PHOTOBIOREACTOR AND METHOD FOR THE CULTIVATING OF MICROALGAE
20190218490 ยท 2019-07-18
Assignee
Inventors
Cpc classification
C12M39/00
CHEMISTRY; METALLURGY
International classification
Abstract
The invention relates to a photobioreactor (1) for cultivating phototrophic microorganisms (such as microalgae for example), comprising a reactor element (2) which has a plurality of rising pipes (3a) and falling pipes (3b) for a liquid culture medium (4) containing the microorganisms and which has a distributing pipe (5). The upper ends (6) of each of the rising pipes (3a) and the falling pipes (3b) are connected to the distributing pipe (5) in a liquid-permeable manner. The invention is characterized in that both the culture medium (4) as well as a gas chamber (9) above the culture medium (4) for receiving gas bubbles (10) rising out of the culture medium (4) are provided in the distributing pipe (5) in the operating state, wherein a boundary surface (11) is arranged between the culture medium (4) and the gas chamber (9) in the distributing pipe (5). By arranging the boundary surface (9) (or the boundary surface region), which is typically susceptible to dirt, in the distributing pipe (5), the aim of the invention to simplify the cleaning process of the photobioreactor or the process of keeping same clean is achieved. In this manner, the yield and service life of the photobioreactor is increased. The invention additionally relates to a method for cultivating phototrophic microorganisms.
Claims
1. A photobioreactor for the cultivation of phototrophic microorganisms, comprising: at least one a reactor element that comprises: a plurality of risers and down pipes for a liquid culture medium containing the phototrophic microorganisms; a manifold configured so that each or the plurality of risers and down pipes is connected in a liquid-permeable manner at its upper end to the manifold; and a connecting piece configured to connect at least: one of the risers to one of the down pipes in a liquid-permeable manner, a gassing device for introducing gas into a riser of the plurality of risers and down pipes, wherein, in an operating state in the manifold, the manifold contains the liquid culture medium and a gas space for receiving gas bubbles rising from the liquid culture medium, whereby an interface is formed in the manifold between the liquid culture medium and the gas space.
2. The photobioreactor according to claim 1, wherein the at least one reactor element comprise at least a first and a second reactor element, and wherein a down pipe of the first reactor element and a riser of the second reactor element are connected to each other in a liquid-permeable manner by a further connecting piece.
3. The photobioreactor according to claim 1, wherein at least one of the plurality of risers and down pipes and/or the manifold are made substantially of glass.
4. The photobioreactor according to claim 1, further comprising a maintenance device movable within the manifold, wherein the manifold further comprises a guiding device configured to guide the maintenance device in the manifold.
5. The photobioreactor according to claim 1, wherein the riser of the at least. one of the risers connected to the one down pipe comprises an inlet for gassing with the gassing device, and the down pipe of the at least: one of the risers connected to the one down pipe comprises a further inlet for gassing with the gassing device.
6. The photobioreactor according to claim 5, wherein at least one of the inlet and the further inlet for gassing is arranged in the connecting piece.
7. The photobioreactor according to claim 5, wherein, in an operating state, at least one of agitation or flow of the liquid culture medium is substantially caused by the gas bubbles rising in the liquid culture medium.
8. The photobioreactor according to claim 7, wherein, in an operating state, the liquid culture medium meanderingly flows through the plurality of risers and down pipes, and wherein the liquid culture medium in the riser of the at least: one of the risers connected to the one down pipe is gassed stronger than in the down pipe of the at least: one of the risers connected to the one down pipe.
9. A method for cultivating phototrophic microorganisms in a photobioreactor that includes: at least one reactor element having a plurality of risers and down pipes for a liquid culture medium containing the microorganisms, and a manifold configured so that each of the plurality of and down pipes is connected in a liquid-permeable manner at its upper end to the manifold, wherein at least: one of the risers and one of the down pipes are connected to each other in a liquid-permeable manner by a connecting piece, the method comprising: exposing the photobioreactor to light; at least partially gassing the liquid-culture medium in in at least one of the risers or down pipes of the plurality of risers and down pipes of the photobioreactor (3, wherein an interface is formed between the liquid culture medium in the manifold and a gas space in the manifold that receives gas bubbles rising from the liquid culture medium.
10. A method for cultivating phototrophic microorganisms in the photobioreactor according to claim 1, the method comprising: exposing the photobioreactor to light.
11. The method according to claim 9, further comprising flowing the liquid culture medium to meander through the plurality of risers and down pipes.
12. The method according to claim 8, further comprising cleaning an inner surface of the manifold with a mobile maintenance device.
13. The method according to claim 12, wherein the inner surface of the manifold is cleaned at pre-settable time intervals.
Description
[0055] The invention is further elucidated on the basis of particularly preferred embodiments, to which, however, it is not limited, and with reference to drawings. The drawings show in detail:
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[0065] The photobioreactor 1 further comprises a device 8 for introducing carbon dioxide (and/or compressed air) into the risers 3a or the down pipes 3b. An inlet 14a for gassing by the device 8 is provided for the riser 3a connected to the down pipe 3b through the connecting piece 7. A further inlet 14b is provided for gassing by the device 8 for the down pipe 3b connected to the riser 3a through the connecting piece 7. The carbon dioxide is pumped from a liquid tank into a gas manifold by a gas pump. The connections of the gas manifold are connected to one inlet 14a and 14b, respectively by hoses. By providing an opening of the inlet 14a, which is more permeable than the opening of the inlet 14b, a greater gassing of the risers 3a relative to the down pipes 3b is made possible. As a result, surprisingly, although no U-shaped connecting pieces 7 are provided at the respective upper end 6 of the risers 3a or down pipes 3b, but the manifold 5 is provided, a meandering flow of the culture medium 4 is created (upwards in the risers 3a, downward into the down pipes 3b, see also the dashed arrows in
[0066] The inlet 52a and the outlet 52b can be connected to each other by a hose, thereby allowing cyclical operation of the photobioreactor 1. After a certain number of cycles under exposure with light, the culture medium 4, which now contains a significantly higher concentration of microorganisms, can be removed at the outlet 52b for harvesting (that is, for concentration and drying of the phototrophic microorganisms), while fresh culture medium 4 having a low initial concentration of phototrophic microorganisms is introduced at the inlet 52a. Of course, a continuous cyclic operation is also conceivable in which the inlet 52a remains connected to the outlet 52b by a hose, and fresh culture medium 5 is continuously supplied at an inlet in a first lower connecting piece 7 and the same amount of denser culture medium 4 is continuously removed at an outlet in a second lower connecting piece 7 which lies directly in front of the connecting piece 7 seen in the flow direction. This naturally requires a certain minimum length of the breeding line. Also, when the photobioreactor 1 has a certain minimum length, a continuous linear operation is also conceivable in which fresh culture medium having a low initial concentration of phototrophic microorganisms is continuously introduced at the inlet 52a and the same amount of mature culture medium 4 is continuously removed at the outlet 52b for harvesting. Inlets, however, can also be provided at other locations of the reactor (for example, U-bend connecting piece of the first/last riser or down pipe, but also in another U-bend connecting piece in the photobioreactor).
[0067] The meandering flowing culture medium 4 having the phototrophic microorganisms is so high in the reactor elements 2 that also the manifolds 5 are each filled about halfway therewith.
[0068] Thus, both culture medium 4 and, above the culture medium 4, a gas space 9 for receiving gas bubbles 10 rising from the culture medium 4 are present in the manifold 5, wherein an interface 11 is arranged between the culture medium 4 and the gas space 9 in the manifold 5. The gas pressure equalization with the environment takes place via the valve 53 which is equipped with a filter system in order to avoid contamination of the culture medium 4.
[0069] The contamination associated with the interface 11 between culture medium 4 and gas space 9 on the inner surface of the manifold 5 can be cleaned with relatively little effort in that the photobioreactor 1 is briefly taken out of service, the culture medium 4 is discharged from the manifold 5, the cover plate 54 of the manifold is removed and the inner surface of the manifold is cleaned, for example, with a brush attached to a telescopic pole.
[0070] The embodiment of the photobioreactor 1 shown in
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