INTEGRATED REVERSE OSMOSIS AND MEMBRANE CLEANING SYSTEMS FOR FOULING PREVENTION
20200038808 ยท 2020-02-06
Inventors
Cpc classification
C02F2209/008
CHEMISTRY; METALLURGY
B01D2321/168
PERFORMING OPERATIONS; TRANSPORTING
B01D2315/20
PERFORMING OPERATIONS; TRANSPORTING
B01D2311/25
PERFORMING OPERATIONS; TRANSPORTING
B01D61/025
PERFORMING OPERATIONS; TRANSPORTING
B01D65/08
PERFORMING OPERATIONS; TRANSPORTING
B01D65/02
PERFORMING OPERATIONS; TRANSPORTING
C02F5/08
CHEMISTRY; METALLURGY
B01D2321/40
PERFORMING OPERATIONS; TRANSPORTING
B01D61/02
PERFORMING OPERATIONS; TRANSPORTING
Y02A20/131
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
B01D61/02
PERFORMING OPERATIONS; TRANSPORTING
C02F5/08
CHEMISTRY; METALLURGY
Abstract
An integrated system comprising a closed circuit desalination (CCD) unit with membrane cleaning (MC) means wherein the latter are activated briefly (8 minute) on a frequent basis, once a day or several days, for removal of fouling and/or scaling deposits off membrane surfaces created during the elapsed time interval and thereby, avoiding their accumulation and the need of CIP. MC proceeds in a tie-line sequence with different reagents solution in permeate known to affect the removal of common fouling and/or scaling constituents from membrane surfaces such as organic and/or bioorganic substances and/or inorganic scaling constituents including silica and polymerized silica coatings with either metal hydroxides or organic substances. Removal of silica containing deposits from membrane surfaces proceeds by a brief exposure to diluted hydrofluoric acid solution in permeate in the absence of interfering metal ions (e.g., Ca). The MC sequence incorporate both reverse osmosis (RO) and direct osmosis (DO) principles, the former to enable an effective contact of the cleaning reagents with membrane surfaces and the latter for inside-out backwash of semi-permeable membranes with permeate.
The fully computerized inventive system should enables a near perfect removal of all fouling and/or scaling constituents off membrane surfaces at an early stage on a regular basis before their accumulation and thereby, preventing the need for CIP and avoiding irreversible damage membranes as result of accumulation of irremovable fouling constituents.
Claims
1. An integrated system (RO-MC) comprising a reverse osmosis (RO) desalination unit with a membrane cleaning (MC) means to avoid accumulation of fouling deposits on membrane surfaces and need of clean in place procedures (CIP), comprising: a RO unit of said system comprising a RO skid of a single module or many modules with their inlets and outlet connected in parallel, a feed line to the pressurizing means of said RO unit with delivery units of antiscalant (AS) and add (AC); a permeate line from said RO skid to the bottom of a permeate tank, a valve means and control means to enable desalination under defined flow, pressure and recovery conditions with brief stops each specified duration for membrane cleaning; MC cleaning means in said system comprising a permeate delivery line from the bottom of said permeate tank to module(s) in said RO skid with controllable flow and pressure means through a valve means, one or more than one MC reagent delivery unit (RDU) connected to said MC permeate delivery line to said RO skid, each said RDU unit comprises a reagent feed tank and a line with controllable pump and a valve means for MC reagent delivery at a selected flow rate over a specified time interval to membrane(s) in said RO skid through said permeate line in said MC means; a programmable computer means which define the followings: flow and pressure conditions in said RO unit and its selected operational time duration while said MC means remain inactive; activation of said MC means and deactivation of said RO unit for a brief cleaning procedure interval; a controllable MC procedure of a predefined flow rate and pressure in said permeate delivery line to said RO skid and for each of the connected RDU units to said permeate line which may be actuated alternately or simultaneously over predefined time intervals; termination of said MC procedure and resumption of desalination by said RO unit in said system until the next scheduled said MC cleaning procedure and, performance evaluation means of said system by online monitored means of electric conductivity, pH, pressure, pH, flow/volume in the specified lines as appropriate.
2. An integrated system according to claim 1 wherein said pressurizing means of said RO unit also apply to create flow and pressure conditions inside said permeate delivery line to said RO skid when destination is briefly stopped for membrane cleaning, or alternatively, creation of flow and pressure conditions inside said permeate delivery line to said RO skid by a service pump (SP) means instead of the pressurizing means of said RO unit.
3. An integrated system according to claim 1 wherein said RO unit in said system refers to a close circuit desalination (CCD) unit which executes consecutive batch desalination sequences under fixed flow and variable pressure conditions with entire concentrate being recycled from outlet to inlet of said RO skid and mixed with pressurized feed at its inlet with flow rates of pressurized feed and permeate being equal.
4. An integrated system according to claim 1 wherein said RO in the said system refers to an open circuit continuous plug flow desalination unit wherein a fixed pressurized flow stream at inlet to said RO skid spits at its outlet into a pressurized brine stream and a non-pressurized permeate stream.
5. An integrated system according to claim 1 wherein each said regent delivery unit provides a different reagent to said permeate line of said MC means, one of which comprises a concentrated electrolyte solution (e.g., NaCl) for the purpose of osmotic pressure () modification inside said permeate line of said MC means of a selected applied pressure (p.sub.a) and thereby, enable executing a MC sequence with specific reagents under reverse osmosis (p.sub.a>) and/or direct osmosis (p.sub.a<) conditions, or their absence (p.sub.a=), with said conditions determined by net driving pressure (NDP=p.sub.a) manipulations.
6. An integrated system according to claim 1 with said online monitoring means include temperature (T.sub.F), electric conductivity (E.sub.F), pH and flow/volume (F.sub.HP) in said feed line; pressure at inlet (P.sub.i) and outlet (P.sub.o) of said RO skid in said concentrate recycling line (P=P.sub.iP.sub.o) wherein conductivity (E.sub.CR) and flow/volume (F.sub.CR) are also monitored, and conductivity in said permeate line from said RO skid to said permeate tank (E.sub.pa) as well as in said permeate delivery from permeate tank to customers;
7. Actuation of said integrated RO-MC system according to claim 1 by the following steps; 7.1 Desalination by said RO unit while said MC means remain inactive; 7.2 Activation of said MC system instead of said RO system after a selected time interval (e.g., once a day or several days) by a signal from said a programmable computer means, 7.3 Execution of a brief MC sequence by said MC means while said RO unit stopped with different cleaning reagents, each step in said sequence proceeds under the predefined selected RO or DO conditions, or their absence, with entire said MC sequence, including actuation order of said reagent delivery units, their flow rates and operational time intervals, fully controlled by said a programmable computer means, 7.4 Termination of said MC sequence after its completion and resumption of desalination by said RO unit determined by said a programmable computer means.
8. Execution of said MC sequence with said MC reagents according to claim 1 for removing organic and/or inorganic deposits from membrane surfaces at their infancy, including silica and polymerized silica coatings with either metal hydroxides or organic matters, by the following applications; 8.1 washing membrane surfaces of elements inside said RO skid by a permeate solution with an electrolyte (e.g., NaCl) of an osmotic pressure () slightly higher than that of the selected applied pressure (p) and thereby, create very mild direct osmosis (DO) conditions (p.sub.a) for an inside out cleaning effect on membrane surfaces before exposed to specific cleaning solutions; 8.2 subjecting membrane surfaces in elements of said RO skid to a permeate solution of a much higher osmotic pressure than that of the selected applied pressure (>p.sub.a) and thereby create a strong DO inside out backwash effect which should assist the breakdown of fouling deposits off said membrane surfaces and their removal; 8.3 subjecting membrane surfaces in elements of said RO skid to a permeate solution of sodium hydroxide and/or sodium-EDTA (ethylene-diamine-tetraacetic acid) and/or sodium tripolyphosphate and/or sodium dodecylbenzene sulfonate and/or reagents alike, at high pH (10) under mild RO conditions (<p.sub.a) and thereby, facilitate the removing of organic and/or bio-organic and/or certain inorganic left over coating off said membrane surfaces; 8.4 subjecting membrane surfaces in elements of said RO skid to a diluted permeate solution of hydrofluoric solution or fluorosilicic acid or ammonium biflouride under mild RO conditions (<p.sub.a) and thereby, facilitate the removal of silica and/or polymerized silica coatings remains off said membrane surfaces; 8.5 subjecting membrane surfaces in elements of said RO skid to a permeate wash (no reagents) of interior channels of membrane element supplemented by a strong permeate backwash effect by DO (>p.sub.a) for removal of al remain traces of cleaning reagents used during said MC sequence.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
[0032] The invention pertains to integrated systems of reverse osmosis (RO) units and membrane cleaning (MC) means (RO-MC) for preventions of fouling by brief (8 min) MC sequences with different MC reagents under RO and/or DO conditions, performed automatically at desired time intervals (e.g., once a day or several days) in order to remove newly created fouling deposits off membrane surfaces at an early stage; thereby, preventing their accumulation and circumventing the need for CIP. RO in said integrated RO-MC systems applies to conventional RO units or CCD units, with a greater cleaning effectiveness expected for the latter system of single-stage configurations and skids made of short modules, each of a element-number; wherein, the MC process should be facile and fast (8 minute). The operation of said integrated systems proceeds on an alternating basis with RO mode experienced over 99.5% of the time and this implies a negligible loss of daily permeate productivity to prevent membranes fouling and avoid the need for CIP. In case of systems with conventional RO units with staged modules, each of a six element-number, the MC cleaning effectiveness is expected to decline downstream from the head element as function of an increased element-number line with cleaning needs.
[0033] The preferred embodiment of the inventive integrated systems with RO units based on the CCD PCT/IL2005/000670 technology which reveal design features, components, lines, valve means, monitoring means and operational configurations, including flow direction per each step in the process are displayed in
[0034] The preferred embodiment of the inventive system in
[0035] The performance of the preferred embodiment of the inventive system in
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[0046] The effectiveness of the MC procedure according to the preferred embodiment of the inventive integrated system in
[0047] The MC mode according to the integrate RO-MC system is carried out with permeate and permeate cleaning solutions under a low applied pressure and sufficient pressurizing means for such a purpose may be created a low pressure service pump of controllable flow means (SP.sub.vfd) at outlet of said permeate reservoir (A) with a feed line directly connected to the inlet of said RO skid, avoiding the principle RO pressure pump (HP.sub.vfd). The use of a service pump (SP.sub.vfd), instead of HP.sub.vfd, during MC operations in the context of the inventive system is illustrated in
[0048] The preferred embodiment modification of the inventive CCD-MC integrated system where said CCD unit comprises a side conduit according to PCT/IL2004/000748 is displayed in
[0049] The inventive integrated RO-MC system is not confined to CCD units and may apply to conventional RO units and such integrations are illustrated in
[0050] It will be understood to the skilled in the art that the inventive integrated RO-MC systems may comprise different type of RO units in combination with a MC unit for periodic cleaning of membrane surfaces from fouling and scaling deposits and that preferred embodiments of the inventive systems in
[0051] It will be understood to the skilled in the art that means for pressurizing feed, boosting feed pressure, recycling of concentrate, reagent delivery unit, flow manipulation, and online monitoring devices of pH, temperature, pressure, flow/volume, electric conductivity are comprised of ordinary commercial components such as a pressure pump, a circulation pump, a valve device, or several such components that are applied simultaneously in parallel or in line as appropriate. It is further understood that the referred monitoring means and their transmitted signals to the computerized control board are essential for the actuation and control of specific components within said system as well as for the entire system.
[0052] It will be obvious to the skill in the art that the design of the inventive systems is not confined by the number of modules and/or element-number per module and/or the type of modules and elements in each said RO skid, nor by the number of reagent delivery units in the MC unit, and therefore, said inventive systems my also apply to large scale desalination plants for cleaning of membrane surfaces from deposits and thereby avoid the need for CIP.
[0053] While the invention has been described hereinabove in respect to particular embodiments, it will be obvious to those versed in the art that changes and modifications may be made without departing from this invention in its broader aspects, therefore, the appended claims are to encompass within their scope all such changes and modifications as fall within the true spirit of the invention.
Example
[0054] An integrated RO-MC system according to
[0055] The illustrated example pertains to fouling and scaling prevention in a CCD system for 95% desalination recovery of treated domestic effluents where the principle fouling constituents in the brine (14,500 ppm TDS) comprise of 500 ppm Ca; 4,400 ppm SO.sub.4; 170 ppm SiO.sub.2; and 140 ppm TOC. Ordinarily, CIP in said application without the inventive MC system is required once a month with some loss of membranes' activity, whereas, the engagement of the MC unit in the context of the inventive system for 8 minutes once every two days should circumvent the need for CIP and prevent loss of membranes' activity.
[0056] During the MC mode of operation desalination is stopped and the permeate delivery pump to the MC unit is actuated at a flow rate of 4.0 m.sup.3/h (66 l/min) and 1.5 bar during the entire MC sequence and this implies that the entire intrinsic volume of the module (65 liter) every minute.
[0057] The sequence of the MC reagents delivery to membrane surfaces proceeds by steps as following:
1.sup.st step: 70 sec actuation of RDU-1 pump with flow rate of 656 ml/min for washing of membranes inside-out under DO conditions (P.sub.ap13 psi) from past remains.
2.sup.nd Step: 135 sec actuation of RDU-2 pump with flow rate of 7.2 l/min simultaneously with RDU-1 at flow rate of 327 ml/min) to enable membrane cleaning with 3% Na-EDTA cleaning solution at pH10 under mild RO conditions (P.sub.ap4 psi) for removal of organic foulants and inorganic coatings including silica off membrane surfaces.
3.sup.rd Step: 70 sec actuation of RDU-1 pump with flow rate of 656 ml/min for washing of membranes inside-out under DO conditions (P.sub.ap13 psi) of previous step remains.
4.sup.th Step: 135 sec actuation of RDU-3 pump with flow rate of 217 ml/liter to enable membrane cleaning with 0.1% HF cleaning solution under mild RO conditions (P.sub.ap4 psi)the osmotic pressure of 0.1% HF (=1.25 bar) is based on Ka=6.810.sup.4 and van't Hoff at 25 C. This step in the sequence is intended for further removal of silica, polymerized silica and iron oxides off membrane surfaces.
5.sup.th Step: 70 sec actuation of RDU-1 pump with flow rate of 656 ml/min for washing of membranes inside-out under DO conditions (P.sub.ap=13 psi) of previous step remains.
[0058] The above tie-line MC sequence of 480 second (8 minute) duration is an illustrative example only in light of the projected fouling constituents on membrane surface. The number of MC steps and reagents for MC should relate specifically to the nature of fouling deposits and the effective reagents for their removal. For instance, in case of a high silica fouling propensity, the MC procedure should more heavily rely on HF cleaning solution of greater than 0.1% concentration and a longer contact time with membranes surfaces.