APPARATUS AND METHOD FOR REDUCING CONCENTRATION POLARIZATION AND MEMBRANE FOULING ON MEMBRANE SURFACE IN A FILTER UNIT
20220176322 · 2022-06-09
Assignee
Inventors
Cpc classification
B08B3/12
PERFORMING OPERATIONS; TRANSPORTING
B01D65/02
PERFORMING OPERATIONS; TRANSPORTING
B01D2321/40
PERFORMING OPERATIONS; TRANSPORTING
B01D2321/2058
PERFORMING OPERATIONS; TRANSPORTING
B01D61/025
PERFORMING OPERATIONS; TRANSPORTING
International classification
B01D65/02
PERFORMING OPERATIONS; TRANSPORTING
B01D61/02
PERFORMING OPERATIONS; TRANSPORTING
B01D65/08
PERFORMING OPERATIONS; TRANSPORTING
Abstract
An apparatus for reducing concentration polarization and/or membrane fouling on a membrane surface in a filter unit (102) during a membrane separation process and/or a filter cleaning process. The apparatus includes (i) a signal generator (106) that generates electrical signals when there is a fluid flow in the filter unit (102) and (ii) an ultrasonic transducer assembly (108) that receives the electrical signal from the signal generator to generate ultrasonic waves using one or more ultrasonic transducers (604). The ultrasonic waves pass through the filter unit (102) during the membrane separation process and/or the filter cleaning process and generate at least one of a turbulence in the flow of fluid or a vibration on the membrane surface to dislodge particles clogging the membrane surface, thereby reducing the concentration polarization and/or the membrane fouling on the membrane surface of the filter unit (102), which in turn increasing membrane permeability and efficiency.
Claims
1. An apparatus (104) that is attached with a filter unit (102) for reducing concentration polarization and/or membrane fouling on membrane surface in the filter unit (102) during a membrane separation process and/or a filter cleaning process using a non-invasive and non-destructive vibrational energy source, wherein the apparatus (104) comprises: a signal generator (106) that generates electrical signals when there is a fluid flow in the filter unit (102), wherein the signal generator (106) comprises a converter (204) that is adapted to receive power from a power source (206) and generate the electrical signals in at least one of (i) frequencies, (ii) intensities or (iii) pulse characteristics; an ultrasonic transducer assembly (108) that receives the electrical signals from the signal generator (106), wherein the ultrasonic transducer assembly (108) comprises, an array of transducers (302) that includes one or more ultrasonic transducers (604) that generate ultrasonic waves when the ultrasonic transducer assembly (108) receives the electrical signal from the signal generator (106); a housing (602) that embeds the one or more ultrasonic transducers (604) to generate the ultrasonic waves in at least one of (i) in a perpendicular direction to the filter unit (102) or (ii) at an angle to the filter unit (102), to ensure maximum exposure of ultrasonic waves to the membrane surface in the filter unit (102); a coupling medium layer (304) that is placed between the array of transducers (302) and the filter unit (102) to enable the transmission of the ultrasonic waves into the filter unit (102), wherein, during a membrane separation process and/or a filter cleaning process, when the ultrasonic waves that is generated by the array of transducers (302) pass through the filter unit (102), the ultrasonic waves generate at least one of (i) a turbulence in the flow of fluid or (ii) a vibration on the membrane surface to dislodge particles clogging the membrane surface, thereby reducing the concentration polarization and/or the membrane fouling on the membrane surface of the filter unit (102), which in turn, increases the membrane permeability and efficiency of the membrane separation process and/or the filter cleaning process.
2. The apparatus (104) as claimed in claim 1, wherein the signal generator (106) comprises a controller (202) that provides information on the type of the electrical signals to be generated by the converter (204), wherein the controller (202) obtains the information from at least one of (i) a user input in the signal generator (106), (ii) an input from a program stored in the controller (202), or (iii) an input from an external device, wherein the external device transmits signals to the signal generator (106) to generate the ultrasonic waves.
3. The apparatus (104) as claimed in claim 1, wherein the electrical signals comprise at least one of (i) one or more frequencies in a range of 50 Kilo Hertz (kHz) to 3 Mega Hertz (MHz), (ii) one or more power outputs in a range of 5 Watts (W) to 1 kilowatt (kW), or (iii) a constant signal or signals varying in time with respect to frequency, power output or pulse characteristics, wherein the ultrasonic transducer assembly (108) receives electrical signals from the signal generator (106) using a cable, wherein the generated signals increase the turbulence in the flow of fluid without damaging the membrane surface of the filter unit (102).
4. The apparatus (104) as claimed in claim 1, wherein a surface profile of the one or more ultrasonic transducers (604) matches a surface profile of the filter unit (102), thereby minimizing the gap between the one or more ultrasonic transducers (604) and the filter unit (102) by filling the coupling medium layer (304).
5. The apparatus (104) as claimed in claim 1, wherein the one or more ultrasonic transducers (604) comprises at least one of (i) similar piezoelectric crystals or (ii) dissimilar piezoelectric crystals, wherein when the array of transducers (302) simultaneously generate the ultrasonic waves in different operating conditions of the electrical signals, the ultrasonic waves generate enhanced turbulence in the flow of fluid, reducing concentration polarization and/or membrane fouling to a larger extent.
6. The apparatus (104) as claimed in claim 1, wherein the housing (602) is flexible for wrapping around the filter unit (102), wherein the housing (602) includes a length and a dimension that is suitable for the filter unit (102) of different dimensions and shapes.
7. The apparatus (104) as claimed in claim 1, wherein the coupling medium layer (304) is a flexible material that is made up of at least one of a liquid, a semi solid, or a flexible solid material that flows or changes its shape to replace air gaps and occupy the space between the one or more ultrasonic transducers (604) and the filter unit (102), wherein the coupling medium layer (304) is bonded or unbonded to the housing (602) and/or the one or more ultrasonic transducers (604).
8. The apparatus (104) as claimed in claim 1, wherein the apparatus (104) comprises (i) a control unit to configure a mode of operation of the signal generator (106) and (ii) a display unit to display the mode of operation of the signal generator (106).
9. The apparatus (104) as claimed in claim 1, wherein the coupling medium layer (304) comprises at least one of a patch coupling medium layer, or a sheet coupling medium layer, wherein the coupling medium layer (304) is applied on the surface of the one or more ultrasonic transducers (604) before use, or the ultrasonic transducer assembly (108) and the filter unit (102) are immersed into a fluid which acts as a coupling medium (620).
10. A method for reducing concentration polarization and/or membrane fouling on a membrane surface in a filter unit (102) during a membrane separation process and/or a filter cleaning process using a non-invasive and non-destructive vibrational energy source, wherein the method comprises; generating, using a signal generator (106), electrical signals in at least one of (i) frequencies, (ii) intensities or (iii) pulse characteristics when there is a fluid flow in the filter unit (102); and generating, using an array of transducers (302), ultrasonic waves when an ultrasonic transducer assembly (108) receives the electrical signals from the signal generator (108), wherein the ultrasonic waves generate at least one of (i) a turbulence in the flow of fluid or (ii) a vibration on the membrane surface to dislodge particles clogging the membrane surface, thereby reducing the concentration polarization and/or membrane fouling on the membrane surface of the filter unit (102), which in turn, increases the membrane permeability and efficiency of the membrane separation process and/or filter cleaning process.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0023] The embodiments herein will be better understood from the following detailed description with reference to the drawings, in which:
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
[0033] The embodiments herein and the various features and advantageous details thereof are explained more fully with reference to the non-limiting embodiments that are illustrated in the accompanying drawings and detailed in the following description. Descriptions of well-known components and processing techniques are omitted so as to not unnecessarily obscure the embodiments herein. The examples used herein are intended merely to facilitate an understanding of ways in which the embodiments herein may be practiced and to further enable those of skill in the art to practice the embodiments herein. Accordingly, the examples should not be construed as limiting the scope of the embodiments herein.
[0034] As mentioned, there remains a need for an apparatus and method for reducing concentration polarization and/or membrane fouling on a membrane surface in a filter unit during a membrane separation process and/or a filter cleaning process using a non-invasive and non-destructive vibrational energy source. The embodiments herein achieve this by generating ultrasonic waves in the filter unit to reduce concentration polarization and/or membrane fouling on the membrane surface of the filter unit, thereby increasing the membrane permeability and efficiency of the membrane separation process and/or the filter cleaning process. Referring now to the drawings, and more particularly to
[0035]
[0036] During the membrane separation process and/or the filter cleaning process, the ultrasonic waves generated by the ultrasonic transducer assembly pass through the filter unit 102 and the ultrasonic waves generate at least one of (i) a turbulence in the flow of fluid or (ii) a vibration on the membrane surface to dislodge particles clogging the membrane surface, thereby reducing the concentration polarization and/or the membrane fouling on the membrane surface of the filter unit 102, which in turn, increases the membrane permeability and efficiency of the membrane separation process and/or the filter cleaning process. In some embodiments, the electrical signals in the frequency range of 50 Kilo Hertz (kHz) to 3 Mega Hertz (MHz) is generated by the signal generator 106 for reducing the clogging on the membrane surface. It is to be noted that the term ‘ultrasonic’ used in this present embodiment, includes all the frequencies between 50 Kilo Hertz (kHz) and 3 Mega Hertz (MHz), even though the term ‘megasonic’ is used for frequencies above 300 Kilo Hertz (kHz).
[0037] When the ultrasonic waves travel in a medium/the feed solution, it causes vibration to the molecules present in the medium. In some embodiments, when the medium is a liquid, these vibrations cause currents within the liquid. The ultrasonic waves cause compression and expansion of air bubbles within the liquid that eventually collapse and produce a shockwave. The currents and the shockwaves cause the turbulence and a stirring effect within the liquid. In some embodiments, the signal generator 106 generates different kinds of electrical signals that lead to generation of different kinds of currents and vibrations that may increase the amount of turbulence within the liquid. The ultrasonic waves induce turbulence in the liquid, which causes dislodging of the layer of solutes or particles clogging the pores/surface of the membrane. In some embodiments, the filter unit 102 is filled with a fluid during the membrane separation process and/or the filter cleaning process. In some embodiments, the application is a dialysis process.
[0038]
[0039] The converter 202 associated with the signal generator 106 is adapted to receive power from the power source 206 and manipulate the received power to make it suitable for generation of the electrical signals. The electrical signals include at least one of (i) one or more frequencies in a range of 50 kHz to 3 MHz, (ii) one or more power outputs in a range of 5 Watts (W) to 1 kilowatt (kW), or (iii) a constant signal or signals varying in time with respect to frequency, power output or pulse characteristics. In some embodiments, the one or more frequencies includes a single frequency (e.g. 200 kHz), multiple frequencies (e.g. 200 kHz, 250 kHz, and 900 kHz) or varying frequencies (e.g. the frequency starts at 50 kHz, increases to 500 kHz within 5 minutes and then reduced back to 50 kHz within 10 minutes). In some embodiments, the one or more power outputs includes a single power output (e.g. 90 watts), multiple power outputs (e.g. 9 watts, 50 watts and 500 watts), and varying power outputs (e.g. the power output starts at 5 watts, increases to 500 watts in steps of 10 watts, for every 2 minutes). In some embodiments, the constant signal or signals may be generated intermittently. In an example embodiment, the signals may be generated for 5 minutes and then stopped for 3 minutes and so on, during dialysis.
[0040] In some embodiments, the pulse characteristics include one type of pulse (e.g. sine wave) or multiple types of pulse (e.g. square wave and sawtooth) or varying pulse types (e.g. sine wave for first 5 minutes, then sawtooth for next 15 minutes, etc.). In some embodiments, the frequency in a range of 50 kHz to 3 MHz increases the turbulence in the flow of fluid without damaging the membrane surface of the filter unit 102. The electrical signals generated by the signal generator 106 are transmitted to the ultrasonic transducer assembly 108.
[0041]
[0042] The ultrasonic transducer assembly includes a housing that embeds the one or more ultrasonic transducers to generate the ultrasonic waves in at least one of (i) in a perpendicular distance to the filter unit 102 or (ii) at an angle to the filter unit 102, to ensure maximum exposure of the ultrasonic waves to the membrane surface in the filter unit 102. In some embodiments, the housing is flexible for wrapping around the filter unit 102. In some embodiments, the housing includes a length and a dimension that is suitable for the filter unit 102 of different dimensions and shapes.
[0043] Air is a poor conductor of ultrasonic waves. This necessitates the use of another medium to allow for faithful transmission of ultrasonic waves from the surface of the one or more ultrasonic transducers to the filter unit 102. The coupling medium layer 304 is placed between the array of transducers 302 and the filter unit 102 to enable the transmission of the ultrasonic waves into the filter unit 102. In some embodiments, the coupling medium layer 304 is a flexible material that is made up of at least one of a liquid, a semi solid, or a flexible solid material that flows or changes its shape to replace air gaps and occupy the space between the one or more ultrasonic transducers and the filter unit 102. In some embodiments, the coupling medium layer 304 is bonded or unbonded to the housing and/or one or more ultrasonic transducers. In some embodiments, the coupling medium layer 304 includes at least one of a patch coupling medium layer or a sheet coupling medium layer. In some embodiments, the coupling medium layer 304 is applied on surface of the one or more ultrasonic transducers before use, or the ultrasonic transducer assembly 108 and the filter unit 102 are immersed into a fluid which acts as a coupling medium. In some embodiments, a larger sheet of coupling medium is used for the one or more ultrasonic transducers. The ultrasonic waves pass through the filter unit 102, the fluid/liquid inside the filter unit 102, during the membrane separation process and/or the filter cleaning process, acts as the carrier for the ultrasonic waves. The ultrasonic waves reach the membrane surface and generate turbulence in the fluid flow and vibration on the membrane surface to dislodge particles clogging on the membrane surface. In some embodiments, the design of the apparatus 104 enables the use of ultrasonic waves on filter unit 102 for longer periods (i.e. more than 30 minutes). In some embodiments, the surface profile of the one or more ultrasonic transducers matches the surface profile of the filter unit 102, minimizing the gap between the one or more ultrasonic transducers and the filter unit 102 by filling the coupling medium layer 304.
[0044]
[0045]
[0046]
[0047] In some embodiments, the apparatus 104 includes a control unit and a display unit. The control unit configures a mode of operation of the signal generator 106 and/or the ultrasonic transducer assembly 108 and the display unit displays the mode of operation of the signal generator 106 and/or the ultrasonic transducer assembly 108.
[0048]
[0049]
[0050]
[0051]
[0052]
[0053]
[0054]
[0055]
[0056]
[0057]
[0058]
[0059]
[0060]
[0061] The foregoing description of the specific embodiments will so fully reveal the general nature of the embodiments herein that others can, by applying current knowledge, readily modify and/or adapt for various applications such specific embodiments without departing from the generic concept, and, therefore, such adaptations and modifications should and are intended to be comprehended within the meaning and range of equivalents of the disclosed embodiments. It is to be understood that the phraseology or terminology employed herein is for the purpose of description and not of limitation. Therefore, while the embodiments herein have been described in terms of preferred embodiments, those skilled in the art will recognize that the embodiments herein can be practiced with modification within the spirit and scope of the appended claims.