PROCESS MONITORING DEVICE
20260133060 · 2026-05-14
Inventors
- Benjamin Schwenter (Ettingen, CH)
- Robert Lalla (Lörrach, DE)
- Samuel Neeser (Aesch, CH)
- Martin Josef Anklin (Dornach, CH)
- Ennio Bitto (Aesch, CH)
- Ruben Kiefer (Ettingen, CH)
- Marc Werner (Grenzach-Wyhlen, DE)
Cpc classification
International classification
Abstract
A process monitoring device includes: a measuring tube module having at least one measuring tube through which a medium can flow; a receptacle module having a receptacle, wherein the measuring tube module can be inserted into the receptacle, wherein the measuring tube module can be mechanically separably connected to the receptacle module; and an installation for biotechnological applications, wherein the installation includes a cabinet, wherein the cabinet has a cabinet wall, which delimits a cabinet interior, wherein the cabinet wall has a cover, wherein the cover includes an opening, wherein the receptacle module, in particular the receptacle, extends through the opening into the cabinet interior.
Claims
1. A process monitoring device, comprising: a measuring tube module comprising at least one measuring tube adapted for flowing a medium therethrough, wherein the measuring tube module includes a first vibration exciting component of a vibration exciter configured to excite vibrations in the at least one measuring tube, and wherein the measuring tube module includes a first vibration sensor component of a vibration sensor configured to detect the vibrations of the at least one measuring tube; a receptacle module, including a receptacle, wherein: the receptacle module is configured complementary to the measuring tube module as to enable the measuring tube module to be reversibly introduced into the receptacle of the receptacle module, the measuring tube module is configured to be mechanically separably connected to the receptacle module, the receptacle module includes a second vibration exciting component of the vibration exciter, and the receptacle module includes a second vibration sensor component of the vibration sensor; and an installation for a biotechnological process application, wherein the installation comprises a cabinet, which includes a cabinet wall, which delimits a cabinet interior, and the cabinet wall includes a cover, which includes an opening, wherein the receptacle of the receptacle module extends through the opening into the cabinet interior of the installation, wherein the opening is configured to enable the measuring tube module to be reversibly introduced directly into the receptacle of the receptacle module, and wherein the receptacle module includes a fastening arrangement disposed in the cabinet interior, wherein the fastening arrangement is configured to mechanically connect the receptacle module to the cover.
2. The process monitoring device of claim 1, wherein: the receptacle module includes a receiving portion outside the cabinet interior; the receptacle module, in the receiving portion, includes a shoulder, which is circumferential; the cover includes a cover surface; the shoulder includes a shoulder surface; and the shoulder surface and the cover surface face each other.
3. The process monitoring device of claim 1, wherein the receptacle extends in a receiving direction, wherein the receptacle module is arranged in the opening such that the receiving direction includes a vectorial portion with a direction opposite to the direction of gravity.
4. (canceled)
5. The process monitoring device of claim 1, wherein the fastening arrangement comprises: a first fastener, which is connected to the receptacle module, movably in a guide; and a second fastener, wherein the first fastener is functionally connected to the second fastener.
6. The process monitoring device of claim 5, wherein the cover has a rear side, and wherein the second fastener is configured to at least partially bend the first fastener in a direction of the rear side.
7. The process monitoring device of claim 1, wherein the installation further comprises a system for chromatographic purification processes and/or a crossflow filtration system disposed within the cabinet.
8. The process monitoring device of claim 1, wherein at least the measuring tube module and the receptacle module form a modular Coriolis flow meter.
9. The process monitoring device of claim 1, wherein the installation further comprises a bioreactor vessel disposed within the cabinet.
10. The process monitoring device of claim 2, wherein a seal is arranged between the shoulder surface and the cover surface, wherein the seal is adapted to seal the receptacle module and prevent entry of liquids into the cabinet interior.
11. The process monitoring device of claim 3, wherein the receptacle is inclined in accordance with one of ASME BPE-2019 standards GSD1, GSD2 and GSD3.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0052] The present disclosure is explained in greater detail with reference to the following figures. In the drawings:
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DETAILED DESCRIPTION
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[0059] The receptacle module 16 is a fixed component of the installation for biotechnological applications 74 and has the electronic components with which the Coriolis flow meter 2 is operated and the flow-dependent measurement signal is detected. The receptacle module 16 has a receptacle 23 for the measuring tube module 4, into which the measuring tube module 4 can be inserted. In addition, the measuring tube module 4 can be mechanically separably, or detachably, connected to the receptacle module 16 in order to ensure a user-friendly exchange of the measuring tube module 4. When the application is changed, the measuring tube module 4 can be replaced with a new sterilized measuring tube module 4. The receptacle module 16 has a second vibration exciting component of the at least one vibration exciter and a second vibration sensor component of the at least one vibration sensor. These are the excitation coil and the at least one sensor coil, which are each electrically connected to a measuring circuit and are controlled and read, respectively, via the circuit. The receptacle module 16 is not designed to contact the medium but is configured such that it can be cleaned.
[0060] The installation 74 for biotechnological applications has a housing 75 with a housing wall 76 which delimits a housing interior 77. The housing wall 76 is made of sheet metal. The receptacle module 16 is arranged in an opening 79 of the housing wall 76 (e.g., of a cover 78, which is a section of the housing wall 76, as shown in
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[0062] In the installed state, the measuring tube module 4 is arranged in the receptacle 23 and the fixing body arrangement 35 rests on the mounting surface 26. The measuring tube module 4 is now ready to be fastened to the receptacle module 16 by means of the fixing device 34. This is necessary so that a measurement with a stable zero point is possible. For this purpose, the fixing device 34 has a first fixing element 40 and a second fixing element 41, which are each designed to be pivotable and each have a fixing surface 42, 43. The fixing surfaces 42, 43 are each located at a first end of the fixing element 40, 41. The fixing elements 40, 41 each have an elongate fixing element body. In the end portion comprising the first end, the fixing elements 40, 41 are fastened to the receptacle module body 22 in a manner allowing pivoting about an axis of rotation. The fixing elements 40, 41 are configured to press the fixing body arrangement 35 against the mounting surface 26 in order to thus suppress movements of the fixing body arrangement. The first fixing element 40 is connected to a pivotable connecting device 46, which comprises a connecting body 47. The connection between the fixing element 40 and the pivotable connecting device 46 is located at the second end of the first fixing element 40. The connecting body 47 is at least partially cubic, and cylindrical in the end portion. There, a closing device 48 is arranged on the connecting body 47. In the illustrated embodiment, the end portion of the connecting body 47 has an external thread, and the closing device 48 is designed as a screw. Depending on the application and the requirements for measurement performance, the closing device 48 can also be designed as a torque screw, a clamping lever, a clamping bracket, a tensioner, a quick clamp, a tensioning lever, a clamping claw, a hood closure, and/or an eccentric lever. Alternatively (not shown), the closing device 48 can be designed as a clasp, in particular a sleeve clasp, which is arranged on a first fixing element 40 of the two fixing elements 40, 41. Accordingly, a pivot part is arranged on the second fixing element 41. In this case, the pivot part is designed as a sleeve pivot part which has at least one hook, in particular a sleeve hook. In the fixed state, the fixing surfaces 42, 43 of the fixing elements 40, 41 contact the contact surfaces 44, 45 of the fixing body arrangement 35. The connecting body 47 of the connecting device 46 is functionally connected to the second fixing element 41, i.e., the connecting device 46, in particular the connecting body 47, connects the first fixing element 40 to the second fixing element 41. The second fixing element 41 has a guide 51 at the second end for the end portion of the connecting body 47. In the closed state, the connecting body 47 extends along the guide 51 of the second fixing element 41. The closing device 48 contacts the clamping surface 49 of the second fixing element 41. When the closing device 48, in the form of a screw, is tightened, the two fixing elements are brought uniformly together. The closing device 48 presses against the clamping surface 49. Because the two fixing elements 40, 41 are designed to be pivotable about an axis of rotation, when the fixing elements 40, 41 are tightened and accordingly brought together, a force is produced on the fixing body arrangement 35 parallel to the longitudinal direction of the measuring tube module 4 in the direction of the mounting surface 26. This force ensures a uniform fastening of the measuring tube module 4 to the carrier unit body 22. The measuring tubes 3.1, 3.2 each have an inlet longitudinal axis in the inlet portion and an outlet longitudinal axis in the outlet portion, wherein a first longitudinal plane runs through the inlet longitudinal axes of the measuring tubes, wherein a second longitudinal plane runs through the outlet longitudinal axes of the measuring tubes, wherein the fixing body arrangement 35 has a second end face which is oriented opposite to the first end face, wherein the first longitudinal plane and the second longitudinal plane delimit a first surface on the second end face of the fixing body arrangement 35, wherein the inlet longitudinal axis and the outlet longitudinal axis of the first measuring tube 3.1 run in a third longitudinal plane, wherein the inlet longitudinal axis and the outlet longitudinal axis of the second measuring tube 3.2 run in a fourth longitudinal plane, wherein the third longitudinal plane and the fourth longitudinal plane delimit a second surface on the second end face, wherein in the fastening state, the fixing surfaces 42, 43 of the fixing elements 40, 41 rest, in particular exclusively, on the first surface and lie outside the second surface. Alternatively, the fixing body arrangement 35 can be formed in multiple parts, wherein one part is materially bonded to the at least one measuring tube 3.1, 3.2, and a further part is attached at least with a positive connection. This further part is designed and configured to serve as a process connection for the measuring tubes 3.1, 3.2 to a process line. For this purpose, the further part can have, for example, standardized process connections, such as flanges or threads.
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