Optical flow cells for bioprocessing

By introducing an adjustable optical path length regulator and a detachable chamber module into the photocurrent cell, the problem of inaccurate measurement of photocurrent cells in different concentration ranges is solved, realizing rapid and accurate optical measurement, which is suitable for real-time monitoring in biological processing.

JP7834664B2Active Publication Date: 2026-03-24CYTIVA SWEDEN AB
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-06-10
Publication Date
2026-03-24

AI Technical Summary

Technical Problem

Existing optical flow cells exhibit nonlinear absorption responses when measuring in high or low concentration ranges, leading to inaccurate measurements. Furthermore, current technologies struggle to quickly adjust the optical path length to accommodate different concentration ranges.

Method used

The system employs an optical flow cell with adjustable optical path length. Through an adjustable optical path length adjuster and a movable optical path length adjuster, combined with a detachable chamber module, it achieves rapid and precise adjustment of the optical path length to meet the measurement needs of different concentration ranges.

Benefits of technology

It enables rapid and accurate optical measurements over a wide concentration range, reducing equipment complexity and cost, and is suitable for real-time monitoring in biological processing.

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Abstract

An optical flow cell (100, 300) and a method (400) for bioprocessing applications are disclosed. The optical flow cell (100, 300) includes a fluid inlet (102, 302), a fluid outlet (104, 304), and a fluid flow channel (106, 306) disposed between the fluid inlet (102, 302) and the fluid outlet (104, 304). The optical flow cell (100, 300) also includes an output light guide (108, 308) configured to emit light into the fluid flow channel (106, 306), and a collection light guide (110, 310) configured to collect light from the fluid flow channel (106, 306). An optical path length adjuster (120, 320) is also provided for varying the optical path length (130, 330) between the output optical waveguide (108, 308) and the collection optical waveguide (110, 310).
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Description

[Technical Field]

[0001] The present invention relates to an optical flow cell for bioprocessing applications. More specifically, the present invention relates to an optical flow cell for bioprocessing provided with a variable optical path length. [Background technology]

[0002] Optical measuring devices are used in various technical fields in which a fluid or fluid mixture is flowed through an optical flow cell, and the presence and / or concentration of a substance in the fluid or fluid mixture is then used.

[0003] For example, International Publication No. 2019 / 229201 describes optical flow cells suitable for use in various bioprocessing applications, such as chromatography and filtering. The contents of International Publication No. 2019 / 229201 are further incorporated herein by reference to the maximum extent permitted herein.

[0004] Fixed-path optical flow cells are designed for optimal operation to detect substances in a fluid over a given concentration range. Generally, this design operating range corresponds to an absorption region where there is a linear relationship between absorbance and the concentration of the absorbing substance, such that the amount of light passing through the fluid in the cavity of the optical flow cell adheres to the Beer-Lambert law.

[0005] However, for fluids where the concentration of the absorbent is outside the normal operating range, a nonlinear absorption response may occur, which can lead to measurement inaccuracies when using an optical flow cell. This can typically occur, for example, with high concentrations of the absorbent being analyzed. In this situation, it may be desirable to shorten the flow cell path length.

[0006] Furthermore, if the optical path length in the optical flow cell is too short, a degradation of the signal-to-noise ratio may occur at low sample concentrations. In such situations, it may be desirable to increase the path length of the flow cell.

[0007] Therefore, in order to expand the range of measurements that can be performed using optical flow cells and / or to adapt to changes in absorbance over time, various techniques have been developed to provide optical flow cells with variable optical paths or multiple alternative optical paths.

[0008] Examples of various systems with variable optical path lengths are shown, for example, in U.S. Patents 6,747,740, 6,188,474, and 7,808,641.

[0009] A system using a fixed multiplex optical path flow cell is described in U.S. Patent No. 5,214,593.

[0010] For example, one technique uses a movable optical fiber to vary the optical path length in a single optical flow cell. However, this technique is relatively slow and therefore not capable of accurate real-time measurements over a wide concentration range (which is necessary, for example, for relatively fast-flowing fluids).

[0011] An alternative method for changing the optical path length in a single optical flow cell is to change the optical path length by moving the physical boundary within the optical flow cell itself, for example, by providing an optical flow cell with an adjustable cell length. However, such optical flow cells generally cannot be adjusted quickly enough to enable optical multiplexing. Furthermore, such optical flow cells are difficult to adjust and control to provide high precision, repeatable optical path length, etc.

[0012] Performing absorbance measurements using a system with multiple optical path lengths having respective predetermined optical lengths is also a technique used to expand the dynamic range that can accurately perform absorption measurements. However, such a system requires the use of multiple flow cells and / or multiple optical fiber channels / systems. As a result, this increases the cost and complexity of such a system in proportion to the number of optical path lengths used.

Prior Art Documents

Patent Documents

[0013]

Patent Document 1

Patent Document 2

Patent Document 3

Patent Document 4

Patent Document 5

Summary of the Invention

Problems to be Solved by the Invention

[0014] Therefore, an object of the present invention is to address the above-mentioned drawbacks of known optical flow cells and / or optical flow cell systems.

Means for Solving the Problems

[0015] [[ID=第四十六]]Various aspects and embodiments of the present invention are directed to addressing the drawbacks of the known devices and systems described above.

[0016] More specifically, the present invention is defined by the appended claims.

[0017] According to a first aspect, the present invention provides an optical flow cell for bioprocessing, comprising: a fluid inlet; a fluid outlet; a fluid flow channel provided between the fluid inlet and the fluid outlet; an output optical waveguide configured to emit light into the fluid flow channel; a focusing waveguide configured to collect light from the fluid flow channel; and an optical path length adjuster for changing the optical path length in an arbitrary fluid between the output optical waveguide and the focusing waveguide.

[0018] According to a second aspect, the present invention also provides a detachable chamber module for use in an optical flow cell. The detachable chamber module comprises an internal fluid flow channel, an output optical waveguide coupler for optically connecting the fluid flow channel to an output optical waveguide, and a focusing waveguide coupler for optically connecting the fluid flow channel to a focusing waveguide. The detachable chamber module also comprises an optical path length modifier and an optical path length modifier actuator provided in the channel, the optical path length modifier actuator being operable to move the optical path length modifier within the channel.

[0019] According to a third aspect, the present invention provides a method for measuring the optical density of a substance in a fluid or fluid mixture using an optical flow cell. The method includes i) emitting light from an output optical waveguide into a fluid flow channel; ii) collecting light from the fluid flow channel using a focusing waveguide; iii) determining a first optical density of the substance based on the collection; and iv) changing the optical path length in the fluid or fluid mixture in the fluid flow channel so that the value of the first optical density is changed to a value corresponding to a second optical density that is within the linear operating range of the optical flow cell, if the determined first optical density is outside the linear operating range of the optical flow cell. [Effects of the Invention]

[0020] By providing optical path length regulators, optical path length modifiers, and / or by changing the optical path length within an optical flow cell, various aspects and embodiments of the present invention can regulate the optical path length in a fluid within an optical flow cell without the need to provide multiple separate optical waveguide channels, while simultaneously providing fast and precisely controllable changes in optical path length.

[0021] Various other advantages and benefits of the present invention and its embodiments will also become apparent from the following description and drawings. [Brief explanation of the drawing]

[0022] [Figure 1A] An optical flow cell according to one embodiment of the present invention is schematically illustrated. [Figure 1B] Figure 1A illustrates the optical path within the optical flow cell under the first operating condition. [Figure 1C] The optical path within the optical flow cell in Figure 1A under the second operating condition is illustrated. [Figure 2] Optical path length modifier components for use in optical path length modifiers of various embodiments of optical flow cells described herein are illustrated. [Figure 3A] An optical flow cell according to another embodiment of the present invention under the first operating conditions is schematically illustrated. [Figure 3B] Figure 3A illustrates the optical path within the optical flow cell under the first operating conditions. [Figure 3C] The optical flow cell in Figure 3A under the second operating condition is schematically illustrated. [Figure 3D] Figure 3C illustrates the optical path within the optical flow cell under the second operating condition. [Figure 4] The present invention describes a method for measuring the optical density of a substance in a fluid or fluid mixture using an optical flow cell, according to various embodiments of the present invention. [Modes for carrying out the invention]

[0023] Figure 1A illustrates an optical flow cell 100 according to one embodiment of the present invention. The optical flow cell 100 may be used for bioprocessing applications, for example, in the production of biopharmaceutical products using a bioreactor. For example, the optical flow cell 100 may be used for chromatography and / or filtration applications. It may be particularly suitable for use in chromatography applications where rapid changes in concentration occur, requiring real-time monitoring, for example, during the elution step.

[0024] The optical flow cell 100 includes a fluid inlet 102 and a fluid outlet 104. A fluid flow channel 106 is provided between the fluid inlet 102 and the fluid outlet 104. An output optical waveguide 108 is also provided, configured to emit light into the fluid flow channel 106. The output optical waveguide 108 may consist of an optical fiber waveguide (e.g., with a diameter of about 400 μm) configured to transmit light into the fluid flow channel 106. A focusing waveguide 110 is also provided, configured to collect light from the fluid flow channel 106. The focusing waveguide 110 may also consist of an optical fiber waveguide and may have a larger diameter (e.g., with a diameter of about 1 mm) than the one used for the output optical waveguide 108. The light used may be provided at any desired wavelength (λ), such as ultraviolet (UV), visible, or infrared wavelengths. In various embodiments, UV light is used because it is immediately absorbed by proteins produced in the bioreactor and subsequently used in the manufacture of various biopharmaceutical products. In various embodiments, multiple wavelengths may be applied simultaneously or sequentially by sweeping across different wavelength ranges. The application of different or multiple wavelengths can further expand the measurement range and provide a dataset with more detailed resolution and a wider range of analytical information.

[0025] The optical flow cell 100 includes an optical path length adjuster 120 for changing the optical path length 130 through an arbitrary fluid provided between the output optical waveguide 108 and the focusing optical waveguide 110 within the fluid flow channel 106. In this context, the optical path length is understood to mean the physical distance traveled through the fluid to be sampled by the light.

[0026] In this embodiment, the optical path length adjuster 120 includes an optical path length modifier 124 provided within the fluid flow channel 106. The path length modifier 124 is retractably mounted within the fluid flow channel 106 between the output optical waveguide 108 and the focusing waveguide 110. In various embodiments, a guide rim positioned outside the optical measurement path may also be provided to reduce friction and wear that may otherwise occur between surfaces that may rub against each other due to alignment degradation.

[0027] In the retracted position, corresponding to the first operating condition, the optical path length in the fluid is determined by the distance between the output optical waveguide 108 and the focusing waveguide 110. Once the path length modifier 124 is inserted between the output optical waveguide 108 and the focusing waveguide 110 during the second operating condition, it reduces the optical path length in any fluid flowing between them. Accordingly, the optical path length in the fluid can be controlled.

[0028] The optical path length adjuster 120 includes an actuation mechanism 122 for moving an optical path length modifier 124 within a fluid flow channel 106 between the output optical waveguide 108 and the focusing optical waveguide 110. In this case, the actuation mechanism 122 includes a piezoelectric cantilever drive mechanism to which the optical path length modifier 124 is attached. The piezoelectric cantilever drive mechanism may be housed in a detachable chamber module 126 provided with an external electrical connector. For example, by driving the piezoelectric cantilever drive mechanism using a voltage source 128 electrically coupled to the piezoelectric cantilever drive mechanism by the external electrical connector, the optical path length modifier 124 can be moved between retracted and extended positions to quickly position the optical path length modifier 124 within the fluid flow channel 106. Furthermore, such movement of the optical path length modifier 124 can also be used to provide a cleaning action therefor. In various embodiments, the piezoelectric cantilever drive mechanism may be incorporated into a chamber (e.g., of a flow cell), which advantageously does not require the provision of flexible sealing or the flow chamber wall to be located between a displaceable / movable external actuator and the optical path length modifier 124.

[0029] Other embodiments can be implemented to provide displacement of the optical path length modifier. In one embodiment, for example, the optical path length modifier may be provided with a magnetic element, thereby allowing its displacement within the flow cell by the application and modification of a magnetic field, thereby eliminating the need for mechanical operation and displacement of the path length modifier.

[0030] The detachable chamber module 126 itself includes an internal fluid flow channel. Additionally, an output optical waveguide coupler is provided for optically connecting the fluid flow channel to the output optical waveguide 108, and a focusing waveguide coupler is provided for optically connecting the fluid flow channel to the focusing waveguide 110. For bioprocessing applications, single-use components may also be advantageously provided. For example, the detachable chamber module 126 may be a sterile, single-use, disposable product and / or may include various quick-release mechanisms for aseptically connecting the optical flow cell to a bioprocessing system. Furthermore, by providing the detachable chamber module 126, interchangeable optical flow cells that can be adjusted in terms of, for example, size, flow rate, fluid mixture, etc., to suit specific applications may be provided. In conventional, non-disposable configurations and applications, the detachable chamber module instead facilitates the maintenance or replacement of any worn or damaged components if necessary.

[0031] While various embodiments described herein provide detachable chamber modules for use in optical flow cells, those skilled in the art will nevertheless recognize that many alternative embodiments are possible using various non-interchangeable components.

[0032] The present invention envisions the use of various different types of optical path length modifiers 124 for changing the optical path within a fluid sample. For example, the optical path length modifier 124 may consist of a substantially planar optical shim 124'. The use of such a substantially planar optical shim 124' is beneficial because it allows for precise control of its thickness and, therefore, the optical path and / or optical path length within the fluid sample.

[0033] Various optically transparent materials may also be used to provide optical shims such as the optical path length modifier 124, or those indicated as 124'. For example, quartz glass or plastic materials may be used. Such materials can be used to accurately manufacture the optical path length modifier 124 having a highly uniform thickness.

[0034] Figure 1B illustrates the optical path 130 within the optical flow cell 100 of Figure 1A under a first operating condition where the optical path length changer 124 is in the retracted position and is formed using the optical shim 124'. The optical path 130 has a first optical path length (P fluid0 ) within the fluid, which is maximum under the first operating condition, and corresponds to the distance (d IO ) between the output optical waveguide 108 and the condenser optical waveguide 110, and thus: P fluid0 = d IO - Equation 1

[0035] Figure 1C illustrates the optical path 130 within the optical flow cell 100 of Figure 1A under a second operating condition where the optical path length changer 124 is in the inserted position and is formed using the optical shim 124'. The optical shim 124' has a uniform thickness of t OPM . The optical path 130 has a second optical path length (P fluid1 ) within the fluid, which is minimum under the second operating condition, and corresponds to the distance (d IO ) between the output optical waveguide 108 and the condenser optical waveguide 110, excluding the path length occupied by the optical shim 124', and thus: P fluid1 = (d IO - t OPM ) - Equation 2

[0036] Therefore, when the actuating mechanism 122 is activated, the optical path length in the fluid can be switched from P fluid0 to P fluid1 , where: P fluid0 > P fluid1 - Equation 3 <o:p

[0037] Figure 2 illustrates an optical path length changer component 124'' for use in the optical path length changer 124 of various embodiments of the optical flow cell described herein. The optical path length changer component 124'' consists of a variable-thickness profile optical shim. In this example, the variable-thickness profile optical shim can be used to provide two different material thicknesses within the optical path 130 depending on the position of the variable-thickness profile optical shim between the output optical waveguide 108 and the condenser optical waveguide 110.

[0038] The optical path length changing component 124'' has a thickness t OPM1 A first substantially planar portion 202 having a thickness t OPM2 It comprises a second substantially planar portion 204 having the following: t OPM2 >t OPM1 - Formula 4

[0039] Therefore, using this embodiment of the optical path length modifier component 124'', the optical path length of the fluid in the optical flow cell 100 above is P fluid =d IO from: P fluidi =(d IO -t OPMi ) - Equation 5 This can be changed, where i corresponds to a series / set of integers, i=(1,2), thereby giving three possible settings for the optical path length for the fluid in the optical flow cell 100.

[0040] Obviously, those skilled in the art will be aware that various different optical path length modifier components may be provided, for example, having multi-thickness stepped profiles. For example, the integer i in a series / set in Equation 5 may be a sequence of 1-3, 1-4, 1-5, etc. Such optical path length modifier components may also be provided with curved / tapered profiles at the edges where thickness transitions occur, for example, to streamline the fluid flow around them. Such optical path length modifier components may be formed by using, for example, chemical etching, photolithography, additive manufacturing, etc. Additionally, optical path length modifier components, or any other components of the optical flow cell, may be provided with an anti-reflective (AR) coating to reduce any undesirable measurement artifacts caused by stray light reflection.

[0041] Other embodiments are also conceivable, for example, using an optical path length modifier component that includes a shim wheel operable to insert one or more shims of different thicknesses to sweep across two or more optical path lengths in an optical flow cell.

[0042] Figure 3A illustrates an optical flow cell 300 according to another embodiment of the present invention under the first operating conditions.

[0043] The optical flow cell 300 includes a fluid inlet 302 and a fluid outlet 304. A fluid flow channel 306 is provided between the fluid inlet 302 and the fluid outlet 304. An output optical waveguide 308 is also provided, configured to emit light into the fluid flow channel 306. The output optical waveguide 308 may consist of an optical fiber waveguide configured to transmit light into the fluid flow channel 306. A focusing waveguide 310 is also provided, configured to collect light from the fluid flow channel 306. The focusing waveguide 310 may also consist of an optical fiber waveguide and may have a larger diameter than that used for the output optical waveguide 308. The light used may be provided at any desired wavelength (λ), such as ultraviolet (UV), visible, or infrared wavelengths. In various embodiments, UV light is used because it is immediately absorbed by proteins produced in the bioreactor and subsequently used in the manufacture of various biopharmaceutical products.

[0044] The optical flow cell 300 includes an optical path length adjuster 320 for changing the optical path length 330 through an arbitrary fluid provided between the output optical waveguide 308 and the focusing optical waveguide 310 within the fluid flow channel 306.

[0045] In this embodiment, the optical path length regulator 320 includes an optical path length modifier 324 provided in a fluid flow channel 306 in the fluid chamber 326 of the optical flow cell 300. The path length modifier 324 is retractably mounted in the fluid flow channel 306 between the output optical waveguide 308 and the focusing waveguide 310. In the retracted position, corresponding to the first operating condition, the optical path length in the fluid is determined by the distance between the output optical waveguide 308 and the focusing waveguide 310 and the refractive index of the fluid between them. Once the path length modifier 324 is inserted between the output optical waveguide 308 and the focusing waveguide 310 during the second operating condition, it reduces the optical path length in any fluid flowing between them. Accordingly, the optical path length in the fluid can be controlled.

[0046] The optical path length regulator 320 also includes an actuation mechanism 322 for moving an optical path length modifier 324 within the fluid flow channel 306 between the output optical waveguide 308 and the focusing optical waveguide 310. In this case, the actuation mechanism 322 includes a rocker mechanism 340 connected to the path length modifier 324 through an elastic sealing joint 342. The elastic sealing joint 342 may be made of rubber or another elastic material, and in various embodiments, the elastic sealing joint 342 may be detachable from the optical flow cell 300. For example, thermoplastic elastomers (TPEs) such as Santoprene®, Mediprene®, etc. may be used and can be selected so that optimal performance is achieved by / after sterilization / autoclaving and / or gamma irradiation. The distal end of the rocker mechanism 340 is outside the fluid flow channel 306 and connected to a solenoid actuator 346. The solenoid actuator 346 can be electrically driven through an electrical connector 348.

[0047] The optical path length modifier 324 rests in a first retracted position when the solenoid actuator 346 is not electrically activated. Under this first operating condition, no part of the optical path length modifier 324 is located between the output optical waveguide 308 and the focusing waveguide 310.

[0048] Electrical activation of the solenoid actuator 346 causes the rocker mechanism 340 to pivot and move the optical path length modifier 324 between the output optical waveguide 308 and the focusing optical waveguide 310, thereby fulfilling the second operating condition. Subsequently, by removing the electrical activation, the optical path length modifier 324 returns to the first retracted position.

[0049] Therefore, the electrical activation of the solenoid actuator 346 can be used to quickly position the optical path length modifier 324 within the fluid flow channel 306. Moreover, such movement of the optical path length modifier 324 can also be used to provide a cleaning effect.

[0050] The present invention envisions the use of various different types of optical path length modifiers for changing the optical path within a fluid sample, such as those described above. For example, the optical path length modifier 324 may consist of a substantially planar optical shim.

[0051] In various embodiments, external actuators, such as solenoid actuator 346, may be reusable, while the flow cell, as a wetted part, may be a replaceable, single-use part. Such flow cells may be provided with connections to the fluid path, such as TC connections, barb connections, sterile connections, etc. Such flow cells may be pre-sterilized, preferably by gamma irradiation. When assembled into a fluid assembly (e.g., a complete flow kit), the entire assembly may be provided pre-sterilized.

[0052] Figure 3B illustrates the optical path 330 within the optical flow cell 300 of Figure 3A under first operating conditions. The optical path length modifier 324 may be formed using, for example, an optical shim 324' and is in a retracted position. The optical path 330 has a first optical path length (P fluid0 ) has, is maximum under the first operating condition, and the distance between the output optical waveguide 308 and the focusing optical waveguide 310 (d IO ) corresponds to this. Equation 1 is applicable to this, however distance (d IO In this example, the elements may or may not be the same as those depicted in Figure 1B.

[0053] Figure 3C illustrates the optical flow cell 300 of Figure 3A under a second operating condition. In this case, the solenoid actuator 346 is supplied with power via an electrical connector 348, so that the rocker mechanism 340 moves to position the optical path length modifier 324 between the output optical waveguide 308 and the focusing optical waveguide 310.

[0054] Figure 3D illustrates the optical path 330 within the optical flow cell 300 of Figure 3C under the second operating condition. The optical shim 324' is located at the insertion point between the output optical waveguide 308 and the focusing waveguide 310. The optical shim 324' is t OPMIt may have a uniform thickness. The optical path 330 has a second optical path length (P) in the fluid. fluid1 ) has, is minimal under the second operating condition, and the distance between the output optical waveguide 308 and the focusing optical waveguide 310 (d IO ) corresponds to but excluding the path length occupied by the optical shim 324'. Similarly, equations 2 and 3 apply, and as a result when the actuation mechanism 322 is activated, the optical path length in the fluid is P fluid0 From P fluid1 It can be switched to.

[0055] Figure 4 shows a method 400 for measuring the optical density of a substance in a fluid or fluid mixture using an optical flow cell according to various embodiments of the present invention. Method 400 may be used in conjunction with, for example, the embodiments of optical flow cells 100 and 300 described above.

[0056] Method 400 includes step 402, which involves emitting light from an output optical waveguide into a fluid flow channel. The light then travels through the optical path in any fluid or fluid mixture that is in the flow channel. Such light is then collected from the fluid flow channel using a focusing waveguide in step 404.

[0057] Based on the intensity and / or spectral components of the focused light, Method 400 subsequently determines a first optical density of the material in step 406. When the determined first optical density is outside the linear operating range of the optical flow cell, as determined in step 406, the optical path length in the fluid or fluid mixture within the fluid flow channel is changed from a value corresponding to the first optical density to a value corresponding to a second optical density that is within the linear operating range. For example, this may be achieved by using an optical path length tuner to reduce the optical path length in the fluid or fluid mixture by moving the optical path length modifier to a position between the output optical waveguide and the focusing waveguide within the fluid flow channel, as described herein.

[0058] Once a suitable value for a first or second optical density, which lies within a linear operating range, is determined, Method 400 is completed in a final step 408, where that value is used as a determined value for the optical density of a substance in a fluid or fluid mixture. Such a determined value for the optical density of a substance in a fluid or fluid mixture may therefore provide an indicator of the presence and / or concentration of the substance in the bioprocess fluid or fluid mixture flowing through a fluid flow channel.

[0059] Therefore, using method 400 in Figure 4, it is possible to provide real-time decision-making regarding the change in road length according to absorbance values ​​and linearity.

[0060] An alternative method is also conceivable in which the road length is continuously varied regardless of the measured absorbance, and then an appropriate signal is selected from the various signals obtained at different road lengths. For example, values ​​that fall within a linear measurement range may be appropriately sorted. In some applications, it may even be desirable to collect, process, and / or evaluate data obtained continuously for multiple road lengths, and therefore the continuous variation of road length described above may be preferred.

[0061] Various embodiments may also use techniques in which sweeps are performed over multiple different wavelengths. Such techniques may be combined with those involving sweeps over different path lengths. It should also be understood that there are various methods for acquiring and processing data, which may involve continuous sweeps over path lengths and / or wavelengths, or may involve making decisions about the scan profile that depend on actual measurements, which may vary over time.

[0062] Various embodiments have been described above. These may be constructed using, at least partially, polymer materials such as polypropylene, polyethylene, PEEK, Topas®, etc., for any substantially rigid parts or their sub-parts. Additionally, various embodiments may be provided with sterile fluid connections. These may be quick-release designs.

[0063] The present invention provides a fixed sample volume (e.g., a cuvette for use in a photometer), and various embodiments are envisioned in which the optical path length within the cuvette can be changed by inserting a shim element / optical path length modifier of constant or variable thickness.

[0064] Those skilled in the art will recognize that, in addition to any necessary calibrations, there may be systematic influences to consider when determining the design of the flow cell in the analysis and interpretation of measurement results. Such systematic influences may include non-ideal properties of the optical element, such as reflection, stray light, optical loss, refractive index, etc.

[0065] A further advantage of certain aspects and embodiments of the present invention is that the positioning and / or alignment accuracy of the optical path length modifier is not necessarily important, but rather the accuracy of controlling the thickness of the optical components forming the optical path length modifier determines the reduction in optical path length in the fluid.

[0066] Another advantage of various aspects and embodiments of the present invention is that it is possible to create optical flow cells that are compact and have only a small footprint and hold-up volume.

[0067] Another advantage of various aspects and embodiments of the present invention is that it is possible to create optical flow cells that are resistant to high fluid pressures. This may be particularly true when the operation of the optical path length modifier is achieved within a fixed housing, for example by using a piezoelectric cantilever mechanism or an electromagnetic actuation.

[0068] Furthermore, since only one optical fiber connection needs to be made in various embodiments, the utility can be greatly improved. This makes such embodiments particularly suitable for use in single-use devices.

[0069] Finally, it should be understood that the present invention is not limited to the embodiments described herein, but also applies to and can be incorporated by all embodiments that fall within the scope of the appended claims. [Explanation of Symbols]

[0070] 100 Optical Flow Cells 102 Fluid inlet 104 Fluid outlet 106 Fluid flow channels 108 Output optical waveguide 110 Focusing Waveguide 120 Optical path length adjuster 122 Operating mechanism 124 Optical path length modifier 124' Optical Shim 124'' Optical path length changing component 126 Detachable Chamber Module 128 Voltage Source 130 Optical path length 202 The first substantially planar portion 204 Second substantially planar portion 300 Optical Flow Cells 302 Fluid Inlet 304 Fluid outlet 306 Fluid Flow Channel 308 Output optical waveguide 310 Focusing Waveguide 320 Optical path length adjuster 322 Operating mechanism 324 Optical path length modifier 324' Optical Shim 326 Fluid Chamber 330 Optical path length 340 Rocker mechanism 342 Elastic sealing joint 346 Solenoid Actuator 348 Electrical Connectors

Claims

1. An optical flow cell for bioprocessing, used with a detachable chamber module (126, 326) which is a sterile, single-use, disposable product, Fluid inlets (102, 302) and Fluid outlets (104, 304) and A fluid flow channel (106, 306) is provided between the fluid inlet (102, 302) and the fluid outlet (104, 304), wherein the detachable chamber module (126, 326) is installed within the fluid flow channel (106, 306), and a fluid flow channel is also formed inside the detachable chamber module (126, 326) itself. Output optical waveguides (108, 308) configured to emit light into the fluid flow channel inside the detachable chamber module (126, 326), A focusing waveguide (110, 310) configured to focus light from the fluid flow channel inside the detachable chamber module (126, 326), An optical path length adjuster (120, 320) for changing the optical path length (130, 330) between the output optical waveguide (108, 308) and the focusing optical waveguide (110, 310) and Equipped with, An optical flow cell (100, 300) in which the optical path length adjusters (120, 320) are at least partially provided within the detachable chamber modules (126, 326).

2. The optical flow cell (100, 300) according to claim 1, wherein the optical path length adjusters (120, 320) comprises optical path length modifiers (124, 324) provided in the fluid flow channel.

3. The optical flow cell (100, 300) according to claim 2, wherein the optical path length adjusters (120, 320) include an operating mechanism (122, 322) for moving the optical path length modifier (124, 324) within the fluid flow channel between the output optical waveguide (108, 308) and the focusing waveguide (110, 310).

4. The optical flow cell (100) according to claim 3, wherein the operating mechanism (122) comprises a piezoelectric cantilever drive mechanism.

5. The optical flow cell (300) according to claim 3, wherein the operating mechanism (322) comprises a rocker mechanism (340) connected to the optical path length modifier (324) through an elastic sealing joint (342), and the distal end of the rocker mechanism (340) is located outside the fluid flow channel (306) and connected to a solenoid actuator (346).

6. An optical flow cell (100, 300) according to any one of claims 2 to 5, wherein the optical path length modifier (124, 324) consists of substantially planar optical shims (124', 324').

7. The optical flow cell (100, 300) according to any one of claims 2 to 5, wherein the optical path length modifier (124, 324) consists of a variable thickness profile optical shim (124'').

8. The optical flow cell (100, 300) according to any one of claims 2 to 7, wherein the optical path length modifier (124, 324) is made of quartz glass or plastic material.

9. An optical flow cell (100) according to any one of claims 1 to 8, wherein at least one of its components is sterilized.

10. A detachable chamber module (126) for use in an optical flow cell according to any one of claims 1 to 9, wherein the detachable chamber module (126) comprises an internal fluid flow channel, an output optical waveguide coupler for optically connecting the fluid flow channel to an output optical waveguide (108), and a focusing waveguide coupler for optically connecting the fluid flow channel to a focusing waveguide (110), and the detachable chamber module (126) further comprises an optical path length modifier (124) and an optical path length modifier actuator provided in the fluid flow channel, the optical path length modifier actuator being operable to move the optical path length modifier (124) within the fluid flow channel.

11. A detachable chamber module (126) according to claim 10, wherein at least one of its components is sterilized.

12. A method (400) for measuring the optical density of a substance in a fluid or fluid mixture using an optical flow cell (100, 300) together with a detachable chamber module (126, 326) which is a sterile, single-use, disposable product, i) A step (402) of emitting light from the output optical waveguide (108, 308) into a fluid flow channel formed inside the detachable chamber module (126, 326), ii) A step (404) of focusing light from the fluid flow channel using a focusing waveguide (110, 310), iii) A step (406) of determining a first optical density of the material based on the light collection, iv) If the first optical density determined is outside the linear operating range of the optical flow cell (100, 300), the step of changing the optical path length in the fluid or fluid mixture in the fluid flow channel using an optical path length adjuster (120, 320) for changing the optical path length (130, 330) between the output optical waveguide (108, 308) and the focusing waveguide (110, 310) so as to change the value of the first optical density to a value corresponding to a second optical density that is within the linear operating range; v) providing a set of data measurements by continuously changing the optical path length in the fluid or fluid mixture within the fluid flow channel, and selecting the best data measurement from the set of data measurements corresponding to the optical density, Method (400), wherein the optical path length adjusters (120, 320) are at least partially provided within the detachable chamber modules (126, 326).

13. The method according to claim 12 (400), wherein the step of changing the optical path length in the fluid or fluid mixture within the fluid flow channel includes the step of decreasing the optical path length in the fluid or fluid mixture.

14. The step of reducing the optical path length is, vi) The method according to claim 13 (400), comprising the step of moving the optical path length modifier (124, 324) to a position between the output optical waveguide (108, 308) and the focusing optical waveguide (110, 310) within the fluid flow channel.

15. vii) A step (408) using the value of the first optical density or the value corresponding to the second optical density that lies within the linear operating range as a determination value for the optical density of the substance in the fluid or fluid mixture. The method according to any one of claims 12 to 14, further comprising (400).

16. The method according to claim 15 (400), wherein the determined value for the optical density of the substance in the fluid or fluid mixture provides an indicator of the presence and / or concentration of the substance in the bioprocess fluid or fluid mixture flowing through the fluid flow channel.

17. The method according to any one of claims 12 to 14 (400), further comprising the step of sterilizing at least one component of the optical flow cell (100, 300).

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