a ventilation pipe, a piezometer, one or more pipes from a low-pressure partition system (LPPS), one or more pipes from a low-pressure distribution system (LPDS), one or more pipes from a dephosphatation system and/or one or more pipes from a denitrification system.
22. The system as defined in claim 21, wherein the polishing field comprises the following layers to be placed at the bottom of the chamber: a first layer having a rough filtration medium; a second layer of geogrid; a third layer of fine filtration medium; a fourth layer of fine filtration medium; a fifth layer of fine filtration medium; and a sixth layer of sand or backfill soil taken on site.
23. The system as defined in claim 22, the fine filtration medium being sand.
24. The system as defined in claim 22, the rough filtration medium being crushed stones.
25. The system as defined in claim 21, further comprising a collection drain at the base of the chamber.
26. The wastewater treatment method of claim 1 further comprising passing the wastewater through a sealed container of the dephosphatation system.
27. The wastewater treatment method of claim 26 further comprising passing the wastewater through a dry membrane of the dephosphatation system.
28. The wastewater treatment method of claim 1 further comprising removing nitrogen from the wastewater stream with a denitrification system fluidly connected to the septic system.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0018] The above and other aspects, features and advantages of the invention will become more readily apparent from the following description, reference being made to the accompanying drawings in which:
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
[0029] A novel wastewater treatment method, apparatus and system for the removal of phosphorus and coliforms will be described hereinafter. Although the invention is described in terms of specific illustrative embodiments, it is to be understood that the embodiments described herein are by way of example only and that the scope of the invention is not intended to be limited thereby.
[0030] For purposes of the present application, the following expressions have the following meanings:
Enviro-septic system: a system based on the combination of one or more corrugated and perforated pipe covered by layers of material used to treat wastewater by creating aerobic and anaerobic digestion;
Low pressure partition system (LPPS): a system that allows the effluent from an enviro-septic system to be divided between different rows of pipes;
Low pressure distribution system (LPDS): a system that allow the effluent of the enviro-septic system to pass between and through different rows of pipes;
Denitrification system: a system that allows the denitrification of the effluent of the enviro-septic system;
Dephosphatation system: a system that allows phosphorus present in the effluent of an enviro-septic system to be captured; and
Polishing field: a system (“field”) that allows polishing or infiltration of the effluent of an enviro-septic system.
[0031] In a first embodiment of the present invention, a wastewater treatment method for the removal of phosphorus and coliforms 100 is illustrated in
[0032] Now referring to
[0033] One skilled in the art will appreciate that the order of certain steps of the wastewater treatment method for the removal of nitrogen and phosphorus 200 may be changed without departing from the present invention. For example, the removal of phosphorus may be performed before the removal of nitrogen, and the filtering of the wastewater stream using a polishing field may be the final step in the method.
[0034]
[0035] In some embodiments, the septic tank 110 comprises an outlet allowing water to flow by gravity towards the first pumping station 112. The first pumping station 112 is configured to pump, the water/liquid is pumped to feed the low-pressure distribution system. In some embodiments, the low-pressure distribution system is fed via a first low pressure partition system (LPPS 1) 114.
[0036] In some embodiments, the LPPS may comprise a plurality of input and output ports. In some of such embodiments, the LPPS may comprise five (5) ports, two of the ports being configured to feed other enviro-septic systems pipelines, also described as AES pipes 122 (shown in
[0037] The second pump station 116 may be configured to feed a second low pressure distribution system (LPDS 2) 123 (shown in
[0038] In some embodiments, the tank 166 may comprise a pipe having perforations located about the center of the tank 165. In such embodiment, after an accumulation of liquid at the bottom of the tank 166, such as approximately 200 mm of liquid, the effluent may pass through the perforations of the pipe. This pipe may further comprise a filter 164 (shown in
[0039] In such embodiments, the liquid is conveyed to the fourth pumping station 184. From the fourth pumping station 184, the water is pumped to the polishing field 180. At the outlet of the polishing field 180, the effluent is collected and then conveyed by gravity to the sampling point 184. In some embodiment, after rising water to a predetermined level in the well, such as about 50 mm, the liquid may exit the site through the outlet 199 (shown in
[0040]
[0041] Now referring to
[0042] Now referring to
[0043] Referring back to
[0044] In another embodiment of the present invention, the systems involved in the wastewater treatment for the removal of phosphorus and coliforms of method 100 (
Example 1: Enviro-Septic System
[0045] Now referring to
[0052] In some embodiments, the chamber upstream end may comprise an adapter having two openings. The first opening, typically located on top, may be adapted to receive a ventilation duct 125, such as a ventilation duct having a diameter of 100 mm. The second opening may be provided at the bottom to pass a pipe of the distribution system LPDS 123. In such an example, the opening and the pipe may each have 50 mm diameters.
[0053] Still in the present example, the chamber downstream end may comprise an adapter having two openings adapted to receive the ventilation pipe in the top hole 127 and a piezometer 128 in the bottom hole. The access point for the low-pressure pipe may be through the piezometer.
[0054] The collection drain 124 may leave from the base of the caisson on the downstream side and may arrive at the sampling point 130 where it may be directed to a pumping station 130, as shown in
Example 2: Enviro-Septic System
[0055] Now referring to
[0056] In such an example, the layers of materials placed from the bottom of the chamber may comprise the following: [0057] a first layer comprising a collection drain 124 and a rough filtration medium. As an example, the rough filtration medium may be a layer of crushed stones, typically having an height from 7.5 to 10 cm. As an example, the collection drain 124 may have a diameter of 7.5 cm or 10 cm and may be placed in the center with the rough filtration medium surrounding the collection drain 124 where the liquid may be collected and directed to the pumping station 130. [0058] a second layer of geogrid. [0059] a third layer of fine filtration medium, such as sand having about 35 cm thick sand filtration medium. [0060] a fourth layer of fine filtration medium comprising a perforated pipe, such as in the center, and a low-pressure pipe within the perforated pipe. In such an example, the fine filtration medium may be sand and may have a thickness of about 30 cm. [0061] a fifth layer of fine filtration medium, such as a 10 cm thick of sand filtration medium. [0062] a sixth of sand or backfill soil taken on site; such layer may have a thickness of about 20 cm.
[0063] The chamber may comprise an upstream end and a downstream end. The chamber upstream end may be equipped with an adapter having two openings 125. The first opening 125 may be located on top and may be adapted to receive a ventilation duct, such as a duct having a diameter of about 100 mm. The second opening, such as an opening having a diameter of about 50 mm, may be located at the bottom of the chamber to pass the pipe of the distribution LPDS 2 123. The diameter of the pipe may be adapted to be the same as the diameter of the second opening.
[0064] the chamber downstream end may comprise an adapter having two openings adapted to receive a ventilation pipe in the top hole 127 and a piezometer in the bottom hole 128. The access point for the low-pressure pipe may be through the piezometer.
[0065] The collection drain 124 (shown more clearly in
Example 3: Polishing Field
[0066] Referring now to
[0067] In the present example, the layers of materials 183 in the polishing chamber 181 may be located on the bottom of the box and may further comprise the following materials from the bottom of the box: [0068] from 7.5 to 12.5 cm of crushed stones and a collecting drain in the center, such as a collecting drain having a 7.5 cm diameter, [0069] geogrid, [0070] a first fine filtration medium, such as about 30 cm thickened of sand filtration medium. [0071] A second sand filtration medium with a perforated pipe 182 in the center. In such an example, the second sand filtration medium may have a thickness of about 30 cm. [0072] a third sand filtration medium, such as a 10 cm thick sand filtration medium. [0073] sand or backfill soil taken on site; such layer may have a thickness of about 20 cm.
[0074] The polishing field 180 may comprise an upstream end and a downstream end. The upstream end may comprise an adapter with one opening configured to receive a pipe 184 from the dephosphatation system. In some embodiments, the pipe may have a diameter of 100 mm.
[0075] The downstream end of the polishing field 180 may be comprise two openings configured to receive the vent pipe 186 in the top port and a piezometer 187 in the bottom port. The access tube of the pipe under low pressure typically passes through the piezometer.
[0076] The polishing field 180 may further be fluidly connected to a collection drain 185. In such an embodiment, the effluent is collected at the bottom of the chamber of the polishing field 180 by the collection drain 185. The collection drain 185 may further be connected to a sampling point 184. Such sampling point 184 where it may be directed to another treatment step which may be a dephosphatation system 160 or to the exit 199 of the treatment system, as shown in
Example 4: Dephosphatation System
[0077] In another example, the dephosphatation system 160 (shown in
Example 5: Denitrification System
[0078] In another example, the denitrification system 140 (shown in
Example 6: Pumping Station from Enviro-Septic System to Dephosphatation System
[0079] In yet another example, the enviro-septic system may comprise an outlet fluidly connected to a pumping station 130 (shown in
Example 7: Pumping Station from Dephosphatation to Polishing
[0080] The dephosphatation system 160 may comprise an outlet fluidly connected to a pumping station 170 (shown in
Example 8: Pumping Station from Enviro-Septic System to Denitrification System
[0081] The enviro-septic system may further comprise an outlet fluidly connected to a pumping station 130, the outlet being adapted to direct the effluent. The pumping station 130 may further comprise a well. In some embodiments, the well has a cylindrical shape. In yet other embodiments, the well has a diameter of about 60 cm and a depth of about 183 cm. The pumping station 130 may further comprise a submersible pump. The submersible pump may be a Little Giant® ½ hp, 115 volts with an hourly cycle.
Example 9: Pumping Station from Polishing Field to Dephosphatation System
[0082] The polishing field 180 may further comprise an outlet connected to or a fluid connection to a pumping station 184 (shown in
Example 10: Pumping Station from Dephosphatation System
[0083] The dephosphatation system 160 may further comprise an outlet fluidly connected to a pumping station 170, the outlet may be adapted to direct effluent. The pumping station 170 may further comprise a well. In some embodiments, the well has a cylindrical shape. In yet other embodiments, the well has a diameter of about 38 cm and a depth of about 183 cm. The pumping station 170 may further comprise a submersible pump, such as but not limited to a Little Giant® ½ hp, 115 volts operating on demand following a high-water level float. The pumping system 170 may further comprise an outlet adapted to direct the resulting effluent from the dephosphatation system 160 to the next treatment step, which may be denitrification 140, the polishing step 180 and/or the exit 199.
Example 11: Low Pressure Partition and Distribution Systems
[0084] Referring to
[0085] The methods apparatus and systems of the present invention may be used to treat wastewater streams as well as sewage wastewater streams originating from septic tanks.
[0086] While illustrative and presently preferred embodiments of the invention have been described in detail hereinabove, it is to be understood that the inventive concepts may be otherwise variously embodied and employed and that the appended claims are intended to be construed to include such variations except insofar as limited by the prior art.