Water-treatment filter module, and apparatus and method for manufacturing helical strand of water-treatment filter module
11760658 · 2023-09-19
Assignee
Inventors
Cpc classification
B01D61/02
PERFORMING OPERATIONS; TRANSPORTING
B01D63/103
PERFORMING OPERATIONS; TRANSPORTING
B01D61/025
PERFORMING OPERATIONS; TRANSPORTING
B01D61/10
PERFORMING OPERATIONS; TRANSPORTING
C02F1/001
CHEMISTRY; METALLURGY
International classification
B01D61/02
PERFORMING OPERATIONS; TRANSPORTING
B01D61/10
PERFORMING OPERATIONS; TRANSPORTING
B01D65/08
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Provided is a water-treatment filter module, an apparatus and a method for manufacturing a helical strand for a water-treatment filter module, and a method for manufacturing a spacer. Also provided is a water-treatment filter module comprising a membrane for filtering raw water, and a spacer laminated to the membrane and providing a plurality of passages for passing the raw water through to the membrane, wherein the spacer includes a first member extending in a first direction and a second member extending in a second direction that is different from the first direction and disposed so as to form spacer cells by intersecting with the first member, and at least one of the first member and the second member is wound in a spiral shape having a predetermined pitch of a predetermined radius around a central axis.
Claims
1. A water-treatment filter module, comprising: a membrane for filtering raw water; and a spacer laminated to the membrane and providing a plurality of passages for passing raw water through the membrane, wherein the spacer contains only two members: a first member comprising a plurality of strands each having a wound spiral extended coil shape having a predetermined pitch of 1800 μm to 3000 μm around a central lumen along a central axis having a predetermined radius of from 100 μm to 500 μm, and each strand having a substantially circular or elliptical cross section, and having a diameter of 50 μm to 200 μm, and extending in a first direction; and a second member comprising a plurality of strands each having a wound spiral extended coil shape having a predetermined pitch of 1800 μm to 3000 μm around a central lumen along a central axis of a predetermined radius of from 100 μm to 500 μm, and each strand having a substantially circular or elliptical cross section, and a having diameter of 50 μm to 200 μm, and extending in a second direction different from the first direction, and disposed so the first member and the second member are crossed and arranged without any contact point between the first member and the second member at a cross region to form spacer cells.
2. The water-treatment filter module according to claim 1, wherein the first member and the second member are wound along the same rotational direction.
3. The water-treatment filter module according to claim 1, wherein the first member and the second member are wound along different rotational directions.
4. The water-treatment filter module according to claim 1, wherein the first member and the second member have the same radius and the same pitch.
5. The water-treatment filter module according to claim 1, wherein the first member and the second member are crossed and arranged so that the plurality of passages have a diamond shape.
6. A method for manufacturing a spacer of the water-treatment filter module according to claim 1, comprising steps of: extruding a strand through an extrusion nozzle; rotating a rotating roll and simultaneously moving at least one of the rotating roll and the extrusion nozzle along the axial direction of the rotating roll, thereby winding the strand extruded through the extrusion nozzle on the rotating roll in a spiral shape to form a helical strand; removing the helical strand from the rotating roll to yield the helical strand having a wound spiral extended coil shape having a predetermined pitch of 1800 μm to 3000 μm around a central lumen along a central axis of a predetermined radius of from 100 μm to 500 μm, and each strand having a substantially circular or elliptical cross section, and a having diameter of 50 μm to 200 μm; and arranging a plurality of helical strands in a cross fashion without any contact point to manufacture a spacer.
7. The water-treatment filter module according to claim 1, wherein the first members and second members forming the spacer direct flow to a surface of the membrane, and because there are no contact points at a cross region, upward and downward flow occurs in the cross region without whirlpools, and pressure loss is minimized.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DETAILED DESCRIPTION
(6) Hereinafter, a water-treatment filter module, a helical strand for a water-treatment filter module, and an apparatus and a method for manufacturing a spacer, according to one example of the present invention, will be described in detail with reference to the accompanying drawings.
(7) In addition, the same or similar reference numerals are given to the same or corresponding components regardless of reference numerals, of which redundant explanations will be omitted, and for convenience of explanation, the size and shape of each constituent member as shown may be exaggerated or reduced.
(8)
(9) The water-treatment filter module associated with one example of the present invention comprises a membrane for filtering raw water and a spacer (100) laminated to the membrane and providing a plurality of passages (also referred to as ‘spacer cells’) for passing raw water through the membrane.
(10) The membrane can be formed of various materials capable of a reverse osmosis phenomenon.
(11) The spacer (100) comprises a first member (110) extending in a first direction and a second member (120) extending in a second direction different from the first direction and disposed so as to form spacer cells (130) by intersecting with the first member (110).
(12) Each of the first member (110) and the second member (120) is the above-described strand, which can be formed of a resin material, and in particular, can be formed of the same resin material, and for example, can be formed of a polyethylene (PE) resin, a polypropylene (PP) resin, or a combination thereof. Furthermore, the first member (110) and the second member (120) can have a substantially circular (or elliptical) cross section and can have a diameter of 50 μm to 200 μm.
(13) At least one member of the first member (110) and the second member (120) is wound in a spiral extended coil shape with a predetermined pitch (p) of a predetermined radius around a central lumen in the extended direction (central axis A). That is, at least one of the first member (110) and the second member (120) is the spirally wound helical strand based on the central axis (A).
(14) Also, the first member (110) and the second member (120) each have a helical shape that is wound at a predetermined pitch of a predetermined radius around a central lumen in the extended direction (central axis).
(15) Furthermore, the first member (110) and the second member (120) can be helical strands wound along the same rotational direction based on the central axis (A). Otherwise, the first member (110) and the second member (120) can be helical strands wound along different rotational directions.
(16) In addition, the first member (110) and the second member (120) can have the same radius and the same pitch.
(17) The pitch (p) can be 1800 μm to 3000 μm. If the pitch (p) has a value smaller than this numerical value range, the cost increases excessively, whereas if the pitch (p) has a value larger than this numerical value range, the flow passage reduction can be severe upon packing.
(18) In addition, the radius can be 100 μm to 500 μm. If the radius has a value smaller than this numerical value range, the pressure loss becomes excessively high, whereas if the radius has a value larger than this numerical value range, the radius of the water-treatment filter module becomes excessively large and thus the efficiency decreases.
(19) On the other hand, the first member (110) and the second member (120) can be crossed and arranged in cross regions (C) without any contact point. The spacer (100) can also hold the spacer cells (130) only in the cross-arranged state without any separate bonding in cross regions by the helical shape of the first and second members (110, 120).
(20) Also, the first member (110) and the second member (120) can be crossed and arranged so that the spacer cells (130) have a roughly diamond shape.
(21) Referring to
(22) The differential pressure has been analyzed through the spacer shown in
(23) In the spacer of
(24) Hereinafter, an apparatus and a method for manufacturing a helical strand and a spacer having the same structure as the first and second members (110, 120) will be described in detail.
(25)
(26) Referring to
(27) According to the first example, the strand is extruded from the extrusion nozzle (210), and the extruded strand is spirally wound on the rotating roll (220), thereby being made into a helical strand. At this time, the first driving part (230) adjusts the pitch (p) of the helical strand wound on the rotating roll (220) by rotating the rotating roll (220) and simultaneously performing the axial movement of the rotating roll (220). When the helical strand is removed from the rotating roll (220), the helical strand has a wound spiral extended coil shape having a predetermined radius and pitch around a central lumen in the extended direction (central axis A), as shown in
(28) Alternatively, an apparatus (200) for manufacturing a helical strand of a water-treatment filter module associated with a second example of the present invention comprises an extrusion nozzle (210), a rotating roll (220) on which a strand extruded from the extrusion nozzle (210) is wound, a second driving part for rotation of the rotating roll (220), a third driving part (240) for moving the extrusion nozzle (110) along the axial direction of the rotating roll (220), and a control part (250) for adjusting the rotation speed of the rotating roll (220) and the axial movement speed of the extrusion nozzle (210) in order to adjust the pitch of the helical strand wound on the rotating roll. In this example, the second driving part is provided to drive only the rotation of the rotating roll (220), unlike the first driving part (230) of the first example.
(29) According to the second example, the strand is extruded from the extrusion nozzle (210), and the extruded strand is spirally wound on the rotating roll (220), thereby being made into a helical strand. At this time, the second driving part is provided so as to rotate the rotating roll, and the third driving part (240) is provided so as to adjust the pitch of the helical strand wound on the rotating roll (220) by moving the extrusion nozzle (210) along the axial direction of the rotating roll (220). When the helical strand is removed from the rotating roll (220), the helical strand has a wound spiral extended coil shape having a predetermined radius and pitch around a central lumen in the extended direction (central axis A), as shown in
(30) That is, there is a difference in that the axial movement target in the first example is the rotating roll (220), and the axial movement target in the second example is the extrusion nozzle (210).
(31) A manufacturing method using a manufacturing apparatus (200) having the above structure is a method for manufacturing a helical strand of a water-treatment filter module, which comprises steps of: extruding a strand through an extrusion nozzle; and rotating a rotating roll (220) and simultaneously moving at least one of the rotating roll (220) and the extrusion nozzle (210) along the axial direction of the rotating roll, thereby winding the strand on the rotating roll (220) in a spiral shape to form a helical strand.
(32) In order to adjust the pitch (p) of the helical strand, the step of forming the helical strand can further comprise a step of adjusting the rotation speed (w) and the axial movement speed (v) of the rotating roll (220).
(33) A method for manufacturing a spacer for a water-treatment filter module using a helical strand comprises steps of extruding a strand through an extrusion nozzle, rotating a rotating roll and simultaneously moving at least one of the rotating roll and the extrusion nozzle along the axial direction of the rotating roll, thereby winding the strand on the rotating roll in a spiral shape to form a helical strand and arranging a plurality of helical strands in a cross fashion without any contact point to manufacture a spacer.
(34) The preferred examples of the present invention as described above are disclosed for illustrative purposes, which can be modified, changed and added within the spirit and scope of the present invention as those skilled in the art will recognize, and it will be considered that such modification, change and addition fall within the scope of the following claims.
INDUSTRIAL APPLICABILITY
(35) According to the present invention, by constituting the strands forming the spacer with helical strands having a predetermined radius and pitch, the flow can be directed to the surface of the membrane, the whirlpool occurrence can be prevented due to removal of the contact points in the crossing regions, and the pressure loss can be minimized.