FIBER MEMBRANE TUBE FOR MASS TRANSFER BETWEEN FLUIDS AND METHOD OF AND CORE WINDER FOR MAKING SAME
20200122089 ยท 2020-04-23
Inventors
Cpc classification
B01D2313/08
PERFORMING OPERATIONS; TRANSPORTING
B01D63/0232
PERFORMING OPERATIONS; TRANSPORTING
B01D63/04
PERFORMING OPERATIONS; TRANSPORTING
A61M1/1698
HUMAN NECESSITIES
International classification
Abstract
The invention relates to a method for producing a device for a mass transfer between two fluids, wherein at least one hollow-fiber mat (9) is wound on an at least partly hollow core assembly (1, 1a, 1b, 2), and the formed coil is inserted into a housing (10). The assembly of the housing (10) and the coil is then sealed (10), in particular potted, with a sealant at the opposing axial ends in the regions between the hollow-fiber ends and the housing. The core assembly (1, 2) is made of at least two axially adjacent core parts (1, 1a, 1b, 2) arranged one behind the other, at least one (1, 1a, 1b) of which has a hollow design, and the core parts (1, 1a, 1b, 2) are kept in specified axial positions relative to each other, in particular at a distance to each other, by means of at least one aid element (7) at least over the period of the sealing process and preferably over the period of the winding process as well. After the sealing process and the removal of the at least one aid element (7), at least the axially end-face core parts (1, 1a, 2) are kept in their relative positions to each other by means of the sealant. The invention also relates to a coil, a core assembly, and a core system.
Claims
1. In a method of making an apparatus for mass transfer between two fluids, wherein at least one tubular-fiber mat is wound on an at least partially tubular core to form a wound body extending along an axis; the wound body is inserted into a casing to form an assembly; and the assembly of casing and wound body potted at its axially opposite ends with a sealant between ends of tubular forming the mat and the casing, the method comprising the steps of: forming the at least partially tubular core from two separate core parts that are spaced axially apart and arranged contactlessly in succession, at least one of the core parts being tubular; holding the core parts in a predetermined axial position relative to one another at a predetermined minimum axial spacing from one another, by at least one spacer element at least during the potting; and thereafter removing the spacer element to leave the axially spaced core parts held by the sealant spaced axially relative to one another.
2. The method according to claim 1, potting is done in a centrifuge, the method further comprising the steps of: making the core parts accessible on axial outer ends of the wound body from axially outside the casing and the wound body orienting the assembly in the centrifuge such that during centrifuging one of the core parts is radially outside the other of the core parts, and attaching the other radially inner core part to the spacer element while centrifugally urging the radially outer core part against the spacer element.
3. The method according to claim 1, further comprising the step of, while maintaining in the predetermined axial position relative to one another during winding or potting inserting the spacer element into the one tubular core part; and fixing the spacer element in the tubular part so as to be stationary and bear axially on the other core part.
4. The method according to claim 3, wherein the spacer element is pin-shaped and simultaneously forms a plug during potting that closes axially throughgoing opening of the tubular core part during potting against exposure to the sealant.
5. The method according to claim 4, wherein the pin-shaped spacer element extends axially past the one tubular core part and has at its end contacting the other core part a recess that engages over a projection of the other core part that tapers toward the tubular core part.
6. The method according to claim 3, further comprising the step of: holding the other core part on the holding element with a retention force during winding and potting.
7. The method according to claim 6, wherein the retention force is exerted by a) a pressure element located axially outside the wound body that rests against the externally accessible end face of the additional core part; or b) an adhesive fluid that is between the surfaces of the pin-shaped spacer element and additional core part that engage positively over one another; or c) a magnetic attractive effect between the pin-shaped holding element and the other core part or an element lying axially behind it.
8. The method according to claim 1, wherein the spacer element is formed by a removable spacer that is axially between the core parts during winding and potting removable from the core assembly through the tubular core part.
9. The method according to claim 3, wherein the spacer element is made of a material that is soluble in a solvent and is dissolved with the solvent after potting and washed out through the tubular core part.
10. A wound body of an apparatus for mass transfer between two fluids, comprising: a core assembly extending along an axis and having a tubular core part and a separate additional core part axially adjacent thereto and spaced apart axially therefrom in a contactless manner, a tubular-fiber mat wound around the core assembly, the core parts being movable relative to one another in the wound body, in the direction of the axis.
11. The wound body according to claim 10, further comprising: a pin-shaped spacer element fittable into the tubular core part and fastened therein in an axially stationary manner, a minimum axial spacing of the additional core part to the tubular core part being defined by contact between the spacer element and the additional core part.
12. The wound body according to claim 11, wherein the one tubular part has an opening that faces toward the additional core part, the opening region flaring toward the additional core part like a funnel, the additional core part having a projection that tapers toward the tubular core part and fits into opening of the tubular core part.
13. An apparatus for mass transfer between two fluids, the apparatus comprising: a casing; a wound body therein and comprised of an at least partially tubular core assembly having at least one tubular core part and at least one additional separate core part that is adjacent to, preferably contactlessly spaced apart from the tubular core part, and a body of potting compound fixing the axially end core parts in their axial position relative to one another between the tubular-fiber ends and the casing.
14. (canceled)
Description
[0053] The invention will be explained with reference to the following figures in preferred examples.
[0054]
[0055] The tubular core part 1 has a central passage 3 that leads to the upper and lower axial end faces. In the vicinity of the opening facing toward the additional core part 2, the opening becomes larger like a funnel toward the core part 2.
[0056] The core part 2 has a projection 4 that is tapered toward the tubular core part 1, here conically. The projection 4 is arranged, preferably centrally, on a planar end face 5 of the core part 2 directed toward the tubular core part 1. The tip of the projection engages axially into in the flared region of the lower end of the core part 1 so that it is surrounded by the core part 1.
[0057] Fluid flow through the passage 3 that against the projection of the core part 2 is deflected by it through an annular gap 6 from axial flow into radial outward flow and thus enters over a full 360 a chamber that, in the finished apparatus, would be formed between the core assembly around which at least one tubular-fiber mat would be wound and the inner wall of an (unillustrated) casing.
[0058] Instead of a conical shape, the projection can also have any other tapered shape that is found to be aerodynamic, it being preferred, however, that this shape of the projection be rotationally symmetrical about a central axis A of the core assembly along which the passage 3 also particularly extends.
[0059] This possibility of flow over a full 360 constitutes an essential aspect of the apparatus according to the invention.
[0060] For assembly, according to the invention a pin-shaped spacer element 7 is used in the passage 3 of the core part 1. In this embodiment, the spacer element 7 has an external thread 8a at its upper end that corresponds to an internal thread 8b at the upper end of the passage 3. The spacer element 7 is axially fixed in the core part 1 by screwing.
[0061] The lower end of the spacer element 7 faces toward the core part 2 and forms a contact surface that engages the tip of the projection 4. This sets a predetermined minimum axial spacing between the core parts even if forces act on them during sealing in a centrifuge.
[0062] At least one tubular-fiber mat can be wound up on the core assembly that is formed in this manner in order to form a wound body according to the invention that can then be inserted into the casing of the apparatus.
[0063]
[0064] During centrifuging, sealing compound bonds to the radially outer core part, the local fiber ends, and the casing inner wall, thereby securing the relevant core part. The process is repeated for both axial sides of the apparatus. Both core parts are then axially fixed, and the spacer element can be removed.
[0065]
[0066]
[0067] As in
[0068] The pin-shaped spacer element 7 is formed with a shoulder to have a reduced diameter end region extending toward the additional nontubular core part 2. The shoulder 7a forms a stop against which the second tubular core part 1b can be pushed onto the pin-shaped spacer element 7. Its axial position is defined on this basis.
[0069] As in
[0070] Sealing then takes place after the formation of the wound body as described in relation to