APPARATUS FOR SEPARATING HYDROGEN FROM A GAS MIXTURE AND PROCESS FOR THE PRODUCTION THEREOF
20230233999 · 2023-07-27
Assignee
Inventors
Cpc classification
B01D2313/086
PERFORMING OPERATIONS; TRANSPORTING
B01D53/228
PERFORMING OPERATIONS; TRANSPORTING
B01D2313/08
PERFORMING OPERATIONS; TRANSPORTING
B01D63/103
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
The invention relates to an apparatus for separating hydrogen from a gas mixture, comprising a vessel which defines an inlet collection space for the gas mixture and an offtake collection space for hydrogen, where the inlet collection space is separated from the offtake collection space by means of a hydrogen-permeable membrane. The invention is also directed to a process for producing an apparatus for separating hydrogen from a gas mixture, which comprises a hydrogen-permeable membrane, a gas mixture inlet, a hydrogen offtake and a residual gas outlet.
Claims
1. An apparatus for separating hydrogen from a gas mixture, comprising a vessel which defines an inlet collection space for the gas mixture and an offtake collection space for hydrogen, where the inlet collection space is separated from the offtake collection space via a hydrogen-permeable membrane, wherein the membrane is arranged with an essentially folded, spiral or helical configuration with a plurality of membrane turns arranged at a spacing in such a way that alternating regions of the inlet collection space and of the offtake collection space are formed in the spacing between neighbouring membrane turns.
2. The apparatus according to claim 1, wherein the membrane has two membrane layers which alternate with one another in their spiral or helical arrangement.
3. The apparatus according to claim 1, wherein the membrane is provided at least in subregions with spacers.
4. The apparatus according to claim 3, wherein the spacers are formed by embossings distributed over the area of the membrane.
5. The apparatus according to claim 3, wherein the spacers are provided on only one of the two membrane layers.
6. The apparatus according to claim 3, wherein the spacers are configured as at least one insert arranged at least in subregions between the membrane turns.
7. The apparatus according to claim 1, wherein the membrane consists of an iron material.
8. The apparatus according to claim 1, wherein the membrane is arranged as two-layer spiral winding around at least one gas mixture inlet, at least one residual gas outlet and/or at least one hydrogen offtake.
9. The apparatus according to claim 8, wherein the gas mixture inlet and/or the hydrogen offtake and/or the residual gas outlet is/are configured as tube sections arranged in the spiral winding.
10. The apparatus according to claim 8, wherein the membrane has been passed between the gas mixture and the hydrogen offtake and wound in two layers around the inlet and the offtake to form a spacing between adjacent layers.
11. The apparatus according to claim 1, wherein the membrane turns are closed off from one another in a gastight manner at their end-face edges by at least one end face lid or an enveloping layer closed around its circumference and/or a sealant or adhesive which seals the membrane layers from one another.
12. The apparatus according to claim 1, wherein that the inlet collection space has a residual gas outlet which is preferably arranged at a greatest possible distance from the gas mixture inlet of the inlet collection space.
13. A process for producing an apparatus for separating hydrogen from a gas mixture, which apparatus comprises a hydrogen-permeable membrane, a gas mixture inlet, a hydrogen offtake and a residual gas offtake, wherein the membrane is wound spirally around the gas mixture inlet and/or the hydrogen offtake and/or the residual gas outlet in such a way that neighbouring membrane turns are arranged at a spacing from one another and alternating regions of an inlet collection space communicating with the gas mixture inlet and an offtake collection space communicating with the hydrogen offtake are formed between neighbouring membrane turns.
14. The process according to claim 13, wherein the membrane is wound in the manner of a double-layer spiral around the gas mixture inlet and/or the hydrogen offtake and/or the residual gas outlet.
15. The process according to claim 14, wherein the membrane is fed as two separate membrane layers which are arranged alternately in the spiral to the apparatus by two stock reels.
16. The process according to claim 13, wherein the membrane or at least one of its membrane layers is provided with embossing forming a spacer on its upper side and/or its underside before the winding operation.
17. The process according to claim 16, wherein embossing is effected by means of via an embossing station arranged between a stock reel and a winding station for winding up the membrane.
18. The process according to claim 15, wherein the two membrane layers are formed by a one-piece membrane material strip which is passed through in the centre of the double-layer spiral of the apparatus between the gas mixture inlet and the hydrogen offtake in order to delineate the communicating collection spaces from one another.
Description
[0018] Further features and advantages of the invention may be derived from the following description and the drawing, in which preferred embodiments are presented and explained further with the aid of examples. The drawing shows:
[0019]
[0020]
[0021]
[0022]
[0023] The drawing shows various embodiments of an apparatus denoted in its totality by 10, which serves to separate hydrogen from a gas mixture again in a membrane separation process, after which it has previously been, for example at a different place, fed into an existing natural gas network for storage and/or transport, of which a mixed gas connection is denoted by 11 in the drawing. Feeding of hydrogen into a natural gas network makes it possible for hydrogen which has been obtained by electrolysis of water by means of electric power from preferably renewable energy sources (wind, solar) to be subjected to temporary storage in the natural gas network without complicated tank technology until use and to be transported together with the natural gas to even a remote point of use. Such a point of use can be, for example, a hydrogen filling station at which vehicles with fuel cell technology can acquire their hydrogen requirement.
[0024] In order to separate the hydrogen H2 particularly efficiently from the mixed gas MG consisting of natural gas and hydrogen at the respective point of use, the apparatus 10 according to the invention has, in the first embodiment, an essentially cylindrical vessel 12 which is closed off at its two end faces by end-face lids 13 (
[0025] In the working example shown in
[0026] To prevent the individual layers of the membrane 16 from contacting one another directly over the full area, spacers 18 are provided between the membrane layers 16a, b. These are, when the preferred production process depicted in
[0027] The membrane 16 arranged as two-layer spiral winding in the embodiment of
[0028] After the hydrogen H2 has been separated off, a residual gas RG which consists essentially of natural gas and a residual amount of hydrogen which has not diffused through the membrane in the apparatus and thus been separated off from the mixed gas remains in the inlet collection space. In order to discharge this residual gas RG, a residual gas collection tube 23 is provided at the radially outer end of the spiral and thus at a position on the inlet collection space 14 which is farthest removed from the gas mixture inlet 20 in the centre of the apparatus, between the cylindrical outer wall of the vessel 12, which bounds the inlet collection space on the outside, and the outermost membrane layer which ends there. The residual gas collection tube 23 has similar openings (not shown) as the two tube sections 20, 21 in the region of its circumferential wall which faces the collection space 14, so that the residual gas RG can flow through these openings into the collection tube 23 and be discharged.
[0029] The individual membrane turns 17 are joined at their end-face edges 24 to the two end-face lids 13 of the vessel 12 in a gastight manner, so that the different regions of the inlet collection space 14 and of the offtake collection space 15 do not communicate with one another here, either. The gastight connection can, for example, be ensured reliably by the end-face lids 13 consisting of a curable, initially liquid sealing or embedding composition or being coated on the inside with such a composition; at least one piece of the wound-up construction made up of the membrane layers and the outer vessel wall is dipped into this embedding composition until the embedding composition has cured and encloses the end-face edges of the membrane turns tightly.
[0030]
[0031] Immediately before the membrane is wound up by turning the tube sections 20a, b and 21a, b forming the inlet and the offtake around one another, the first of the two membrane layers 16a is provided on its upper side 26 and its underside 27 with the embossings 19 forming the spacers 18. For this purpose, an embossing station 29 is arranged between the stock reel 25a and a winding station, indicated only by the rotational direction arrow 28, for winding up the membrane 16. The embossing station has two rotatably arranged embossing rollers 30 which on their circumferential surface bear a plurality of distributed embossing cams 31 which produce the embossings 19 in the membrane layer 16a while the latter runs through between the two embossing rollers. As can readily be seen in the drawing, the embossings 19 projecting at a uniform height from the underside 27 and the upper side 26 of the membrane layer 16 ensure that, in the wound state in the apparatus, the inbetween parts of the second membrane layer 16b contacts the first membrane layer only at the projecting regions of the embossings and otherwise maintains a spacing a from the first membrane layer, which spacing corresponds to the height of the embossings.
[0032]
[0033] The apparatus of the invention and the process according to the invention are not restricted to the above-described purpose of separation of hydrogen from a mixture with natural gas. The apparatus is also very well-suited for separating hydrogen from a hot gas mixture which contains the hydrogen and arises at elevated temperatures which are, for example, above 400° C. and can be up to 700° C. Examples of such applications are offgases from coking processes, from thermal cracking of wastes, from pyrolysis plants and the like. A membrane composed of an iron material, e.g. a membrane composed of pure iron, of ferritic steel or a low-alloy steel, is very suitable for, in particular, applications in which the mixed gas fed to the apparatus is at a comparatively high temperature. Such a membrane composed of iron material has a better permeability for hydrogen at the higher operating temperatures compared to that at ambient temperature, i.e. a significantly greater degree of separation can be achieved than at ambient temperature for the same membrane area.