Background of the Invention
The invention concerns a method for submersed, anaerobic fermentation of substrates with microorganisms, as well as an apparatus for performance of the method.
Anaerobic fermentations are performed as a rule in agitator containers. The agitation is necessary so that the microorganisms do not deposit on the bottom of the container and thus become isolated from the content of substrate material which is supposed to be transformed. The agitation is also necessary to provide the microorganisms quickly enough with new untransformed substrate. Although the gaseous reaction products of the anaerobic fermentation do indeed on account of their buoyancy provide for a type of convection in the interior of the container, this is not ordinarily sufficient for a quick enough upheaval of substrate material. Owing to the slow movement of the substrate mass, fermentation times run more than 50 hours. Such fermentation times also do not work out to be less with use of the known energy-intensive mechanical stirring systems. In addition, with stirring mechanisms that lie in the interior of the container, there is an almost complete entry of kinetic energy into the substrate, which, in the form of heat, must be eliminated from the system.
Concerning this problem of eliminating the heat produced by mechanical stirring, a jet conveyor for a one-phase system in the form of a loop-reactor with interior revolution of the reactor contents has been suggested.
Summary of the Invention
It is the object of the invention to drastically lower fermentation times by obtaining a revolution of substrate material with little introduction of heat.
This object is achieved according to the present invention through a method characterized in that for revolution of the substrate together with the microorganisms the substrate liquid itself serves as a sort of propellant, and its movement is promoted through openings in an apertured bottom attached between the lower conical part of the container and the cylindrical upper part of the container. The substrate material is recirculated from the upper part of the container. In addition, the invention encompasses an apparatus for accomplishing the method, characterized in that for increasing the substrate velocity within the container an apertured bottom is attached between the cylindrical part and the conical part.
The configuration of the openings in the apertured bottom and their distribution are significant.
The novel features which are considered characteristic for the invention are set forth in particular in the appended claims. The invention itself, however, both as to its construction and its method of operation, together with additional objects and advantages thereof, will be best understood from the following description of specific embodiments when read in connection with the accompanying drawing.
Brief Description of the Drawing
FIG. 1 is a fermentation container in vertical cross-section.
FIG. 2 is the enlarged lower section of the fermentation container showing the apertured bottom wall of the upper section and the substrate introduction conduit to the lower section.
FIGS. 3-7 are different configurations for the openings in the apertured bottom wall.
FIG. 8 is a schematic of the direction of movement of the substrate in the upper section after passing through the elbow-shaped openings indicated in FIG. 7.
Description of the Preferred Embodiments
According to FIGS. 1 and 2 the fermentation container is composed of a cylindrical upper container section 1 and a conical lower section 2. The container is provided with a double jacket 3. The lower section is closed by a flange 4, through which a conduit 5 runs, which may be composed of supply pipes 5', 5", 5'''. At cover 6 of the container a mechanical foam separator 7 with an electrical motor 8 can be attached. A gas discharge pipe 9 leads above a sterile air filter (not shown) and can be connected to a vacuum pump (also not shown). One or more conduits 10 are connected with one or more pumps 11, which are fed from a supply conduit 12 above. The conduit 12 branches out into several levels of the container through conduits 12', 12", 12'''. Between the conical and the cylindrical sections of the container an apertured bottom is attached in known manner. The openings 14 in the apertured bottom 13 can be shaped differently, in general, however, they are circular or rectangular.
In FIG. 3 apertured bottom 13 is shaped so that the openings form funnels. They contain round openings 14. The edges 15 are rounded off.
In FIG. 4 the opening 14 is so formed in apertured bottom 13 that a section is bent out. Thereby an oblong, or even a round opening can be formed.
FIGS. 5 and 6 exhibit variations.
In FIG. 7 the opening 14 is formed through a curved tube or elbow 15, which is able to alter the direction of flow.
FIG. 8 reproduces the direction of flow from curved tubes 15.
During operation the substrate together with the microorganisms will be introduced from the upper sections of container 1 at various levels, withdrawn through conduits 12', 12" or 12''' and introduced to conduit piece 12, then through one or more pumps 11. Pumps 11 push the substrate in sufficient quantity, which can be increased by having several parallel-connected pumps. The substrate liquid is pushed across the delivery pipe 5 or 5', 5", 5''' back into the container, i.e., into cone 2. The amount of liquid must be selected so large that a fluid velocity through the opening of flange 4 of about 1.7 meters per second prevails; however, this cannot be more than 2 meters per second. Under these conditions the substrate will be squeezed with higher velocity through the openings 14, along with a decrease in the velocity at the bottom of the openings, which, however, does not result in a settling of the microorganisms.
FIG. 8 indicates the flow scheme whereby elbows 15 of FIG. 7 at the periphery and in the center point in opposite directions as shown by the arrows.
Table I indicates data for the formation of the apertured bottom wall in a 300-cubic-meter-capacity fermentor, which displays a bottom wall 13 diameter of 5800 mm.
Table II indicates the dependency of the entrance velocity through the entry connection 4 having a diameter of 5,800 mm. The velocity through the openings 14 come to about a constant 2 meters per second.
With the choice of the number and the size of the openings, it turns out to be particularly advantageous if the sum of all of the hole areas in the bottom wall 13 is the same as the area of the cross-section present in the main entry connection 4. This will result in a flow volume in the connection which is about equally as large as the flow volume through the openings of the apertured bottom wall.
At the surface of the substrate material, the gas formed by the anaerobic metabolism separates off, so that indeed accordingly the turbulence produced forms foam. The foam will be separated into its liquid and gaseous components by the mechanical foam separator 7, driven by means of electrical motor 8. Liquid will be separated by the centrifugal force and run back into the container. The gas leaves the container through connector 9, usually through an air filter, which during the heat sterilization of the container with equalization of pressure prevents contaminated air from being able to enter the container.
A particularly advantageous method according to the invention results then through means of external pumps which produce a revolution of substrate and turbulence, without extra loss of heat, so that the fermentation time can be drastically reduced.
It will be understood that each of the elements described above, or two or more together, may also find a useful application in other types of mixing systems differing from the types described above.
While the invention has been illustrated and described as embodied in a fermentor for anaerobic fermentation, it is not intended to be limited to the details shown, since various modifications and structural changes may be made without departing in any way from the spirit of the present invention.
Without further analysis, the foregoing will so fully reveal the gist of the present invention that others can, by applying current knowledge, readily adapt it for various applications without omitting features that, from the standpoint of prior art, fairly constitute essential characteristics of the generic or specific aspects of this invention.