EP1084083A2 - Schmutzwasser-reinigungsanlage - Google Patents

Schmutzwasser-reinigungsanlage

Info

Publication number
EP1084083A2
EP1084083A2 EP19990943497 EP99943497A EP1084083A2 EP 1084083 A2 EP1084083 A2 EP 1084083A2 EP 19990943497 EP19990943497 EP 19990943497 EP 99943497 A EP99943497 A EP 99943497A EP 1084083 A2 EP1084083 A2 EP 1084083A2
Authority
EP
European Patent Office
Prior art keywords
water
plant
filter
purification
chamber
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Withdrawn
Application number
EP19990943497
Other languages
English (en)
French (fr)
Inventor
Nils Erik Pedersen
Lars Westlie
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Jordforsk
Original Assignee
Jordforsk
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Jordforsk filed Critical Jordforsk
Publication of EP1084083A2 publication Critical patent/EP1084083A2/de
Withdrawn legal-status Critical Current

Links

Classifications

    • CCHEMISTRY; METALLURGY
    • C02TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02FTREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02F3/00Biological treatment of water, waste water, or sewage
    • C02F3/02Aerobic processes
    • C02F3/12Activated sludge processes
    • C02F3/1236Particular type of activated sludge installations
    • C02F3/1242Small compact installations for use in homes, apartment blocks, hotels or the like
    • CCHEMISTRY; METALLURGY
    • C02TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02FTREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02F3/00Biological treatment of water, waste water, or sewage
    • C02F3/30Aerobic and anaerobic processes
    • CCHEMISTRY; METALLURGY
    • C02TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02FTREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02F1/00Treatment of water, waste water, or sewage
    • C02F1/30Treatment of water, waste water, or sewage by irradiation
    • C02F1/32Treatment of water, waste water, or sewage by irradiation with ultraviolet light
    • CCHEMISTRY; METALLURGY
    • C02TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02FTREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02F1/00Treatment of water, waste water, or sewage
    • C02F1/72Treatment of water, waste water, or sewage by oxidation
    • C02F1/78Treatment of water, waste water, or sewage by oxidation with ozone
    • YGENERAL 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
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02WCLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO WASTEWATER TREATMENT OR WASTE MANAGEMENT
    • Y02W10/00Technologies for wastewater treatment
    • Y02W10/10Biological treatment of water, waste water, or sewage

Definitions

  • This invention relates to a purification plant for purification of waste water and recycling water from a small group of households, agricultural units, cabins and the like. If the plant receives only grey water, the plant should purify it to such an extent that the water can be re-used for watering, washing, flushing of toilets, etc. If the plant receives black water, the plant should purify the water so that it can safely be discharged into the environment.
  • the plant is divided into three main parts; a sludge interceptor, a main filter with vertical unsaturated aerobic flow at the top and saturated anaerobic flow at the bottom of the filter, and a final filter with horizontal saturated anaerobic flow. As a final treatment the water is disinfected in order to remove bacteria.
  • the filtering plant is equipped with one or more buffer zones and overflow pipes between the main parts in order to give the plant the capacity to absorb extraordinary loads without untreated waste water running out into the environment.
  • aerobic means with access to external oxygen
  • anaerobic means without access to external oxygen.
  • Waste water contains biological and chemical components such as bacteria, phosphorus, nitrogen and organic materials, etc. These can cause local pollution problems such as acidification, dissemination of disease, overfertilisation of streams and water and the like if the waste water is discharged freely into the environment.
  • the waste water should be treated in order to reduce the content of, or completely remove, these components in order to ensure that the environment does not receive excessive amounts of the waste water's content of infectious and/or other environmentally hostile substances.
  • the waste water should be purified before re-use.
  • sand and other filter materials in a reservoir is known for purification of waste water where the water is dispersed on and/or in the filter media and transported through the filter media.
  • filters it is known to perform the purification under either anaerobic conditions, e.g. the filter medium is saturated with water, or under aerobic conditions where the filter medium is not saturated with water.
  • anaerobic conditions e.g. the filter medium is saturated with water
  • aerobic conditions where the filter medium is not saturated with water.
  • filters There are many different devices and filter materials for such filters, but they will not normally combine zones with purification under both saturated and unsaturated conditions or have the possibility of regulating the size of the different zones for optimisation of the purification process.
  • a purification plant which has combined a sludge interceptor with aerobic conditions, a second reservoir with anaerobic conditions filled with active carbon and mineral filter medium and a third reservoir with aerobic conditions where the water flows through a series of filter walls filled with active carbon or mineral filter medium. Part of the water will be recirculated back to the sludge interceptor.
  • This plant is not equipped with buffer zones which enable the plant to absorb extraordinary loads, nor has it the possibility of regulating the ratio between the size of anaerobic and aerobic zones in the plant.
  • An object of the present invention is to provide a compact purification plant which can purify grey water chemically, mechanically and biologically under both aerobic and anaerobic conditions, from a small group of households, agricultural units, cabins and the like to such an extent that the water can be re-used for watering purposes, as washing water, for flushing of toilet bowls. etc. If the waste water also contains water from the toilet, so-called black water, the plant should purify the water to such an extent that it can safely be discharged into local earth masses or another recipient without the risk of local pollution.
  • Another object of the invention is to provide a purification plant which can easily regulate the recirculation of the water between the different purification zones, the water's residence time and where it is easy to replace filter media, thus providing the plant with a very high total purification effect which satisfies present day requirements for purification of phosphorus, organic materials, nitrogen and bacteria by a wide margin.
  • a further object of the present invention is to provide a purification plant which is optimised with regard to nitrogen removal, and which can rapidly be adjusted/modified in order to maintain optimal nitrogen removal without conversion or alterations to the filter medium according to any changes in the operating conditions.
  • a purification plant consisting of several well-tried filtering techniques which are assembled in a specific combination: Sludge interception with denitrification and prefiltering, dispersal of water over a main filter medium for purification under aerobic unsaturated conditions, followed by purification in a final filter medium with saturated anaerobic conditions and finally disinfection by means of UV radiation or another disinfection method, such as sodium hypochlorite, ozone, etc.
  • both the sludge interception chambers and the final filter are equipped with buffer zones and connected to each other by one or more overflows in order to ensure that non-disinfected water does not escape during periods of extraordinary loading of the plant.
  • the sludge interceptor removes suspended materials and is divided into three chambers, two sedimentation chambers and a coarse prefilter.
  • the sedimentation chambers are designed in such a manner that they have a large volume and so that the water is forced to take a long path.
  • the sedimentation chambers should preferably be designed in such a manner that the water is forced to make a 180° turn in order to enter the second sedimentation chamber. This increases the residence time and thereby the sedimentation in the first sedimentation chamber.
  • the removal of suspended material is further ensured by the fact that the sludge interceptor has a prefilter.
  • the prefilter will form a biofilm which removes some of the content of organic material and bacteria in the waste water while some of the phosphorus content will be chemically bound to the filter medium.
  • the first sedimentation chamber is also used for denitrification of water recirculated from the main filter.
  • the water After sludge interception the water will be pumped into a dispersal system which comminutes the water on the upper surface of the filter medium in the main filter in such a manner that the water will be passively enriched with oxygen. Passively means without the injection of air into the filter.
  • the water In the main filter the water will undergo purification under vertical unsaturated aerobic flow conditions as it percolates downwards in the filter medium.
  • phosphorus will be chemically bound to the filter medium by means of adsorption, organic material is removed mechanically and bacterially by means of an active bioskin, and the nitrogen content of the water will be nitrified into nitrations. Bacteria will also be retained in the filter medium.
  • a collecting pipe which passes water to a pump chamber.
  • the height of the collecting pipe's outlet can be adjusted, thus causing a water surface to be formed in the lower part of the main filter.
  • the bottom part of the filter medium thereby becomes saturated with water, thus creating anaerobic conditions in this area.
  • the nitrations will be converted bacterially to nitrogen gas (denitrification), while the removal of organic material, bacteria and phosphorus will be conducted at approximately the same rate as for the aerobic part of the filter.
  • the height adjustment of the water surface allows the ratio between aerobic and anaerobic filter media to be adjusted by a simple movement for optimisation of the nitrification and denitrification processes.
  • the water is transported in a perforated pipe which is placed along the bottom of the filter to a pump chamber.
  • the pump will pass some of the water back to the first sedimentation chamber for denitrification and the rest to the final filter for final purification via a distribution pipe.
  • the distribution of the water between the final filter and the sludge interceptor can easily be adjusted by means of valves mounted on the distribution pipe.
  • the water will pass horizontally through the filter medium under anaerobic saturated conditions, thus causing the water to be denitrified.
  • the final filter will also remove residual organic material, bacteria and phosphorus.
  • the object of recirculating some of the water from the main filter back to the first sedimentation chamber is to utilise the high incidence of carbon in the chamber for the denitrification process. It is well known that carbon is necessary for the denitrification process, and an area with a high incidence of carbon will therefore enhance the removal of nitrogen in the plant. In addition there are two other zones in the plant which also contribute to the removal of the nitrogen content. This gives the plant a very high total purification effect on nitrogen.
  • the water After the water has passed through the final filter it is passed through a disinfection unit for further removal of bacteria. The water is then discharged into local earth masses or another water recipient, or collected in tanks for reuse.
  • the plant is designed to be able to accept a larger volume of water than that which is the average water consumption per day for the user units. This is due to the fact that the plant has a fixed through-flow area on the throughput connections between the different chambers.
  • both the sludge interceptor and the final filter can increase the water level in order to absorb sudden extra loads if the plant is loaded with more water than that which can run through the throughput connections per time unit. Even though the water level rises, however, all the water will still pass through the filters, thus creating buffer zones.
  • the plant has three chambers which employ filter media. Any kind of material may be employed which satisfies the requirements regarding permeability, porosity, specific surface, ability to form bioskin and the capacity for binding phosphorus given in Table 1. No requirements are placed on the bottom and the wall materials of the plant apart from the fact that they have to be capable of withstanding water and the pressure conditions in the plant, both externally and internally.
  • Figure 1 is a plan view seen from above of a first preferred embodiment of the purification plant according to the invention.
  • the arrows indicate the direction of flow of the water.
  • Figure 2 is a side view of the first preferred embodiment illustrating the second sedimentation chamber and the prefilter chamber.
  • Figure 3 is a new side view of the first preferred embodiment illustrating the prefilter chamber and first pump chamber. This view is perpendicular to the view presented in figure 2.
  • Figure 4 is an interrupted side view of the main filter, second pump chamber and first sedimentation chamber in the first preferred embodiment.
  • Figure 5 is a side view of the final filter and the UV unit in the first preferred embodiment.
  • Figure 6 is a plan view seen from above of a second preferred embodiment of the plant according to the invention.
  • Example 1 First preferred embodiment
  • the first preferred purification plant is rectangular and composed of 7 chambers.
  • the first sedimentation chamber is indicated by reference numeral 1 , the second sedimentation chamber by 2, the prefilter chamber by 3, the first pump chamber by 4, the main filter chamber by 5, the second pump chamber by 6, the final filter chamber by 7 and the UV chamber with outlet by reference numeral 8.
  • Main filter > 5 kg/m 3 > 100 m/day 0.25 - 7 mm
  • the shape of the filter material can be both round or angular.
  • the first sedimentation chamber has a wet volume of l . ⁇ m ⁇ (wet volume refers to the amount of water in the chamber at lowest normal water level).
  • Waste water enters the chamber through inlet 1 1. flows through the chamber and on into the second sedimentation chamber 2 via a 1 10 mm transition pipe which is located in the middle at 2/3 the height (measured from the bottom) on the short partition between the sedimentation chambers (not shown).
  • the chamber is designed in such a way that the water has to make a 180° turn before entering the second sedimentation chamber.
  • water from the main filter will be returned to the first sedimentation chamber for denitrification. This is carried out by means of a perforated pipe 66 which distributes and mixes water from the second pump chamber 6 with the water in the chamber (see also figure 4).
  • the second sedimentation chamber 2 has a wet volume of 0.8 m ⁇ , and is a pure sedimentation chamber.
  • the transition pipe 21 is located at 1/3 of the height from the bottom.
  • the transition pipe 21 is located at the opposite end of the chamber relative to the transition pipe between chambers 1 and 2, and is connected to a vertically perforated 75 mm distribution pipe 31 which is located in the prefilter's filter medium.
  • the distribution pipe 31 will distribute the water over the entire height of the filter medium.
  • the distribution pipe 31 is extended so that it reaches higher than the filter medium and is equipped with an overflow 33.
  • the water level in the event of maximum utilisation of the buffer volume is indicated by the arrow 32.
  • the prefilter chamber 3 has a wet volume of 0.8 m , and is filled with a filter medium consisting of Leca Lettklinker (light clinker) or a similar material with a diameter of 4-20 mm.
  • the water will flow horizontally through the filter medium under anaerobic saturated conditions. After the water has passed through the filter it will be collected in a 75 mm perforated collecting pipe 34 which flows into the first pump chamber 4 (see figure 4).
  • the end of the collecting pipe 34 may be equipped with transitional end pieces 35 in order to regulate the water through-flow. This offers the possibility of increasing the water's residence time in the sludge interceptor and thereby increasing the sedimentation and denitrification. In periods of extraordinary loading the water level in the sludge interceptor will rise.
  • the partition between the prefilter chamber and the first pump chamber is equipped with a 1 10 mm overflow 36 immediately above the water level which corresponds to the maximum utilisation of the buffer volume.
  • the water level in the sludge interceptor may be increased by 15 cm, which corresponds to a buffer volume of 330 1.
  • the dispersal system 51 distributes the water over the main filter's 54 upper surface (see figure 1 ).
  • the float switch has been given reference numeral 42.
  • the chamber has an area of 0.50 m x 0.35 m.
  • the main filter consists of Leca Lettklinker (light clinker) or a similar material with a diameter of 1-4 mm and has an area of 5 m ⁇ .
  • the dispersal system 51 consists of a rectangular pressure pipe equipped with five spray nozzles (not shown) which will disperse the water evenly over the entire filter surface while saturating the water with oxygen.
  • the water will percolate vertically down through the filter medium under aerobic unsaturated conditions until it meets a water surface at approximately 1/3 of the height from the bottom. From there and down to the bottom of the main filter, the water will be purified under anaerobic saturated conditions. As mentioned, the water's nitrogen content will be nitrified into nitrate under aerobic conditions, and denitrified into elementary nitrogen gas under anaerobic conditions.
  • the main filter has the capacity to convert virtually the entire nitrogen content of the water to nitrate, but can only convert parts of the nitrate formed into elementary nitrogen. In addition the main filter has the capacity to purify around 90% of the water's content of phosphorus and organic material.
  • the water After the water has passed through the filter medium, it will be collected in a 32 mm perforated collecting pipe 52 which is located diagonally along the bottom of the main filter and will flow into the second pump chamber 6.
  • the end of the collecting pipe 52 is in the form of a gooseneck 53 (see figure 4).
  • the gooseneck can be rotated about the attachment point of the collecting pipe, thus enabling the height of the discharge point on the gooseneck to be raised and lowered in order to alter the height of the water surface, thus permitting the ratio between the aerobic and anaerobic zones in the main filter to be adjusted according to requirements.
  • water which enters the second pump chamber 6 will contain a large amount of nitrations.
  • some of the water is recirculated back to the first sedimentation chamber by a float switch-controlled pump 61 passing water into a double-branched pipe 63 which is connected at one end to a perforated lead-in pipe 66 in the sedimentation chamber (see figures 1 and 4) and at the other end to a vertical distribution pipe in the final filter.
  • the volume of water which is recirculated to the first sedimentation chamber can be easily regulated by means of valve 65. In order to achieve the best possible purification effect, as much water as possible should be recirculated to the first sedimentation chamber, but of course there must be a balance between ingoing and outgoing water in the plant.
  • the remainder of the water entering the second pump chamber 6 is passed to a final filter 7 for post-purification via the second branch of pipe 63 which is connected to a 75 mm perforated distribution pipe 71 which is located vertically in the final filter's filter medium 72 in a corner of the final filter chamber 7 (see figure 1).
  • the final filter employs the same filter material as the main filter.
  • the volume of water passed to the final filter can be easily regulated by means of a valve 64. The water will flow horizontally through the final filter's filter medium 72 to a 75 mm perforated collecting pipe 73 which is located in the opposite corner to the distribution pipe 71.
  • the purification is carried out in the final filter under anaerobic saturated conditions.
  • the collecting pipe 73 is connected to an overflow 74 which passes the water to a UV unit 8 for further removal of bacteria (see figures 1 and 5).
  • the overflow 74 is equipped with a valve 75 for regulating the volume of water which flows through the UV unit.
  • the UV unit is connected to a submerged outlet sump 81 with outlet 82.
  • the outlet sump 81 has the capability of sampling water (not shown).
  • the chamber 7 has two safety overflows. In the event of extraordinary loading chamber 7 can have 10 cm extra capacity before the water will be returned by means of gravity to the first sedimentation chamber 1 via an overflow 76.
  • the buffer capacity of the sludge interceptor ensures a greater purification effect while at the same time utilising the buffer capacity of the sludge interceptor. If the water level in chamber 7 rises further, the water will be conveyed past the UV unit 8 and down into the outlet sump 81 via overflow 77. This may arise in the event of extreme loading, but will probably not occur. The object of the overflow 77 is to ensure that the plant obtains satisfactory operating stability.
  • the water level in the final filter can be increased by 10 cm, giving a buffer volume of 130 1.
  • the total buffer volume for the plant will be 460 1, corresponding to approximately 1 day's consumption for a detached house.
  • the pumps in the first and second pump chambers should be equipped with an alarm in case of pump failure, and a spare pump should be available.
  • the sedimentation chambers should be emptied of sludge once a year.
  • the filter medium for the prefilter The filter medium for the main and final filters is expected to last for 5 years before having to be replaced. All materials which are watertight in the long-term and have sufficient load- carrying capacity to resist the water pressure can be employed for the plant's walls and bottom (concrete, fibre glass-reinforced polyester, etc.).
  • the plant is composed of several known purification techniques. To date no measurements have been taken of the plant's total purification effect, but full-scale tests have been carried out on individual purification steps in the plant. On the basis of these results the purification effect for the remaining steps and a total purification effect for the whole plant under optimised conditions have been stipulated, both with regard to purification of grey water and black water. The values are given in Table 2.
  • the stipulation is a theoretically anticipated purification effect calculated on the basis of each chamber's dimensions, process technical details, composition and design. Included in the calculation is the fact that 50% of the water in the second pump chamber is recirculated to the first sedimentation chamber. This will give a dilution effect which will be transmitted on to the other chambers. This dilution effect was not present during the measurements on the individual purification steps, with the result that the documented values in Table 2 will be slightly too high.
  • the second preferred embodiment is constructed in a similar manner to the first preferred embodiment, but in a round shape instead of a rectangular shape.
  • a round shape is favourable with a view to mechanical strength and production costs.
  • the plant is composed of a circular main filter chamber 5 with the other chambers extending successively along the main filter chamber's outer wall (see figure 6).
  • the total diameter of the plant is 4 m.
  • the area of the main filter is the same as the main filter in example 1 , while the base of the other chambers has a slightly different size to the corresponding chambers in example 1. As can be seen in figure 6, there is no 180° "bend" between the first and second sedimentation chambers. Otherwise the only change compared to example 1 is that the water level in the sludge interceptor can only be raised by 10 cm, thus giving a buffer volume of 316 1. As in example 1 , the water level in the final filter can be raised by 10 cm, thus giving a buffer volume of 204 1. The total buffer volume is 519 1.
  • Table 2 Stipulated values for anticipated purification effect for the first preferred embodiment of the plant according to the invention. The stipulated values are calculated on the basis of documented 1 ) values from tests on single-chamber filters corresponding to individual chambers in the plant.
  • BOF 7 is the amount of organic material measured for biological oxygen consumption and TKB is thermostable koliform bacteria.

Landscapes

  • Life Sciences & Earth Sciences (AREA)
  • Biodiversity & Conservation Biology (AREA)
  • Microbiology (AREA)
  • Hydrology & Water Resources (AREA)
  • Engineering & Computer Science (AREA)
  • Environmental & Geological Engineering (AREA)
  • Water Supply & Treatment (AREA)
  • Chemical & Material Sciences (AREA)
  • Organic Chemistry (AREA)
  • Purification Treatments By Anaerobic Or Anaerobic And Aerobic Bacteria Or Animals (AREA)
EP19990943497 1998-06-12 1999-06-10 Schmutzwasser-reinigungsanlage Withdrawn EP1084083A2 (de)

Applications Claiming Priority (3)

Application Number Priority Date Filing Date Title
NO982737 1998-06-12
NO982737A NO307653B1 (no) 1998-06-12 1998-06-12 Filtreringsanlegg for avløpsvann
PCT/NO1999/000191 WO1999067173A2 (en) 1998-06-12 1999-06-10 Filtering plant for waste water

Publications (1)

Publication Number Publication Date
EP1084083A2 true EP1084083A2 (de) 2001-03-21

Family

ID=19902147

Family Applications (1)

Application Number Title Priority Date Filing Date
EP19990943497 Withdrawn EP1084083A2 (de) 1998-06-12 1999-06-10 Schmutzwasser-reinigungsanlage

Country Status (5)

Country Link
EP (1) EP1084083A2 (de)
AU (1) AU5657299A (de)
CA (1) CA2334829A1 (de)
NO (1) NO307653B1 (de)
WO (1) WO1999067173A2 (de)

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN112125419A (zh) * 2020-09-18 2020-12-25 中国科学院城市环境研究所 一种资源就地优先回用与污染负荷减量的分散式生活污水源头分离收集方法

Families Citing this family (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP1808416A1 (de) * 2006-01-11 2007-07-18 ATB Umwelttechnologien GmbH Vorrichtung zur Behandlung von Abwasser in einer Kleinkläranlage
FR2990628B1 (fr) * 2012-05-16 2015-01-09 Mgm Dispositif de filtration des eaux grises domestiques.
CN110066086A (zh) * 2019-03-13 2019-07-30 杭州电子科技大学 垃圾中转站渗滤液的处理方法

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* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0396142A1 (de) * 1989-05-03 1990-11-07 Mitteldeutsche Wasser- und Umwelttechnik AG Halle Verfahren und Vorrichtungen zur Steuerung biologischer Prozesse zur Phosphor- und Stickstoffeliminierung in Belebtschlammanlagen
AU639642B2 (en) * 1991-08-16 1993-07-29 Louis Adolf Danau Domestic waste water treatment and apparatus therefor
IE920784A1 (en) * 1992-03-11 1993-09-22 Biocycle Ltd Effluent treatment systems
DE4236791C1 (de) * 1992-10-30 1994-04-07 Nordenskjoeld Reinhart Von Verfahren und Vorrichtung zum Reinigen von Abwasser
US5352357A (en) * 1993-02-18 1994-10-04 Perry Cliff R Waste water treatment system

Non-Patent Citations (1)

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Title
See references of WO9967173A2 *

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN112125419A (zh) * 2020-09-18 2020-12-25 中国科学院城市环境研究所 一种资源就地优先回用与污染负荷减量的分散式生活污水源头分离收集方法

Also Published As

Publication number Publication date
AU5657299A (en) 2000-01-10
NO982737D0 (no) 1998-06-12
NO982737L (no) 1999-12-13
CA2334829A1 (en) 1999-12-29
WO1999067173A2 (en) 1999-12-29
WO1999067173A3 (en) 2000-03-02
NO307653B1 (no) 2000-05-08

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