Fluid tubing assembly for blood analyzer

The modular fluid tubing assembly for blood analyzers addresses blockages by enabling easy replacement of components, ensuring continuous operation and preventing downtime.

JP7843347B2Active Publication Date: 2026-04-09SIEMENS HEALTHCARE DIAGNOSTICS INC
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-10-17
Publication Date
2026-04-09

AI Technical Summary

Technical Problem

Blood analyzers face blockages due to blood clotting, protein accumulation, and salt crystal growth in fluid lines, leading to impaired functionality and requiring time-consuming manual intervention for component replacement.

Method used

A modular fluid tubing assembly for blood analyzers with detachable connectors and tubes, allowing easy replacement and maintenance without direct contact, ensuring uninterrupted operation.

Benefits of technology

Facilitates quick and efficient replacement of blocked components, preventing analyzer downtime and maintaining functionality by establishing seamless fluid communication between sample, sensor, and waste assemblies.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

A fluid tubing assembly and method for a blood analyzer including a base, a first tube, and a second tube. The base is connectable to the blood analyzer and has a front surface, a rear surface, a first surface, a second surface, a top surface, and a bottom surface. A first connector is supported on the first surface. A first end of the first tube is coupled to the first connector. A second connector is supported on the top surface. A second end of the first tube is coupled to the second connector. A third connector is supported on the top surface. A first end of the second tube is coupled to the third connector. A fourth connector is supported on the bottom surface. A second end of the second tube is coupled to the fourth connector.
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Description

Technical Field

[0001] This application claims the benefit of U.S. Provisional Patent Application No. 63 / 270,206, filed on October 21, 2021, under 35 U.S.C. § 119(e). The entire contents of the above patent application are hereby expressly incorporated by reference into this specification.

Background Art

[0002] Today's blood analyzers are designed to use a small amount of a patient's blood for measurement. To achieve this, the analyzer employs a fluid line with small holes to transport blood from a sampling device to a sensor and ultimately to a waste container. Due to the small size of the fluid line, it is susceptible to blockage by blood clotting, protein accumulation, and growth of salt crystals. The blockage of the fluid line impairs the function of the analyzer.

[0003] A liquid cleaning solution containing an antibacterial agent and a surfactant can be circulated through the fluid line. However, this does not completely prevent the growth of biofilms and proteins with repeated sampling. Cleaning does not necessarily remove particles such as blood clots.

[0004] As another attempt to prevent blockage, all wet components are replaced either periodically or when a blockage occurs. In this case, generally, a service technician needs to visit the site of the analyzer, which is time-consuming and causes the problem that the analyzer cannot be used.

Summary of the Invention

Problems to be Solved by the Invention

[0005] Therefore, there is a need for an improved fluid tubing assembly in which the functional members of the assembly are formed as modular units and can be quickly and easily replaced by the user when a blockage occurs. The inventive concept disclosed herein is directed to such a fluid tubing assembly. [Means for solving the problem]

[0006] The inventive concepts disclosed and claimed herein generally relate to a fluid tubing assembly for a blood analyzer having a housing that supports a fluid sample assembly, a sensor assembly, and a fluid waste assembly. The fluid tubing assembly includes: a base that can be positioned in the housing of the blood analyzer; a plurality of connectors extending from the base such that each can be detachably connected to at least one of the fluid sample assembly, the sensor assembly, and the fluid waste assembly; and a plurality of tubes extending from one of the connectors to another, respectively, to establish fluid communication from one connector to the other, wherein, when the fluid tubing assembly is positioned in the housing, fluid communication is established between the fluid sample assembly, the sensor assembly, and the fluid waste assembly through the fluid tubing assembly.

[0007] In another embodiment, the fluid tubing assembly includes a base, a first tube, a second tube, a first connector, a second connector, a third connector, and a fourth connector. The base is connectable to a blood analyzer and has a front, a rear opposite the front, a first face, a second face opposite the first face, a top face, and a bottom face opposite the top face. The first tube has a first end and a second end. The second tube has a first end and a second end. The first connector is supported on the first face of the base and defines a first fluid inlet. The first end of the first tube is connected to the first connector. The second connector is supported on the top surface of the base and defines a first fluid outlet. The second end of the first tube is connected to the second connector. The third connector is supported on the top surface of the base and defines a second fluid inlet. The first end of the second tube is connected to the third connector. The fourth connector is supported on the underside of the base and defines the second fluid outlet. The second end of the second tube is connected to the fourth connector.

[0008] To assist those skilled in the art in understanding the structure and use of the inventive concepts disclosed herein, the accompanying drawings and schematic diagrams are provided with reference, but these are not intended to be drawn to actual size, and for consistency, the same reference numerals are intended to represent the same or similar elements. For clarity, not all components are labeled in all drawings. For clarity and brevity, certain configurations and figures in the drawings are exaggerated, not to actual size, or shown schematicly. [Brief explanation of the drawing]

[0009] [Figure 1] This is a perspective view of a blood analyzer configured with a fluid tubing assembly according to the inventive concept disclosed herein. [Figure 2] Figure 1 is an exploded perspective view of a blood analyzer, showing the fluid tubing assembly removed from the blood analyzer. [Figure 3] This is a front perspective view of a fluid tubing assembly. [Figure 4] Figure 3 is an exploded perspective view of the fluid tubing assembly. [Figure 5] This is a rear-view transparent perspective of a fluid tubing assembly. [Figure 6] This is a cross-sectional view along line 6-6 in Figure 3. [Figure 7] This is a cross-sectional view along line 7-7 in Figure 3. [Figure 8] This is a cross-sectional view along line 8-8 in Figure 3. [Figure 9] This is a front perspective view of another embodiment of a fluid tubing assembly configured according to the inventive concept disclosed herein. [Figure 10] Figure 9 is a bottom view of the fluid tubing assembly. [Figure 11] Figure 9 is a front view of the CO oximetry optical cell used in the fluid tubing assembly. [Figure 12] This is a cross-sectional view along line 12-12 in Figure 11. [Modes for carrying out the invention]

[0010] Before detailing at least one embodiment of the inventive concept with illustrative drawings, experiments, results, and laboratory procedures, it is understood that the inventive concept is not limited in its application to the details of the configuration and arrangement of the components described below or in the drawings, experiments, and / or results. The inventive concept may have other embodiments and may be implemented or performed in various ways. The expressions used herein are intended to convey the broadest possible range and meaning, and the embodiments are illustrative and not exhaustive. It is also understood that the expressions and terminology used herein are for illustrative purposes only and should not be considered limiting in any way.

[0011] Unless otherwise defined, scientific and technical terms used in connection with the inventive concepts of this disclosure and the claims shall have meanings generally understood by those skilled in the art. Furthermore, unless otherwise required by context, singular terms shall include plural terms and plural terms shall include singular terms. The techniques and procedures described herein are generally well known in the art and are performed in accordance with conventional methods as described in the various general and specific references cited and discussed throughout this specification. The terminology used herein in connection with analytical chemistry, synthetic organic chemistry, and medical and pharmaceutical chemistry, as well as the laboratory procedures and techniques described herein, are well known and commonly used in the art. Standard techniques are used in chemical synthesis and chemical analysis.

[0012] All articles, compositions, and / or methods disclosed and claimed herein can be constructed and performed without undue experimentation, given this disclosure. While the articles, compositions, and methods of the inventive concept have been described in terms of preferred embodiments, it will be apparent to those skilled in the art that modifications can be applied to the articles, compositions, and / or methods, as well as the steps or sets of steps of the methods described herein, without departing from the idea, concept, and scope of the inventive concept. All such similar substitutions and modifications apparent to those skilled in the art shall be deemed to fall within the idea, scope, and concept of the inventive concept as defined by the appended claims.

[0013] In use under this disclosure, the following terms are understood to have the following meanings unless otherwise indicated:

[0014] In the claims and / or herein, the use of the words "a" or "an" in conjunction with the term "comprising" can mean "one," while also coinciding with the meanings of "one or more," "at least one," and "one or more than one."

[0015] The use of the term "or" in the claims is used to mean "and / or" unless there is an explicit indication that only the choices are available and the choices are not mutually exclusive; however, in this disclosure, the definition of "and / or" refers to choices only.

[0016] Throughout this application, the term "about" is used to indicate that the value includes inherent variations in the error of the device, the method employed in determining the value, or variations that exist between the objects under consideration.

[0017] The use of the term "at least one" is to be understood as including, in addition to 1, any quantity of 2 or more, including but not limited to 2, 3, 4, 5, 10, 15, 20, 30, 40, 50, 100, etc. The term "at least one" can be extended to 100 or more than 1000, depending on the terms associated with it. Also, the quantities of 100 / 1000 are not considered to be any limitation as satisfactory results can be obtained with higher upper limits. Further, the use of the term "at least one of X, Y, and Z" is to be understood as including only X, only Y, and only Z, as well as any combination of X, Y, and Z.

[0018] For use in this specification and the claims, the words "comprising" (and any form of "comprising" ("comprise" and "comprises", etc.)), "having" (and any form of "having" ("have" and "has", etc.)), "including" (and any form of "including" ("includes" and "include", etc.)), and "containing" (and any form of "containing" ("contains" and "contain", etc.)) are inclusive or open-ended and do not exclude additional elements or method steps not listed.

[0019] As used herein, the term "or combinations thereof" refers to all permutations and combinations of the items listed before these terms. For example, "A, B, C, or combinations thereof" is intended to include at least one of A, B, C, AB, AC, BC, or ABC, and when order is important in a particular context, it also includes BA, CA, CB, CBA, BCA, ACB, BAC, or CAB. Continuing with this example, combinations that include repetitions of one or more items or terms, such as BB, AAA, MB, BBC, AAABCCCC, CBBAAA, CABABB, etc., are explicitly included. Those skilled in the art will appreciate that, unless otherwise explicitly stated in the context, there is usually no limit to the number of items or terms in any combination.

[0020] As used herein, the terms "sample" and variations thereof are intended to include, for example, biological tissue, biological fluid, chemical fluid, chemical substance, suspension, solution, slurry, mixture, aggregate, sizing agent, lubricant, powder, other preparations of biological tissue or fluid, synthetic analogs of biological tissue or fluid, bacterial cells (prokaryotic or eukaryotic), viruses, single-cell organisms, lysed biological cells, fixed biological cells, fixed biological tissue, cell cultures, tissue cultures, genetically engineered cells and tissues, genetically engineered organisms, and combinations thereof.

[0021] In the following detailed description of embodiments of the inventive concept, many specific details are set forth for a more thorough understanding of the inventive concept. However, it will be apparent to those skilled in the art that the inventive concept within the present disclosure can be practiced without these specific details. In other instances, well-known configurations are not described in detail to avoid unnecessary complication of the present disclosure.

[0022] Finally, as used herein, any reference to “one embodiment” or “an embodiment” means that certain elements, configurations, structures, or characteristics described in relation to this embodiment are included in at least one embodiment. The appearance of the expression “in one embodiment” in various parts of this specification does not necessarily refer to the same embodiment.

[0023] Described herein and shown in the accompanying drawings are several non-limiting embodiments of the invention of the claims and disclosure, which, when used in conjunction with a collection syringe and a fluid sample analyzer, can remove gaseous bubbles such as air from a fluid sample for analysis by a fluid sample analyzer. Fluid samples generally originate from biological sources. "Fluid" refers to any substance that does not have a fixed shape and readily yields to external pressure.

[0024] Referring here to the drawings, more specifically Figures 1 and 2, these illustrate a blood analyzer 10 for analyzing one or more samples for one or more target test substances. In certain embodiments, the blood analyzer 10 is a point-of-care analyzer or blood analyzer as known in the art. Exemplary point-of-care analyzers are available from Siemens Healthcare Diagnostics, Inc. and marketed under trademarks such as RAPIDLab 1200, RapidLab 348EX, RAPIDPoint 500, RAPIDLab 248 / 348, RAPIDPoint 400 / 405, and RAPIDPoint 340 / 350 Systems. Other commercially available point-of-care devices are available from Roche Molecular Systems Inc., Medica Corp., Radiometer Medical (Denmark), and Nova Biomedical Corp.

[0025] The blood analyzer 10 comprises a housing 12 for housing and supporting multiple sample analysis components and / or modules. These components may include a sample receiving assembly 14, a fluid tubing assembly 16, a sensor assembly 18, and a reagent assembly 20. The housing 12 may also support a display screen 16 for showing the progress of the test.

[0026] The fluid sample introduced into the blood analyzer 10 may include any biological material collected from a subject (e.g., body fluids, infected tissue, or abscess collected from the subject by preferred methods and devices known in the art). Examples of body fluids include, but are not limited to, urine, whole blood, serum, plasma, saliva, cerebrospinal fluid, pleural fluid, dialysate, nasopharyngeal swabs, vaginal swabs, tears, and tissues. The sample may further include any suitable buffers, diluents, etc., that are necessary or desirable for a particular sample. In certain embodiments, the sample may include a blood sample, which may be a whole blood sample containing plasma and whole blood cells, a plasma sample, or a serum sample. In certain embodiments, the sample may include a whole blood sample. The whole blood sample may include red blood cells, platelets, etc. In other embodiments, the blood sample may include a plasma sample. To obtain a plasma sample, the sample may be treated to remove multiple whole blood cells using known methods and components such as centrifugation or commercially available porous membranes.

[0027] The sample receiving assembly 14 is applied to introduce a liquid sample from a transport container (not shown) into a sensor assembly 18 for analysis. An example of the sample receiving assembly 14 is disclosed in U.S. Patent No. 10,928,409, which is expressly incorporated herein by reference. In one example, the sample receiving assembly 14 comprises a sample probe 24 that is rotatable to a selectable position to receive fluid samples from different types of sample transport containers. Examples of sample transport containers include syringes, vacuum containers, and capillaries (not shown). Furthermore, by sealing the fluid outlet 26 of the reagent assembly 20 with the sample probe 24 oriented in standby mode (e.g., vertically), the sample receiving assembly 14 can transport fluid from the reagent assembly 20 to the sensor assembly 18.

[0028] The reagent assembly 20 holds multiple reagent fluids used in the test. The reagents can be supplied in a reservoir (not shown), such as a sealed bag or bottle. The reagent assembly 20 may include one or more reservoirs pre-filled with process liquids (QC1, QC2, QC3, CRL3 (S1940), CRL2 (S1930), RINSE / CAL1 (S1920)) having known compositions (as known to those skilled in the art). As is obvious to those skilled in the art, other chemicals can be supplied depending on the required rigorous testing.

[0029] The reagent assembly 20 may include a rubber nipple (not shown) that defines a fluid outlet 26, allowing the reagent fluid to flow from the reagent assembly 20 to the sensor assembly 18, for example, when sealed and engaged with the sample receiving assembly 14, thereby establishing fluid communication with the sensor assembly 18. The reagent assembly 20 may be integrated as part of the blood analyzer 10, or it may be configured to be removable and disposable.

[0030] The sensor assembly 18 includes a sensor (not shown) used in contact with a fluid sample. Typically, the sensor in the sensor assembly 18 includes a sensor made of a rare metal alloy (such as vanadium bronze) and functionalized with a membrane that holds the active ingredients. The sensor assembly 18 can be incorporated into the blood analyzer 10 or it can be made removable / disposable.

[0031] The sensor assembly 18 can communicate directly or indirectly with a computer unit (not shown) that can collect, store, and analyze test results from the sensor according to known methods.

[0032] After the fluid sample is delivered to the sensor assembly 18, the blood analyzer 10 can introduce fluid from the reagent assembly 20 to prepare for the introduction of subsequent fluid samples.

[0033] After analysis of the fluid sample, the fluid sample and / or used reagents are transported to a waste fluid collection component (not shown), such as a bag, pouch, or reservoir (not shown). In one embodiment, the waste fluid collection component can be incorporated as part of the reagent assembly 20.

[0034] Referring here to Figures 3 to 8, these illustrate the fluid tubing assembly 16 in more detail. The fluid tubing assembly 16 is a modular unit that provides fluid communication from the sample receiving assembly 14 to the sensor assembly 18 and from the sensor assembly 18 to the waste conduit 30 (Figure 5) which has fluid communication with the waste fluid collection member. The fluid tubing assembly 16 is configured to be located within the housing 12 of the blood analyzer 10 and extensively includes a base 32, a first tube 34, a second tube 36, a first connector 38, a second connector 40, a third connector 42, and a fourth connector 44. The fluid tubing assembly 16 is configured so that the first tube 34 and the second tube 36, which connect the various components of the blood analyzer 10, can be detached and / or replaced from the blood analyzer 10 without direct contact with the first tube 34 and the second tube 36. Furthermore, the removal of the fluid tubing assembly 16 allows for the simultaneous exchange of all fluid tubing between the sample receiving assembly 14, the sensor assembly 18, and the reagent assembly 20.

[0035] The base 32 supports other members of the fluid tubing assembly 16 so as to establish fluid pathways between its components, while allowing for easy replacement of the fluid tubing assembly 16. In a non-limiting example, the base 32 has a roughly rectangular configuration comprising a front surface 50, a rear surface 52 opposite the front surface 50, a first surface 54, a second surface 56 opposite the first surface 54, a top surface 58, and a bottom surface 60 opposite the top surface 58. The base 32 can be formed from multiple members. For example, the base 32 may comprise two main members (an internal 62 and an external 64). The internal 62 supports the fluid components of the fluid tubing assembly 16, and the external 64 functions as an external cover. Naturally, the base 32 can be formed in a variety of ways and from a variety of members. For example, the base 32 can be formed as a single piece.

[0036] Referring to Figure 5, the first surface 54 of the base 32 has a first rail 66 extending from the rear surface 52 toward the front surface 50, and the second surface 56 of the base 32 has a second rail 68 extending from the rear surface 52 toward the front surface 50. The rails 66 and 68 facilitate the insertion and removal of the fluid tubing assembly 16 into and out of the housing 12. The rails 66 and 68 may also include structures for securing the fluid tubing assembly 16 within the housing. For example, the rails 66 and 68 may include grooves 70a and 70b for receiving retaining pins (not shown) of the blood analyzer 10.

[0037] As best shown in Figure 5, the first tube 34 transports fluid from the sample receiving assembly 14 to the sensor assembly 18, and the second tube 36 transports fluid from the sensor assembly 18 to the waste conduit 30. The first tube 34 has a first end 74 and a second end 76, and the second tube 36 has a first end 78 and a second end 80. The first tube 34 and the second tube 36 can be formed from a suitable flexible polymer material. The first tube 34 and the second tube 36 can have an inner diameter in the range of about 0.020 inches to about 0.040 inches. The first tube 34 and the second tube 36 are each shown as single pieces. However, the first tube 34 and the second tube 36 may each be formed of multiple pieces, components, or sections that are connected, attached, or assembled to form fluid conduits for transporting fluid from the sample receiving assembly 14 to the sensor assembly 18 and from the sensor assembly 18 to the waste conduit 30, respectively.

[0038] The first connector 38 is fitted to the fluid outlet 82 of the sample receiving assembly 14 so as to establish fluid communication between the sample receiving assembly 14 and the first end 74 of the first tube 34, and so as to allow for rapid separation of the first connector 38 from the fluid outlet 82 of the sample receiving assembly 14.

[0039] In one embodiment, the first connector 38 extends away from the base 32 and has a nipple 84 (Figures 4-6) that can slidably fit into a fluid outlet 82 (Figure 5) of the sample receiving assembly 14. The nipple 84 has a flow path 86. The first connector 38 is supported on a first surface 54 of the base 32 and defines a first fluid inlet. The first surface 54 of the base 32 may have a slot 88 (Figure 4) configured to slidably receive the first connector 38. The first end 74 of the first tube 34 is connected to the first connector 38 and establishes fluid communication with the flow path 86 of the nipple 84. The first connector 38 may also include a sealing member 90 (Figure 6) located between the first end 74 of the first tube 34 and the nipple 84 to form a fluid seal. Naturally, the first connector 38 can be formed in any shape that allows for connection to and disconnection from the fluid outlet 82 of the sample receiving assembly 14.

[0040] The second connector 40 is fitted to the fluid inlet 92 of the sensor assembly 18 so as to establish fluid communication between the second end 76 of the first tube 34 and the fluid inlet 92 of the sensor assembly 18 (represented by arrow 92 in Figure 5), and so as to allow the second connector 40 to be quickly separated from the fluid inlet 92 of the sensor assembly 18.

[0041] In one embodiment, the second connector 40 has a nipple 94 (Figures 4, 5, and 7) that extends away from the base 32 and is slidably fitted with a fluid inlet 92 of the sensor assembly 18. The nipple 94 has a flow path 96. The second connector 40 is supported on the upper surface 58 of the base 32 and defines a first fluid outlet. The upper surface 58 of the base 32 may have a first opening 98 (Figure 4) configured to receive the second connector 40. As best shown in Figure 7, the second end 76 of the first tube 34 is connected to the second connector 40 and establishes fluid communication with the flow path 96 of the nipple 94. The second connector 40 may also include a sealing member 100 (Figure 7) positioned between the second end 76 of the first tube 34 and the nipple 94 to form a fluid seal. Naturally, the second connector 40 can be formed in any shape that allows for connection to and disconnection from the fluid inlet 92 of the sensor assembly 18.

[0042] The third connector 42 is fitted to the fluid outlet 102 of the sensor assembly 18 so as to establish fluid communication between the fluid outlet 102 of the sensor assembly 18 (indicated by arrow 102 in Figure 5) and the first end 78 of the second tube 36, and so as to allow for quick disconnection of the third connector 42 from the fluid outlet 102 of the sensor assembly 18.

[0043] In one embodiment, the third connector 42 has a nipple 104 (Figures 4, 5, and 7) that extends away from the base 32 and is slidably fitted to the fluid outlet 102 of the sensor assembly 18. The nipple 104 has a flow path 106 (Figure 7). The third connector 42 is supported on the upper surface 58 of the base 32 and defines a second fluid inlet. The upper surface 58 of the base 32 may have a second opening 108 (Figure 4) configured to receive the third connector 42. The first end 78 of the second tube 36 is connected to the third connector 42 and establishes fluid communication with the flow path 106 of the nipple 104. The third connector 42 may also include a sealing member 110 (Figure 7) located between the first end 78 of the second tube 36 and the nipple 104 to form a fluid seal. Naturally, the third connector 42 can be formed in any shape that allows for connection and disconnection of the sensor assembly 18 to and from the fluid outlet 102.

[0044] Since both the second connector 40 and the third connector 42 are interlocked with the sensor assembly 18, the arrangement of the second connector 40 and the third connector 42 in a side-by-side relationship facilitates simultaneous connection to and disconnection from the sensor assembly 18. The upper surface 58 of the base 32 may include a recess 112. The recess 112 can be mated with the male part (not shown) of the sensor assembly 18. The nipple 94 of the second connector 40 and the nipple 104 of the third connector 42 are fixed to the base 32 by a fastener 114 (Figures 4 and 7). The fastener 114 is preferably connected to the base 32 by a tab, press-fit, and / or fastener, etc., and is configured to define a recess 116 (Figures 3 and 7) that mates with and engages with the male part of the sensor assembly 18.

[0045] Referring to Figures 4, 5, and 8, the fourth connector 44 is fitted to the fluid inlet 116 of the waste conduit 30 (Figure 5) so that a fluid communication is established between the second end 80 of the second tube 36 and the fluid inlet 116 of the waste conduit 30, and the fourth connector 44 can be quickly separated from the fluid inlet 116 of the waste conduit 30.

[0046] In one embodiment, the fourth connector 44 extends away from the base 32 and has a nipple 118 that can slidably engage with the fluid inlet 116 of the waste conduit 30. The nipple 118 has a flow path 120 (Figure 8). The lower surface 60 of the base 32 has a downwardly extending arm 121 having a proximal end 122 and a distal end 124. The fourth connector 44 is supported by the arm 121 adjacent to the distal end 124. The arm 121 has a front surface 126 and a rear surface 128. The second tube 36 extends downward from the upper surface 58 of the base 32 through the arm 121 from the front surface 126 to the rear surface 128, and returns through the arm 121 from the rear surface 128 to the front surface 126.

[0047] The fourth connector 44 extends from the distal end 124 of the arm 121 and defines a second fluid outlet. The second end 80 of the second tube 36 is connected to the fourth connector 44, establishing fluid communication with the flow path 120 of the nipple 118. The fourth connector 44 may also include a sealing member 130 located between the second end 80 of the second tube 36 and the nipple 118 to form a fluid seal. Naturally, the fourth connector 44 can be formed in any shape that allows for connection to and disconnection from the fluid inlet 116 of the waste conduit 30.

[0048] The first connector 38, the second connector 40, the third connector 42, and the fourth connector 44 are each shown as separate components from the base 32. However, naturally, in the manufacturing process, any number of connectors 38 to 44 can be formed as part of the base by a suitable molding process or the like.

[0049] During use, the fluid tubing assembly 16 is inserted into the housing 12 and secured internally. The first connector 38 is connected to the fluid outlet 82 of the sample receiving assembly 14. In one embodiment, the sample receiving assembly 14 moves axially and engages with the first connector 38 manually or mechanically. The second connector 40 and the third connector 42 are connected to the fluid inlet 92 and fluid outlet 102 of the sensor assembly 18, respectively. In one embodiment, the sensor assembly 18 moves axially as a unit and engages with the second connector 40 and the third connector 42 manually or mechanically. The fourth connector 44 is connected to the fluid inlet 116 of the waste conduit 30. In one embodiment, the reagent assembly 20 moves axially as a unit and engages with the fourth connector 44 manually or mechanically. Naturally, the order of connection can be changed.

[0050] After a predetermined number of tests or when it is determined that the fluid tubing assembly 16 is blocked, the fluid tubing assembly 16 can be removed from the housing 12 as a unit by separating the first connector 38 from the fluid outlet 82 of the sample receiving assembly 14. Removal of the modular fluid tubing assembly 16 results in the separation of the tubing between the sample receiving assembly 14, the sensor assembly 18, and the waste conduit 30. In one embodiment, the sample receiving assembly 14 is removed from the housing 12 by moving it axially away from the first connector 38. The second connector 40 and the third connector 42 are separated from the fluid inlet 92 and the fluid outlet 102 of the sensor assembly 18, respectively. In one embodiment, the sensor assembly 18 is disengaged from the second and third connectors 40 and 42 by moving the sensor assembly 18 axially away from the second and third connectors 40 and 42. The fourth connector 44 is separated from the fluid inlet 116 of the waste conduit 30. In one embodiment, the reagent assembly 20 is disengaged from the fourth connector 44 by moving the reagent assembly 20 in an axial direction away from the fourth connector 44. Subsequently, the fluid tubing assembly 16 is removed from the housing 12.

[0051] Referring here to Figures 9 to 12, these illustrate another exemplary embodiment of the fluid tubing assembly 16a. The fluid tubing assembly 16a is substantially similar to the fluid tubing assembly 16, except that it comprises a CO oximetry optical cell 140. Like the fluid tubing assembly 16, the fluid tubing assembly 16a is a modular unit that provides fluid communication from the sample receiving assembly 14 to the sensor assembly 18 and fluid communication from the sensor assembly 18 to a waste conduit 30 (Figure 5) that fluidly communicates with a waste fluid collection member. The fluid tubing assembly 16a is configured to be located within the housing 12 of the blood analyzer 10 and extensively includes a base 32a, a first tube 34a, a second tube 36a, a first connector 38a, a second connector 40a, a third connector 42a, and a fourth connector 44a. The fluid tubing assembly 16 is configured such that the first tube 34a and the second tube 36a, which connect various components of the blood analyzer 10, can be detached and / or replaced from the blood analyzer 10 without direct contact with the first tube 34a and the second tube 36a. Furthermore, the removal of the fluid tubing assembly 16a allows for the simultaneous replacement of all fluid tubing between the sample receiving assembly 14, the sensor assembly 18, and the reagent assembly 20.

[0052] The base 32a supports other members of the fluid tubing assembly 16a (including the CO oximetry optical cell 140) so as to establish fluid paths between the components, while allowing for easy replacement of the fluid tubing assembly 16a. In a non-limiting example, the base 32a has a roughly rectangular configuration comprising a front surface 50a, a rear surface 52a opposite to the front surface 50a, a first surface 54a, a second surface 56a opposite to the first surface 54a, a top surface 58a, and a bottom surface 60a opposite to the top surface 58a.

[0053] In one non-limiting embodiment, the base 32a supports a CO oximetry optical cell 140. CO oximetry is a spectroscopic or optical technique used to measure the amount of various hemoglobin (Hb) species (e.g., Oxy-Hb, Deoxy-Hb, Met-Hb, Carboxy-Hb, and Total-Hb) present in a blood sample. The CO oximetry optical cell 140 may comprise a printed circuit board 142, a transducer 144, an optical cell 146, a cover 148, a first connector 150, and a second connector 152. The optical cell 146 may be formed of an upper transparent layer 154 and a lower transparent layer 156 that cooperate to form a channel 158. Since the cover 148 has an opening 160, a fluid sample flowing through the channel 158 receives a light source (not shown) which is incorporated as part of a blood analyzer 10. The first connector 150 and the second connector 152 are fluid-coupled to the channel 158, forming the inlet and outlet of the channel 158. An exemplary CO oximetry optical cell is disclosed in PCT / US2021 / 029119, which is incorporated herein by reference.

[0054] As shown in Figure 10, the CO oximetry optical cell 140 can be fluidly interposed between the third connector 42 and the fourth connector 44 in the second tube 36a. For this purpose, the second tube 36a includes the first tube section 162 and the second tube section 164. The first connector 150 of the CO oximetry optical cell 140 is applied to mate with the second end 166 of the first tube section 162. The first end 168 of the first tube section 162 is connected to the fluid outlet of the sensor assembly 18 as described above (indicated by arrow 102 in Figure 5). The second connector 152 of the CO oximetry optical cell 140 is applied to mate with the first end 170 of the second tube section 164. The second end 172 of the second tube section 164 is connected to the second end 80 of the second tube 36 by the fourth connector 44 as described above, establishing fluid communication with the flow path 120 of the nipple 118. In one embodiment, the first connector 150 and the second connector 152 of the CO oximetry optical cell 140 are in the form of nipples (Figures 11 and 12).

[0055] In another embodiment, the CO oximetry optical cell 140 can be fluidly interposed between the first connector 38 and the second connector 40 in the first tube 34a. In this case, the first tube 34a can be formed in one or more sections.

[0056] As described above with respect to the fluid tubing assembly 16, when in use, the fluid tubing assembly 16a is inserted into the housing 12 and fixed inside. After a predetermined number of tests or when it is determined that the fluid tubing assembly 16a is blocked, the fluid tubing assembly 16a can be removed from the housing 12 as a unit, as described above with respect to the fluid tubing assembly 16.

[0057] From the above description, it is clear that the inventive concept disclosed herein is adequately applied to achieve its purpose and to obtain the advantages described herein as well as advantages specific to the inventive concept disclosed herein. For the purposes of this disclosure, exemplary embodiments of the inventive concept disclosed herein have been described, but it will be understood that many modifications can be made that are readily conceivable to those skilled in the art and that can be achieved without departing from the scope of the specified inventive concept in the claims disclosed herein and appended herein.

[0058] The following is a list of non-limiting exemplary embodiments of the inventive concept disclosed herein.

[0059] An exemplary fluid tubing assembly for a blood analyzer having a housing that supports a fluid sample assembly, a sensor assembly, and a fluid waste assembly, wherein: A base that can be placed inside the housing of a blood analyzer; Multiple connectors extending from the base so as to be detachably connected to at least one of the fluid sample assembly, sensor assembly, and fluid waste assembly; Multiple tubes extending from one connector to another, respectively, to establish fluid communication from one connector to the other; Includes, A fluid tubing assembly, located within a housing, establishes fluid communication between a fluid sample assembly, a sensor assembly, and a fluid waste assembly through the fluid tubing assembly.

[0060] An exemplary fluid tubing assembly according to any one of the preceding exemplary embodiments, further comprising a CO oximetry optical cell having a fluidly interposed channel between at least two of the connectors.

[0061] An exemplary fluid tubing assembly for a blood analyzer, which includes: A base that can be connected to a blood analyzer and has a front, a rear opposite the front, a first surface, a second surface opposite the first surface, a top surface, and a bottom surface opposite the top surface; A first tube having a first end and a second end; A second tube having a first end and a second end; Supported on a first surface of the base, defining a first fluid inlet, and connected to a first connector to which the first end of the first tube is connected; Supported on the upper surface of the base, defining a first fluid outlet, and connected to a second connector to which the second end of the first tube is connected; Supported on the upper surface of the base, defining a second fluid inlet, and connected to a third connector to which the first end of the second tube is connected; Supported on the underside of the base, defining a second fluid outlet, and connected to a fourth connector with the second end of the second tube; A fluid tubing assembly, including a fluid tubing assembly.

[0062] The first connector is an exemplary fluid tubing assembly as described in any one of the preceding exemplary embodiments, having a nipple extending away from the base.

[0063] The second connector is an exemplary fluid tubing assembly as described in any one of the preceding exemplary embodiments, having a nipple extending away from the base.

[0064] The third connector is an exemplary fluid tubing assembly as described in any one of the preceding exemplary embodiments, having a nipple extending away from the base.

[0065] The fourth connector is an exemplary fluid tubing assembly as described in any one of the preceding exemplary embodiments, having a nipple extending away from the base.

[0066] An exemplary fluid tubing assembly according to any one of the preceding exemplary embodiments, wherein the first connector, second connector, third connector, and fourth connector each have nipples extending away from the base.

[0067] An exemplary fluid tubing assembly according to any one of the preceding exemplary embodiments, wherein the upper surface of the base has a recess, and the second and third connectors are located within the recess.

[0068] The fluid tubing assembly according to any one of the preceding exemplary embodiments, wherein the second and third connectors each have nipples extending away from the base.

[0069] An exemplary fluid tubing assembly according to any one of the preceding exemplary embodiments, wherein the lower surface of the base has a downwardly extending arm having a proximal end and a distal end, and a fourth connector is supported on the arm adjacent to the distal end.

[0070] The fourth connector is an exemplary fluid tubing assembly as described in any one of the preceding exemplary embodiments, having a nipple extending away from the arm.

[0071] An exemplary fluid tubing assembly as described in any one of the preceding exemplary embodiments, wherein the arm has a front and a rear surface, and the second tube extends downward from the top surface of the base through the arm from the front to the rear surface and returns through the arm from the rear surface to the front surface.

[0072] An exemplary fluid tubing assembly according to any one of the preceding exemplary embodiments, wherein the first surface of the base has a first rail extending from the rear to the front, and the second surface of the base has a second rail extending from the rear to the front.

[0073] An exemplary fluid tubing assembly according to any one of the preceding exemplary embodiments, further comprising a CO oximetry optical cell having a channel fluidically interposed between at least two of the first, second, third, and fourth connectors.

[0074] An exemplary fluid tubing assembly according to any one of the preceding exemplary embodiments, further comprising a CO oximetry optical cell having a channel fluidically interposed between a third connector and a fourth connector.

[0075] An example of a blood analyzer, Housing and; A sensor assembly located within the housing, having a fluid inlet and a fluid outlet; A reagent assembly with a fluid outlet; A sample receiving assembly having a fluid inlet and a fluid outlet, and a movable sample probe between a first position that is in fluid communication with the fluid outlet of the reagent assembly and a second position that can be connected to a sample transport container; A base located within the housing, having a front surface, a rear surface opposite the front surface, a first surface, a second surface opposite the first surface, a top surface, and a bottom surface opposite the top surface; A first tube having a first end and a second end; A second tube having a first end and a second end; Supported on the first surface of the base, defining a first fluid inlet, with a first connector to which the first end of the first tube is connected and which is connected to the fluid outlet of the sample receiving assembly; Supported on the upper surface of the base, defining a first fluid outlet, with a second connector to which the second end of the first tube is connected and which is connected to the fluid inlet of the sensor assembly; Supported on the upper surface of the base, defining a second fluid inlet, with a third connector to which the first end of the second tube is connected and which is connected to the fluid outlet of the sensor assembly; Supported on the underside of the base, defining a second fluid outlet, the second end of the second tube is connected to a fourth connector which is connected to a waste conduit; A fluid tubing assembly including; An example blood analyzer, including one shown.

[0076] An exemplary blood analyzer according to any one of the preceding exemplary embodiments, comprising a fluid tubing assembly, a CO oximetry optical cell having channels that fluidly communicate with a sensor assembly, a fluid waste assembly, and a sample receiving assembly.

[0077] The first connector is an exemplary blood analyzer according to any one of the preceding exemplary embodiments, having a nipple extending away from the base.

[0078] The second connector is an exemplary blood analyzer according to any one of the preceding exemplary embodiments, having a nipple extending away from the base.

[0079] The third connector is an exemplary blood analyzer according to any one of the preceding exemplary embodiments, having a nipple extending away from the base.

[0080] The fourth connector is an exemplary blood analyzer as described in any one of the preceding exemplary embodiments, having a nipple extending away from the base.

[0081] An exemplary blood analyzer according to any one of the preceding exemplary embodiments, wherein the first connector, second connector, third connector, and fourth connector each have a nipple extending away from the base.

[0082] An exemplary blood analyzer according to any one of the preceding exemplary embodiments, wherein the upper surface of the base has a recess, and the second and third connectors are located within the recess.

[0083] A blood analyzer according to any one of the preceding exemplary embodiments, wherein the second connector and the third connector each have nipples extending away from the base.

[0084] An exemplary blood analyzer according to any one of the preceding exemplary embodiments, wherein the lower surface of the base has a downwardly extending arm having a proximal end and a distal end, and a fourth connector is supported on the arm adjacent to the distal end.

[0085] The fourth connector is an exemplary blood analyzer according to any one of the preceding exemplary embodiments, having a nipple extending away from the arm.

[0086] An exemplary blood analyzer according to any one of the preceding exemplary embodiments, wherein the arm has a front and a rear surface, and a second tube extends downward from the top surface of the base through the arm from the front to the rear surface and returns through the arm from the rear surface to the front surface.

[0087] An exemplary blood analyzer according to any one of the preceding exemplary embodiments, wherein the first surface of the base has a first rail extending from the rear to the front, and the second surface of the base has a second rail extending from the rear to the front.

[0088] An exemplary method for providing a fluid passage in a blood analyzer having a housing, a sample receiving assembly, a sensor assembly, and a fluid waste assembly: The process includes obtaining a fluid tubing assembly for a blood analyzer, the fluid tubing assembly being: A base that can be connected to a blood analyzer and has a front, a rear opposite the front, a first surface, a second surface opposite the first surface, a top surface, and a bottom surface opposite the top surface; A first tube having a first end and a second end; A second tube having a first end and a second end; Supported on a first surface of the base, defining a first fluid inlet, and connected to a first connector to which the first end of the first tube is connected; Supported on the upper surface of the base, defining a first fluid outlet, and connected to a second connector to which the second end of the first tube is connected; Supported on the upper surface of the base, defining a second fluid inlet, and connected to a third connector to which the first end of the second tube is connected; Supported on the underside of the base, defining a second fluid outlet, and connected to a fourth connector with the second end of the second tube; Includes; The method is further, The process of placing the fluid tubing assembly inside the housing; The first step is to connect the connector to the fluid supply assembly; The process involves connecting the second connector and the third connector to the sensor assembly; The process involves connecting the fourth connector to the fluid waste assembly; Methods that include...

[0089] The fluid tubing assembly is the first fluid tubing assembly, The method is; The process of separating the first connector from the fluid supply assembly; The process of separating the second and third connectors from the sensor assembly; The process of separating the fourth connector from the fluid waste assembly; The process of removing the first fluid tubing assembly from the housing; A step of obtaining a second fluid tubing assembly having a configuration similar to that of the first fluid tubing assembly; The process involves placing a second fluid tubing assembly into the housing; The process involves connecting a second fluid tubing assembly to a fluid supply assembly, a sensor assembly, and a fluid waste assembly; An exemplary method as described in any one of the preceding exemplary embodiments, further including the above.

Claims

1. A fluid tubing assembly for a blood analyzer having a housing that supports a fluid sample assembly, a sensor assembly, a fluid waste assembly, and a fluid tubing assembly, the following: A base that can be placed inside the housing of a blood analyzer; Multiple connectors extending from a base so as to be detachably connected to at least one of the fluid sample assembly, sensor assembly, and fluid waste assembly; Multiple tubes extending from one connector to another, respectively, to establish fluid communication from one connector to the other; Includes, If the fluid tubing assembly is located within the housing, fluid communication is established between the fluid sample assembly, the sensor assembly, and the fluid waste assembly through the fluid tubing assembly. The base has a front surface, a rear surface opposite the front surface, a first surface, a second surface opposite the first surface, a top surface, and a bottom surface opposite the top surface. The plurality of tubes include a first tube having a first end and a second end, and a second tube having a first end and a second end, Multiple connectors: Supported on a first surface of the base, defining a first fluid inlet, and connected to a first connector to which the first end of the first tube is connected; Supported on the upper surface of the base, defining a first fluid outlet, and a second connector to which the second end of the first tube is connected; Supported on the upper surface of the base, defining a second fluid inlet, and connected to a third connector to which the first end of the second tube is connected; Supported on the underside of the base, defining a second fluid outlet, and connected to a fourth connector to which the second end of the second tube is connected; Includes, The lower surface of the base has downward-extending arms with proximal and distal ends. The fourth connector is the fluid tubing assembly, supported by an arm adjacent to its distal end.

2. The fluid tubing assembly according to claim 1, further comprising a CO oximetry optical cell having a channel fluidly interposed between at least two of the connectors.

3. The fluid tubing assembly according to claim 1, wherein the first connector has a nipple extending away from the base.

4. The fluid tubing assembly according to claim 1, wherein the second connector has a nipple extending away from the base.

5. The fluid tubing assembly according to claim 1, wherein the third connector has a nipple extending away from the base.

6. The fluid tubing assembly according to claim 1, wherein the fourth connector has a nipple extending away from the base.

7. The fluid tubing assembly according to claim 1, wherein the first connector, the second connector, the third connector, and the fourth connector each have a nipple extending away from the base.

8. The top surface of the base has a recess, The fluid tubing assembly according to claim 1, wherein the second and third connectors are located within recesses.

9. The fluid tubing assembly according to claim 8, wherein the second connector and the third connector each have nipples extending away from the base.

10. The fluid tubing assembly according to claim 1, wherein the fourth connector has a nipple extending away from the arm.

11. The arm has a front and a rear section. The fluid tubing assembly according to claim 1, wherein the second tube extends downward from the top surface of the base through an arm from the front to the rear and returns through the arm from the rear to the front.

12. The first surface of the base has a first rail extending from the rear to the front, The fluid tubing assembly according to claim 1, wherein the second surface of the base has a second rail extending from the rear surface toward the front surface.

13. The fluid tubing assembly according to claim 1, further comprising a CO oximetry optical cell having channels fluidly interposed between at least two of the first connector, the second connector, the third connector, and the fourth connector.

14. The fluid tubing assembly according to claim 1, further comprising a CO oximetry optical cell having a channel fluidly interposed between a third connector and a fourth connector.

15. It is a blood analyzer: A sensor assembly having a fluid inlet and a fluid outlet; Fluid waste assembly and; A sample receiving assembly having a sample probe equipped with a fluid inlet and a fluid outlet; A fluid tubing assembly is detachably connected to the sensor assembly, fluid waste assembly, and sample receiving assembly so as to establish fluid communication between the sensor assembly, fluid waste assembly, and sample receiving assembly; Includes housing that supports The fluid tubing assembly is: A base having a front surface, a rear surface opposite the front surface, a first surface, a second surface opposite the first surface, a top surface, and a bottom surface opposite the top surface; A first tube having a first end and a second end; A second tube having a first end and a second end; A first connector supported on a first surface of the base, defining a first fluid inlet, to which the first end of the first tube is connected, and which is connected to the fluid outlet of the sample receiving assembly; Supported on the upper surface of the base, defining a first fluid outlet, with a second connector to which the second end of the first tube is connected and which is connected to the fluid inlet of the sensor assembly; Supported on the upper surface of the base, defining a second fluid inlet, with a third connector to which the first end of the second tube is connected and which is connected to the fluid outlet of the sensor assembly; Supported on the underside of the base, defining a second fluid outlet, with a fourth connector to which the second end of the second tube is connected and which is connected to a waste conduit; Includes, The lower surface of the base has downward-extending arms with proximal and distal ends. The fourth connector is supported by an arm adjacent to the distal end of the blood analyzer.

16. The blood analyzer according to claim 15, wherein the sample probe is movable between a first position in which the sample probe is in fluid communication with the fluid outlet of the reagent assembly and a second position in which the sample probe can be connected to a sample transport container.

17. The blood analyzer according to claim 15, wherein the fluid tubing assembly includes a CO oximetry optical cell having channels that fluidly communicate with a sensor assembly, a fluid waste assembly, and a sample receiving assembly.

18. The blood analyzer according to claim 15, wherein the fluid tubing assembly includes a CO oximetry optical cell having channels fluidly interposed between at least two of the first connector, the second connector, the third connector, and the fourth connector.

19. The blood analyzer according to claim 15, further comprising a CO oximetry optical cell having a fluid-interposed channel between a third connector and a fourth connector, the fluid tubing assembly.

20. The blood analyzer according to claim 15, wherein the first connector has a nipple extending away from the base.

21. The blood analyzer according to claim 15, wherein the second connector has a nipple extending away from the base.

22. The blood analyzer according to claim 15, wherein the third connector has a nipple extending away from the base.

23. The blood analyzer according to claim 15, wherein the fourth connector has a nipple extending away from the base.

24. The blood analyzer according to claim 15, wherein the first connector, the second connector, the third connector, and the fourth connector each have a nipple extending away from the base.

25. The top surface of the base has a recess, The blood analyzer according to claim 15, wherein the second and third connectors are located within recesses.

26. The blood analyzer according to claim 25, wherein the second connector and the third connector each have nipples extending away from the base.

27. The blood analyzer according to claim 15, wherein the fourth connector has a nipple extending away from the arm.

28. The arm has a front and a rear section. The blood analyzer according to claim 15, wherein the second tube extends downward from the top surface of the base through an arm from the front to the rear and returns through the arm from the rear to the front.

29. The first surface of the base has a first rail extending from the rear to the front, The blood analyzer according to claim 15, wherein the second surface of the base has a second rail extending from the rear surface toward the front surface.

30. A method for providing a fluid passage in a blood analyzer having a housing, a sample receiving assembly, a sensor assembly, and a fluid waste assembly: The process includes obtaining a fluid tubing assembly for a blood analyzer, the fluid tubing assembly being: A base that can be connected to a blood analyzer and has a front, a rear opposite the front, a first surface, a second surface opposite the first surface, a top surface, and a bottom surface opposite the top surface; A first tube having a first end and a second end; A second tube having a first end and a second end; Supported on a first surface of the base, defining a first fluid inlet, and connected to a first connector to which the first end of the first tube is connected; Supported on the upper surface of the base, defining a first fluid outlet, and a second connector to which the second end of the first tube is connected; Supported on the upper surface of the base, defining a second fluid inlet, and connected to a third connector to which the first end of the second tube is connected; Supported on the underside of the base, defining a second fluid outlet, and connected to a fourth connector to which the second end of the second tube is connected; The base includes a downward-extending arm having a proximal end and a distal end, The fourth connector is supported by an arm adjacent to its distal end; The method further, The process of placing the fluid tubing assembly into the housing; The first step is to connect the connector to the fluid supply assembly; The steps include: connecting the second connector and the third connector to the sensor assembly; The process involves connecting the fourth connector to the fluid waste assembly; The method, including the method described above.

31. The fluid tubing assembly is the first fluid tubing assembly, The method is: The steps include: separating the first connector from the fluid supply assembly; The process of separating the second and third connectors from the sensor assembly; The process of separating the fourth connector from the fluid waste assembly; The process of removing the first fluid tubing assembly from the housing; A step of obtaining a second fluid tubing assembly having a configuration similar to that of the first fluid tubing assembly; The process involves placing a second fluid tubing assembly into the housing; The process involves connecting a second fluid tubing assembly to a fluid supply assembly, a sensor assembly, and a fluid waste assembly; The method according to claim 30, further comprising:

Citation Information

Patent Citations

  • Systems and methods for processing chemicals, computer programs for controlling such systems, and computer readable storage media

    JP2009501138A

  • Automatic fluid processing system

    JP2012529650A

  • Integrated modular unit including an analyte concentrator-microreactor device connected to a cartridge-cassette

    US20120285832A1

  • Integrated modular unit including an analyte concentrator microreactor device connected to a cartridge-cassette

    US20150093304A1

  • Integral fluid and waste container for blood analyzer

    US5885533A