FLOW MEASUREMENT SYSTEM FOR SINGLE-USE CONTAINERS
20170268913 · 2017-09-21
Inventors
Cpc classification
G01F15/006
PHYSICS
International classification
Abstract
A venturi flowmeter for connection to single-use containers is provided. The venturi flowmeter includes a meter body formed of a polymer and configured to allow fluid flow therethrough. A first annular diaphragm is mounted proximate an inner surface of the meter body has a first internal diameter. A second annular diaphragm is mounted proximate an inner surface of the meter body has a second internal diameter different from the first internal diameter.
Claims
1. A venturi flowmeter for connection to single-use containers, the venturi flowmeter comprising: a meter body formed of a polymer and configured to allow fluid flow therethrough; a first annular diaphragm mounted proximate an inner surface of the meter body having a first internal diameter; a second annular diaphragm mounted proximate an inner surface of the meter body having a second internal diameter different from the first internal diameter: and a first impulse line coupled to the first annular diaphragm, the first impulse line having substantially incompressible fluid therein,
2. The venturi flowmeter of claim 1, wherein the meter body is formed of plastic.
3. The venturi flowmeter of claim 1, wherein each of he first and second annular diaphragms is constructed from plastic.
4. The venturi flowmeter of claim 1, wherein at least one of the first and second annular diaphragm extends entirely about an internal diameter of the meter body.
5. The venturi flowmeter of claim 1, wherein the venturi flowmeter is sterilized and disposed within sterile packaging.
6. (canceled)
7. The venturi flowmeter of claim 1, and further comprising a second impulse line coupled to the second annular diaphragm, the second impulse line having a substantially incompressible fluid therein.
8. The venturi flowmeter of claim 7, wherein each of the first and second impulse lines is filled with water.
9. The venturi flowmeter of claim 7, wherein the meter body, first impulse line, and second impulse line are disposed within sterile packaging.
10. The venturi flowmeter of claim 7, wherein each of the first and second impulse lines is fluidically coupled to a pressure measuring instrument.
11. The venturi flowmeter of claim 10, wherein each of the first and second impulse lines is fluidically coupled to the same pressure measuring instrument.
12. The venturi flowmeter claim 11, wherein the pressure measuring instrument is a differential pressure transmitter.
13. The venturi flowmeter of claim 12, wherein the differential pressure transmitter is configured to measure a differential pressure between pressure in the first and second impulse lines and determine a flow-related value output.
14. The venturi flowmeter of claim 13, wherein the flow-related value output is conveyed in accordance with a process communication protocol.
15. The venturi flowmeter of claim 14, wherein the process communication protocol is a wireless process communication protocol.
16. A method of measuring flow of a bioreacting fluid, the method comprising: providing a venturi meter body formed of a polymer; generating a flow of the bioreacting fluid through the venturi meter body; measuring a difference between a first venturi pressure relative to a first location in the meter body and a second venturi pressure relative to a second location in the meter body having a diameter that is different than a diameter of the first location in the meter body; determining a flow-related value of the bioreacting fluid based on the measured difference in the first and second venturi pressures; and providing the flow-related value as an output.
17. The method of claim 16, wherein measuring the first venturi pressure is performed by coupling an annular diaphragm at the first location to a pressure measuring instrument.
18. The method of claim 17, wherein measuring the second venturi pressure is performed by coupling an annular diaphragm at the second location to the pressure measuring instrument.
19. The method of claim 16, wherein determining the flow-related value is performed by a differential pressure transmitter.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0004]
[0005]
[0006]
[0007]
DETAILED DESCRIPTION
[0008] Users of single-use containers, such as bioreactors, desire a relatively inexpensive and relatively accurate set of instrumentation for use with such containers. Important drivers for such single-use plastic containers are dramatically lower capital costs, as described above, no clean-in-place infrastructure, faster batch turnaround times, and smaller and more flexible process capabilities. While some developments have been undertaken in order to provide high quality pressure and level measurement with respect single-use containers, no solutions are currently provided for measuring the flow of a fluid to or from such a single-use container.
[0009] Embodiments of the present invention generally provide an effective solution for measuring the flow relative to a single-use container, such as a bioreactor. In accordance with an embodiment of the present invention a polymeric venturi-based flowmeter is used in conjunction with a relatively high quality differential pressure measurement device. Portions of the venturi flowmeter that contact the flowing fluid are constructed with relatively low-cost polymers, such as plastic, that can be pre-sterilized. The venturi flowmeter is then fluidically coupled, in one embodiment, to the relatively high quality differential pressure measurement device. Note, while embodiments of the present invention are described with respect to a single differential pressure measurement device measuring pressures relative to a venturi flowmeter, embodiments of the present invention can be practiced with such measurements being performed by separate devices.
[0010] Fluid flow measurement presents a particular difficulty for single-use containers, such as bioreactors. In particular, these vessels often contain living cells or organisms. Such cells or organisms are often particularly susceptible to sheering stresses or other acute forces as they flow through the system. Thus, in order to effectively measure a flow parameter relative to a liquid that may contain living cells or organisms, it is important to do so with as little disturbance to the flow profile as possible. For example, live cells that are transported in the tubes to and/or from a bioreactor must be treated with care so that they do not rupture or suffer other undesirable effects. Accordingly, some embodiments of the present invention generally provide a polymeric venturi with an appropriately large choke in order to be minimally disruptive to the flow of the fluid.
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[0012]
[0013] As shown in
[0014] Venturi flowmeter 132 is coupled to cooperative fittings 138, 140 through any suitable couplings, such as known tri-clamp couplings 142, 144. As will be described in greater detail with respect to
[0015]
[0016] While embodiments of the present invention can be practiced where annular diaphragms 146 and 148 do not extend fully around the internal diameter of meter body 152, at least one embodiment includes annular diaphragms extending entirely about the internal diameter of meter body 152. Additionally, as shown in
[0017] In accordance with the embodiments of the present invention, meter body 152 and the seal system may be formed of materials of sufficiently low cost that the entire system, with the exception of differential pressure transmitter 130, can be considered to be disposable. In one embodiment, the venturi/seal system is delivered to an end-user in a pre-sterilized condition and ready to be connected to a single-use container. In contrast, the differential pressure transmitter, such as transmitter 130, is a permanent part of the infrastructure that supports the biological reaction process. This approach uses the high performance differential pressure transmitter 130 and allows the user to retain all of the support infrastructure including potential FDA traceability.
[0018]
[0019] Next, at block 210 a flow value is determined based on the measured differential pressure. In one embodiment, the flow value may be flow velocity 212, while in another embodiment, the flow value may be a mass flow rate 214. Finally, at block 216, the flow value is provided as an output. This output can be provided locally by a device, such as differential pressure measurement transmitter 130, or remotely, to a process controller or monitoring device via process communication, such as that set forth above.
[0020] Embodiments of the present invention provide a low-cost solution for flow measurement related to single-use containers, such as bioreactors. Devices constructed in accordance with embodiments of the present invention may be easily sterilized on site, and/or during manufacture. When such devices are sterilized during manufacture, they may be provided in sterile packaging so that an end user need not perform any sterilization prior to use. Moreover, the system may be provided having the liquid-filled impulse lines pre-filled, such that an end user need only remove a shipping cap from each line and place a membrane or flexible diaphragm of each impulse line against a respective isolation diaphragm of the differential pressure transmitter. Of course, embodiments may also be practiced where the liquid-filled impulse lines are filled on the user's site during setup.
[0021] Although the present invention has been described with reference to preferred embodiments, workers skilled in the art will recognize that changes may be made in form and detail without departing from the spirit and scope of the invention.