Apparatus for the adhesion flow of blood
The device addresses the issue of blood accumulation on the skin surface by using flow-directing attachments and capillary action to guide blood into the collection container, ensuring efficient blood transfer.
Patent Information
- Application Number
- JP2025003692
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2016-08-24
- Filing Date
- 2025-01-09
- Publication Date
- 2025-12-26
- Estimated Expiration
- 2037-08-23
AI Technical Summary
Existing blood collection devices fail to effectively control and direct blood flow from the collection site to the collection container, leading to blood accumulation on the skin surface and inefficient transfer.
A device with a housing and collection container that utilizes flow-directing attachments and capillary action to guide blood from the skin surface through a flow channel and into the collection cavity, ensuring adherent blood flow.
The device ensures controlled and efficient transfer of blood from the collection site to the container by using flow-directing attachments and capillary action, minimizing surface accumulation and enhancing collection efficiency.
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Abstract
Description
[Technical Field]
[0001] FIELD OF THE DISCLOSURE The present disclosure relates generally to devices adapted for use with biological fluids. More particularly, the present disclosure relates to devices for controlling blood flow. [Background technology]
[0002] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims priority to U.S. Provisional Patent Application No. 62 / 378,971, filed August 24, 2016, entitled "Finger-Based Capillary Blood Collection Device," the disclosure of which is incorporated herein by reference in its entirety.
[0003] Blood sampling is a common healthcare procedure that involves withdrawing at least a drop of blood from a patient. Blood samples are typically collected from hospitalized, home health, and emergency room patients via fingertip, heel prick, or venipuncture. After collection, blood samples can be analyzed to obtain medically useful information, including, for example, chemical composition, hematology, or coagulation. Blood tests determine a patient's physiological and biochemical status, such as disease, mineral content, drug effectiveness, and organ function. Blood tests can be performed in a clinical laboratory or at the point of care near the patient.
[0004] Lancet devices are used in the medical field to puncture a patient's skin to obtain small samples of capillary blood from the patient. Certain diseases, such as diabetes, require that a patient's blood be tested periodically to monitor the patient's blood glucose levels, for example. Additionally, test kits, such as cholesterol test kits, often require small blood samples for analysis. Blood collection procedures typically involve pricking a finger or other suitable body part to obtain the blood sample. Typically, the amount of blood required for such tests is relatively small, and typically only a small puncture wound or incision provides a sufficient blood volume for these tests.
[0005] When the lancet device is used to puncture the patient's skin, blood spreads and collects on the surface of the finger. Summary of the Invention [Problem to be solved by the invention]
[0006] The present disclosure provides a collection device that directs blood flow within a reservoir, providing a controlled blood flow path that ensures blood flow from the collection site to the collection reservoir. [Means for solving the problem]
[0007] The disclosed device for adherent flow of blood achieves this by controlling the flow of blood in a desired manner using three key technical elements. First, the blood sample is controlled and guided from the patient's skin surface through a first flow-directing attachment to the collection housing. Second, the blood sample is controlled and guided from the first end of the collection housing to the second end of the collection housing by capillary transport. Third, the blood sample is controlled and guided from the second end of the collection housing through a second flow-directing attachment into the collection cavity of the collection container. With the first end of the housing in communication with the blood source, the first flow-directing attachment, the flow channel, the second flow-directing attachment, and the interior wall surface of the container provide attachments to establish an adherent blood flow for the initial droplet of blood and subsequent blood to follow from the first end of the housing to the collection cavity of the container.
[0008] According to an embodiment of the present invention, an apparatus for adherent flow of blood comprises a housing defining a centerline and having a first end, a second end, and a flow channel having an inlet and an outlet, a portion of the flow channel being offset from the centerline of the housing, the flow channel having a first flow-directing adherent portion adjacent the inlet and a second flow-directing adherent portion adjacent the outlet; and a container removably connectable to the housing, the container defining a collection cavity and having an inner wall, wherein when the container is connected to the housing, the outlet of the flow channel is in fluid communication with the collection cavity of the container and the outlet of the flow channel is adjacent the inner wall of the container.
[0009] In one configuration, the first flow directing attachment provides a first fluid attachment point for blood to attach to control the flow of blood from the skin surface to the portion of the housing. In another configuration, the second flow directing attachment provides a second fluid attachment point for blood to attach to control the flow of blood from the portion of the housing to the collection cavity of the container. In yet another configuration, with the first end of the housing in communication with a blood source, the first flow directing attachment, the flow channel, the second flow directing attachment, and the interior wall of the container provide attachment points to establish an attached blood flow for initial droplets of blood and subsequent blood to follow from the first end of the housing to the collection cavity of the container. In one configuration, with the inlet of the flow channel in communication with the blood source, blood attaches to the first flow directing attachment as it flows and flows from the first flow directing attachment to the flow channel. In another configuration, the blood is then drawn by capillary action through the flow channel to the second flow directing attachment. In yet another configuration, blood flows from the flow channel into the collection cavity of the container by flowingly attaching to the second flow directing attachment and the interior wall of the container. In one configuration, the first end of the housing includes a sloped wall, the first flow directing attachment extending from the sloped wall, the sloped wall defining the flow channel inlet. In another configuration, the first flow directing attachment is an attachment post. In yet another configuration, the first flow directing attachment comprises a plurality of attachment posts. In one configuration, the second flow directing attachment is an attachment lip. In another configuration, the second flow directing attachment is an extended capillary portion. In yet another configuration, the second flow directing attachment is an inwardly curved lip. In one configuration, the second flow directing attachment is a flat cut lip. In another configuration, the second flow directing attachment is an extended post structure. In yet another configuration, the flow channel outlet extends beyond the second end of the housing.
[0010] According to another embodiment of the present invention, an apparatus for adherent flow of blood includes a housing defining a centerline and having a first end, a second end, a hollow needle, and a flow channel having an inlet and an outlet, a portion of the flow channel being offset from the centerline of the housing, the flow channel having a flow-directing adherent portion adjacent the outlet, the hollow needle being between the first end of the housing and the flow channel; and a container removably connectable to the housing, the container defining a collection cavity and having an inner wall, wherein when the container is connected to the housing, the outlet of the flow channel is in fluid communication with the collection cavity of the container and the outlet of the flow channel is adjacent the inner wall of the container.
[0011] In one configuration, the flow-directing attachment provides a fluid attachment point for blood to adhere to control the flow of blood from a portion of the housing to the collection cavity of the container. In another configuration, with the first end of the housing in communication with a blood source, the hollow needle, the flow channel, the flow-directing attachment, and the interior wall of the container provide an attachment to establish an attached blood flow for the first droplet of blood and subsequent blood to follow from the first end of the housing to the collection cavity of the container. In yet another configuration, with the inlet of the flow channel in communication with the blood source, blood flow-attaches to a portion of the hollow needle and flows through the hollow needle into the flow channel. In one configuration, the blood is then drawn by capillary action through the flow channel to the flow-directing attachment. In another configuration, the blood flow-attaches to the flow-directing attachment and the interior wall of the container and flows from the flow channel into the collection cavity of the container. In yet another configuration, the housing includes a sloped wall between the hollow needle and the flow channel, the sloped wall defining the flow channel inlet. In one configuration, the flow directing attachment is an attachment lip. In another configuration, the flow directing attachment is an extended capillary portion. In yet another configuration, the flow directing attachment is an inwardly curved lip. In one configuration, the flow directing attachment is a flat cutting lip. In another configuration, the flow directing attachment is an extended post structure. In yet another configuration, the flow channel outlet extends beyond the second end of the housing. In one configuration, the device further includes a flow directing ring around the hollow needle. In another configuration, the hollow needle includes a lancing blade. In yet another configuration, with the first end of the housing in communication with the blood source, an initial droplet of blood adheres to the lancing blade and flows through the hollow needle into the flow channel. [Brief explanation of the drawings]
[0012] The above-mentioned and other features and advantages of the present disclosure, and the methods attendant thereto, will become more apparent, and the disclosure itself will be better understood, by reference to the following description of embodiments of the present disclosure in conjunction with the accompanying drawings.
[0013] [Figure 1] 1 is a cross-sectional view of an apparatus for adherent flow of blood, according to an embodiment of the present invention. [Figure 2] 2 is a diagram of the device of FIG. 1 with a finger engaged, in accordance with an embodiment of the present invention. [Figure 3] FIG. 1 is a perspective view of a first flow-directing adhesive portion of an apparatus for adhesive flow of blood, according to an embodiment of the present invention. [Figure 4] FIG. 10 is a perspective view of a first flow-directing adhesive portion of an apparatus for adhesive flow of blood according to another embodiment of the present invention. [Figure 5] FIG. 10 is a perspective view of a first flow-directing adhesive portion of an apparatus for adhesive flow of blood according to another embodiment of the present invention. [Figure 6] FIG. 10 is a perspective view of a first flow-directing adhesive portion of an apparatus for adhesive flow of blood according to another embodiment of the present invention. [Figure 7A] FIG. 10 is a perspective view of a second flow-directing adhesive portion of an apparatus for adhesive flow of blood, according to an embodiment of the present invention. [Figure 7B] 1 is a perspective view of an attached flow of blood and a second flow directing attachment portion and an interior wall of a container according to an embodiment of the present invention. FIG. [Figure 8A] FIG. 10 is a perspective view of a second flow-directing adhesive portion of an apparatus for adhesive flow of blood according to another embodiment of the present invention. [Figure 8B] FIG. 10 is a perspective view of an attached flow of blood and a second flow directing attachment portion and an interior wall of a container according to another embodiment of the present invention. [Figure 9A] FIG. 10 is a perspective view of a second flow-directing adhesive portion of an apparatus for adhesive flow of blood according to another embodiment of the present invention. [Figure 9B] FIG. 10 is a perspective view of an attached flow of blood and a second flow directing attachment portion and an interior wall of a container according to another embodiment of the present invention. [Figure 10A] FIG. 10 is a perspective view of a second flow-directing adhesive portion of an apparatus for adhesive flow of blood according to another embodiment of the present invention. [Figure 10B]FIG. 10 is a perspective view of an attached flow of blood and a second flow directing attachment portion and an interior wall of a container according to another embodiment of the present invention. [Figure 11] FIG. 10 is a cross-sectional view of an apparatus for adherent flow of blood according to another embodiment of the present invention. [Figure 12] 12 is an enlarged view of an open-cell foam material taken along section 12 of FIG. 11 according to another embodiment of the present invention. [Figure 13] FIG. 1 is a perspective view of a container having a sample stabilizer according to an embodiment of the present invention. [Figure 14] FIG. 10 is a perspective view of a container having a sample stabilizer according to another embodiment of the present invention. [Figure 15] FIG. 10 is a perspective view of a container having a sample stabilizer according to another embodiment of the present invention. [Figure 16] FIG. 10 is a perspective view of a container having a sample stabilizer according to another embodiment of the present invention. [Figure 17] FIG. 10 is a cross-sectional view of a finger-engaged device for adherent flow of blood according to another embodiment of the present invention. [Figure 18] FIG. 1 is a perspective view of a hollow needle of a device for adherent flow of blood, according to an embodiment of the present invention. [Figure 19] FIG. 10 is a perspective view of a hollow needle of a device for adherent flow of blood, according to another embodiment of the present invention. [Figure 20] FIG. 10 is a perspective view of a hollow needle of a device for adherent flow of blood, according to another embodiment of the present invention. [Figure 21] FIG. 10 is a perspective view of a hollow needle of a device for adherent flow of blood, according to another embodiment of the present invention. [Figure 22] FIG. 10 is a perspective view of a hollow needle of a device for adherent flow of blood, according to another embodiment of the present invention. [Figure 23] FIG. 10 is a perspective view of a hollow needle of a device for adherent flow of blood, according to another embodiment of the present invention. [Figure 24] FIG. 10 is a perspective view of a hollow needle of a device for adherent flow of blood, according to another embodiment of the present invention. [Figure 25A]1 is a perspective view of a container of a device for adherent flow of blood, the container being coupled to a housing, according to an embodiment of the present invention. FIG. [Figure 25B] 1 is a perspective view of a container of a device for adherent flow of blood, the container being detached from a housing and in a first position, according to an embodiment of the present invention. FIG. [Figure 25C] 1 is a perspective view of a container of a device for adherent flow of blood, the container being removed from a housing and in a second position, according to an embodiment of the present invention. FIG. [Figure 26A] FIG. 10 is a perspective view of a container of a device for adherent flow of blood, the container being coupled to a housing, according to another embodiment of the present invention. [Figure 26B] FIG. 10 is a perspective view of a container of a device for adherent flow of blood, with the container removed from the housing, according to another embodiment of the present invention. [Figure 27A] FIG. 10 is a perspective view of a container of a device for adherent flow of blood, the container being coupled to a housing, according to another embodiment of the present invention. [Figure 27B] 1 is a perspective view of a container of a device for adherent flow of blood according to another embodiment of the present invention, the container being removed from the housing and in a first position. FIG. [Figure 27C] 1 is a perspective view of a container of a device for adherent flow of blood according to another embodiment of the present invention, the container being removed from the housing and in a second position. FIG. [Figure 28A] FIG. 10 is a perspective view of a container of a device for adherent flow of blood, the container being coupled to a housing, according to another embodiment of the present invention. [Figure 28B] FIG. 10 is a perspective view of a container of a device for adherent flow of blood, with the container removed from the housing, according to another embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0014] Corresponding reference characters indicate corresponding parts throughout the several views. The examples provided herein illustrate exemplary embodiments of the present disclosure, and such examples are not to be construed as limiting the scope of the present disclosure in any way.
[0015] The following description is provided to enable those skilled in the art to make and use the described embodiments contemplated for practicing the invention. However, various modifications, equivalents, variations, and alternatives will remain readily apparent to those skilled in the art. Any and all such modifications, variations, equivalents, and alternatives are intended to be within the spirit and scope of the present invention.
[0016] For purposes of the remainder of this specification, the terms "upper," "lower," "right," "left," "vertical," "horizontal," "top," "bottom," "lateral," "longitudinal," and their derivatives will refer to the present invention as oriented in the figures. However, it should be understood that the present invention may assume alternative variations and step sequences unless expressly specified otherwise. It should also be understood that the specific devices and processes illustrated in the accompanying figures and described in the following specification are merely exemplary embodiments of the present invention. Hence, specific dimensions and other physical characteristics associated with the embodiments disclosed herein are not to be considered limiting.
[0017] The presently disclosed device for adherent flow of blood 10 provides a controlled blood flow path that ensures adherent blood flow from the collection site to the collection container. The presently disclosed device for adherent flow of blood 10 achieves this by controlling the flow of blood in a desired manner using three key technical elements: First, it controls and guides the blood sample from the patient's skin surface through a first flow-directing attachment to the collection housing; Second, it controls and guides the blood sample from the first end of the collection housing to the second end of the collection housing by capillary transport; and Third, it controls and guides the blood sample from the second end of the collection housing through a second flow-directing attachment into the collection cavity of the collection container.
[0018] 1-10B illustrate an exemplary embodiment of an apparatus for adherent flow of blood of the present disclosure. Referring to FIGS. 1-10B, an apparatus for adherent flow of blood 10 of the present disclosure provides a controlled blood flow path that ensures adherent blood flow from a collection site to a collection container.
[0019] When a patient's skin is punctured using a typical lancet device, blood spreads and accumulates on the surface of the finger. If the blood and blood flow are not controlled, the blood may accumulate on the surface of the finger and may not easily flow to a collection container.
[0020] 1-10B, in one exemplary embodiment, an apparatus 10 for adherent flow of blood, i.e., an apparatus that provides a flow-directing adherent portion for a blood sample to adhere to in order to guide and control the flow of the blood sample from a collection site to a collection container, generally includes a housing 12 and a collection container 14 that is removably connectable to the housing 12. The container 14 defines a collection cavity 70 and includes an interior wall or interior wall surface 72.
[0021] 1-10B, the housing 12 defines a centerline CL and includes a first end 20, a second end 22, and a flow channel 24. The flow channel 24 includes an inlet 26 and an outlet 28. A portion of the flow channel 24, e.g., a central portion 30, is offset from the centerline CL of the housing 12. This ensures that the outlet 28 of the flow channel 24 is adjacent to an inner wall surface 72 of the vessel 14, as will be described in more detail below. The flow channel 24 also includes a first flow directing attachment portion 32 at the inlet 26 and a second flow directing attachment portion 34 at the outlet 28. In one embodiment, the outlet 28 of the flow channel 24 extends beyond the second end 22 of the housing 12, as shown in FIGS. 1 and 2.
[0022] 1 and 2, when the container 14 is connected to the housing 12, the outlet 28 of the flow channel 24 is in fluid communication with the collection cavity 70 of the container 14, and the outlet 28 of the flow channel 24 is adjacent to an inner wall surface 72 of the container 14.
[0023] In one embodiment, the first end 20 of the housing 12 includes a sloped wall 36. As such, the sloped wall 36 provides a physical structure, i.e., a wall, that allows the first flow directing attachment 32 to extend upwardly therefrom. For example, with reference to FIG. 1 , the first flow directing attachment 32 extends upwardly from the sloped wall 36 to the inlet 26 of the housing 12. In one embodiment, the sloped wall 36 defines a flow channel inlet 38.
[0024] The presently disclosed device for adherent flow of blood 10 provides a controlled blood flow path that ensures adherent blood flow from the collection site to the collection container. The presently disclosed device for adherent flow of blood 10 achieves this by controlling the flow of blood in a desired manner using three key technical elements: First, it controls and guides the blood sample from the patient's skin surface through a first flow-directing attachment to the collection housing; Second, it controls and guides the blood sample from the first end of the collection housing to the second end of the collection housing by capillary transport; and Third, it controls and guides the blood sample from the second end of the collection housing through a second flow-directing attachment into the collection cavity of the collection container.
[0025] For example, referring to FIG. 2 , with first end 20 of housing 12 in communication with blood source 16, first flow-directing attachment portion 32, flow channel 24, second flow-directing attachment portion 34, and inner wall surface 72 of container 14 provide attachment portions to establish an attached blood flow for initial droplets of blood 16 and subsequent blood 16 to follow from first end 20 of housing 12 to collection cavity 70 of container 14.
[0026] The first critical blood flow path element 40 involves directing the initial droplets of blood 16 away from the surface S of the finger F in a direction toward the collection container 14. In one embodiment, with the first end 20 of the housing 12 in communication with the blood source 16, the first flow directing attachment portion 32 provides a pillar to which the initial droplets of blood 16 adhere in a controlled manner and flow down into the flow channel 24 of the housing 12. In other words, the initial droplets of blood 16 adhere to the first flow directing attachment portion 32 and flow from the first flow directing attachment portion 32 into the flow channel 24.
[0027] In one embodiment, the sloped wall surface 36 provides a downward attachment flow path from the first flow-directing attachment portion 32 to the flow channel 24 of the housing 12. After the first droplet of blood 16 attaches to the first flow-directing attachment portion 32 and flows downward, subsequent blood 16 follows the attachment blood flow path of the first droplet of blood 16 from the first end 20 of the housing 12 to the collection cavity 70 of the container 14.
[0028] The second key blood flow path element 42 involves directing blood 16 down the flow channel 24 in a direction toward the collection container 14 to the second flow-directing attachment 34. For example, the initial droplet of blood 16 and subsequent droplets of blood 16 are pulled through the flow channel 24 to the second flow-directing attachment 34 by capillary action. In one embodiment, the flow channel 24 is a capillary flow channel. In one embodiment, the flow channel 24 is a capillary that uses capillary force to pull the blood 16 down the flow channel 24 and away from the surface S of the finger F.
[0029] A third key blood flow path element 44 involves directing blood 16 from flow channel 24 into collection container 14. The device 10 of the present disclosure ensures an attached flow transition from flow channel 24 to container 14. For example, blood 16 flows from flow channel 24 into collection cavity 70 of container 14, attaching to second flow-directing attachment portion 34 and interior wall surface 72 of container 14.
[0030] The third important blood flow path element 44, which involves directing blood 16 from flow channel 24 into collection reservoir 14, exists because it is important that a portion of flow channel 24, such as central portion 30, be offset from centerline CL of housing 12. This ensures that outlet 28 of flow channel 24 and second flow-directing attachment portion 34 are adjacent to interior wall surface 72 of reservoir 14 to ensure an attached blood flow transition from flow channel 24 to reservoir 14.
[0031] If blood 16 finds another area to attach to, it will simply flow down flow channel 24 and into container 14. Second flow-directing attachment area 34 and interior wall surface 72 of container 14 provide such an attachment area to control blood 16 by attached blood flow to collection cavity 70 of container 14.
[0032] As explained above, once this path of attached blood flow is established, subsequent blood 16 follows and flows along this attached blood flow. In the manner explained above, device 10 of the present disclosure establishes an attached blood flow for the initial drop of blood 16 and subsequent blood 16 to follow from first end 20 of housing 12 to collection cavity 70 of container 14.
[0033] The first flow-directing attachment portion 32 can include a variety of different designs and structures, as shown in Figures 3-6. Additional alternative designs and structures of the first flow-directing attachment portion 32 are contemplated. For example, with reference to Figure 3, in one embodiment, the first flow-directing attachment portion 32 is an attachment post 50. The attachment post 50 is a single post structure that can have a variable diameter and length. The post 50 can include hydrophilic surface properties to attract the initial droplet of blood and establish a flow path to the second capillary section. In one embodiment, the post 50 can have a diameter between 0.25 mm and 4 mm and a length between 2 mm and 20 mm.
[0034] Referring to FIG. 4 , in another embodiment, the first flow-directing attachment portion 32 is a plurality of attachment posts 52. The plurality of attachment posts 52 can include posts having different sizes and structures, including a variety of different numbers of posts. In one configuration, the plurality of attachment posts 52 provides multiple surfaces for the initial droplet of blood to establish a flow path without smearing the sides of the structure or pooling in undesirable locations. The plurality of posts 52 can also provide additional capillary action through multiple capillary sections created between individual post structures. In one configuration, the plurality of attachment posts 52 can include between two and ten attachment posts, for example, between five and ten attachment posts. In one embodiment, each post can have a diameter between 0.25 mm and 4 mm and a length between 2 mm and 20 mm.
[0035] Referring to Figure 5, in another embodiment, the first flow-directing attachment portion 32 is a protruding structure 54. The protruding structure 54 guides the attached flow of blood and can include different shapes, sizes, and structures. In this configuration, the tilted structure provides a hydrophilic surface for the initial droplet of blood to attach to and be guided to the second capillary section. Optionally, the thickness of the tilted structure can be from about 0.25 to about 5 mm.
[0036] Referring to FIG. 6 , in another embodiment, the first flow-directing attachment portion 32 is a capillary groove portion 56. The capillary groove portion 56 guides the attachment flow of blood and can include grooves of different shapes, sizes, and numbers. In this configuration, the post structure with grooves helps to increase the capillary force by increasing the surface area within the groove, thereby acting as a capillary channel for transporting the initial droplet of blood drawn from the finger to the second capillary channel. In one configuration, the number of grooves provided can be between 1 and 20, and the diameter of each groove can be between 0.25 mm and 1 mm.
[0037] The second flow directing attachment portion 34 can include a variety of different designs and structures, as shown in Figures 7A-10B. Additional alternative designs and structures for the second flow directing attachment portion 34 are contemplated. For example, with reference to Figures 1 and 2, in one embodiment, the second flow directing attachment portion 34 is an attachment lip 60. The attachment lip 60 is a lip designed to establish attachment blood flow into the collection cavity 70 of the container 14, as described above. The attachment lip 60 provides a surface for blood to expand and form a droplet to establish attachment with the collection cavity.
[0038] 7A and 7B, in another embodiment, the second flow-directing attachment portion 34 is an extended capillary portion 62. In one configuration, the extended capillary portion can extend between 2 mm and 10 mm beyond the flow channel 24. The extended capillary portion 62 can be spaced from the wall of the collection vessel by a distance of less than 1 mm.
[0039] 8A and 8B, in another embodiment, the second flow-directing attachment portion 34 is an inwardly curved lip 64. The inwardly curved lip structure aids in the attachment of blood from a portion of the housing to the surface of the collection cavity. In one configuration, the inwardly curved lip structure can extend from about 0.5 to about 10 mm beyond the flow channel 24.
[0040] 9A and 9B, in another embodiment, the second flow-directing attachment portion 34 is a flat cutting lip 66. The flat cutting lip 66 also helps form blood droplets and establish blood adhesion with the surface of the collection cavity. In one configuration, the flat cutting lip can have an angle of about 10° to about 80°.
[0041] 10A and 10B, in another embodiment, the second flow-directing attachment portion 34 is an elongated post structure 68. In one configuration, the elongated post structure may extend beyond the flow channel 24 a distance of about 0.5 mm to about 10 mm.
[0042] 1, 2, 17, and 25A-28B, exemplary embodiments of a collection container 14 of the present disclosure are shown. Additional alternative designs and constructions of the container 14 are contemplated. The collection container 14 of the present disclosure is removably connectable to the housing 12. The container 14 defines a collection cavity 70 and includes an interior wall or interior wall surface 72. With reference to FIGS. 1 and 2, with the container 14 connected to the housing 12, the outlet 28 of the flow channel 24 is in fluid communication with the collection cavity 70 of the container 14, and the outlet 28 of the flow channel 24 is adjacent to the interior wall surface 72 of the container 14. In one configuration, the inner diameter of the flow channel 24 may be from about 0.5 mm to about 2 mm.
[0043] 25A-25C, in one embodiment, container 14 includes a removable, connectable cap 74 and a tether element 76. In such an embodiment, cap 74 is removed when container 14 is connected to housing 12 as shown in FIG. 25A. Tether element 76 ensures that cap 74 remains secured to a portion of container 14 when cap 74 is disconnected from open top end 78 of container 14 as shown in FIG. 25B. After a desired amount of blood 16 has been collected in container 14, container 14 is removed from housing 12, and cap 74 is connected to container 14 to seal within container 14 to protect blood 16, as shown in FIG. 25C.
[0044] 26B-26B, in one embodiment, container 14 includes a resealable septum 80. In such an embodiment, with container 14 coupled to housing 12, a portion of flow channel 24 pierces septum 80, thereby placing flow channel 24 in fluid communication with collection cavity 70 of container 14. After a desired amount of blood 16 has been collected in container 14, container 14 is removed from housing 12, and septum 80 automatically reseals closed to a sealed position, protectively sealing blood 16 within container 14, as shown in FIG.
[0045] 27A-27C, in one embodiment, the container 14 includes a deformable dispensing portion 82. In such an embodiment, with the container 14 removed from the housing 12, a portion of the blood 16 can be dispensed from the container 14 by moving the deformable portion 82. For example, the deformable portion 82 can be transitioned between an initial position (FIGS. 27A-27B) in which the blood 16 is contained within the collection cavity 70 and a deformed position (FIG. 27C) in which a portion of the blood 16 is expelled from the collection cavity 70 of the container 14. The deformable portion 82 is squeezed to transition from the initial position (FIGS. 27A-27B) to the deformed position (FIG. 27C). In this manner, the blood 16 can be transferred to a device intended to analyze the sample, such as a point-of-care testing device, cartridge tester, or near-patient testing device, while minimizing exposure of the medical practitioner to the blood sample. In one embodiment, the container 14 also includes an end cap 84 to safely seal an outlet portion 86 of the container 14. When the user is ready to withdraw a portion of the blood 16 from the container 14, the end cap 84 is removed from the outlet portion 86 of the container 14 before administering the blood 16.
[0046] 28A-28B, in one embodiment, the container 14 includes an extension tube 88. The extension tube 88 is compatible with an analyzer and analytical device.
[0047] 17-24 illustrate another exemplary embodiment of the device for adherent flow of blood of the present disclosure. Referring to Figures 17-24, the device for adherent flow of blood 100 of the present disclosure provides a controlled blood flow path that ensures adherent blood flow from the collection site to the collection container.
[0048] When a lancet device is used to puncture a patient's skin, blood spreads and collects on the surface of the finger. If the blood and blood flow are not controlled, the blood will collect on the surface of the finger and not flow to a collection container.
[0049] 17-24, in one exemplary embodiment, an apparatus 100 for adherent flow of blood generally includes a housing 112 and a collection container 14 that is removably connectable to the housing 112. The container 14 defines a collection cavity 70 and includes an interior wall or interior wall surface 72. The same container 14 that is compatible with the apparatus 10 described above with reference to FIGS. 1-10B is compatible with the apparatus 100 described with reference to FIGS. 17-24.
[0050] 17 , the housing 112 defines a centerline CL and includes a first end 120, a second end 122, a hollow needle 123, and a flow channel 124. The flow channel 124 includes an inlet 126 and an outlet 128. A portion of the flow channel 124, such as a bottom portion 130, is offset from the centerline CL of the housing 112. This ensures that the outlet 128 of the flow channel 124 is adjacent to the inner wall surface 72 of the container 14, as will be described in more detail below. The flow channel 124 also includes a flow-directing attachment portion 134 at the outlet 128. In one embodiment, the outlet 128 of the flow channel 124 extends beyond the second end 122 of the housing 112, as shown in FIG. 17 . In one embodiment, the hollow needle 123 is between the first end 120 of the housing 112 and the flow channel 124.
[0051] In the embodiment shown in Figures 17-24, hollow needle 123 functions similarly to first flow-directing attachment portion 32 described above with respect to device 10 shown in Figures 1-10B. 3
[0052] Referring to FIG. 17, when the container 14 is connected to the housing 112, the outlet 128 of the flow channel 124 is fluidly connected to the collection cavity 70 of the container 14, and the outlet 128 of the flow channel 124 is adjacent to the inner wall surface 72 of the container 14.
[0053] When a lancet device is used to puncture a patient's skin, blood spreads and collects on the surface of the finger. If the blood and blood flow are not controlled, the blood will collect on the surface of the finger and not flow to a collection container.
[0054] The presently disclosed device for adherent flow of blood 100 provides a controlled blood flow path that ensures adherent blood flow from the collection site to the collection container. The presently disclosed device for adherent flow of blood 100 achieves this by using three key technical elements to control the flow of blood in a desired manner.
[0055] For example, referring to FIG. 17 , with the first end 120 of the housing 112 in communication with the blood source 16, the hollow needle 123, the flow channel 124, the flow-directing attachment portion 134, and the inner wall surface 72 of the container 14 provide attachment portions to establish an attached blood flow for the initial droplet of blood 16 and subsequent blood 16 to follow from the first end 120 of the housing 112 to the collection cavity 70 of the container 14.
[0056] The first critical blood flow path element 140 involves directing the initial droplet of blood 16 away from the surface S of the finger F in a direction toward the collection container 14. In one embodiment, with the first end 120 of the housing 112 in communication with the blood source 16, the initial droplet of blood 16 attaches to a portion of the hollow needle 123 and flows through the hollow needle 123 into the flow channel 124 in a controlled manner, as shown in FIG.
[0057] In this manner, a portion of hollow needle 123 provides an attachment portion that functions similarly to first flow-directing attachment portion 32 described above with respect to device 10 shown in FIGS. 1-10B . Device 100 of the present disclosure, including hollow needle 123, provides an advantage in that hollow needle 123 can also be used to puncture skin surface S of finger F to provide blood source 16. In such embodiments, a separate lancet device is not required. For example, in one embodiment, hollow needle 123 can include a lancing blade 151 that can be used to puncture skin surface S of finger F to provide blood source 16. In such an embodiment, with first end 120 of housing 112 in communication with blood source 16, the initial droplet of blood 16, and subsequently, blood 16, attaches to lancing blade 151 and flows through hollow needle 123 into flow channel 124.
[0058] After the first droplet of blood 16 adheres to a portion of the hollow needle 123 and flows through the hollow needle 123, subsequent blood 16 follows the adherent blood flow path of the first droplet of blood 16 from the first end 120 of the housing 112 to the collection cavity 70 of the container 14.
[0059] The second critical blood flow path element 142 involves directing or pulling the blood 16 through the flow channel 124 to the flow-directing attachment 134 by capillary action. In one embodiment, the second critical blood flow path element 142 involves directing or pulling the blood 16 through the hollow needle 123 and the flow channel 124 to the flow-directing attachment 134 by capillary action in a direction toward the collection container 14. For example, the initial droplet of blood 16, and subsequently the blood 16, is pulled by capillary action through the flow channel 124 to the flow-directing attachment 134. In one embodiment, the flow channel 124 is a capillary flow channel. In one embodiment, the flow channel 124 is a capillary that uses capillary forces to pull the blood 16 down the flow channel 124 and away from the surface S of the finger F.
[0060] In one embodiment, housing 112 includes a sloped wall 136 between hollow needle 123 and flow channel 124. In one embodiment, sloped wall 136 defines flow channel inlet 138. In one embodiment, sloped wall 136 provides a downward attachment flow path from hollow needle 123 to flow channel 124 of housing 112.
[0061] A third important blood flow path element 144 involves directing blood 16 from the flow channel 124 into the collection container 14. The device 100 of the present disclosure ensures a transfer from the flow channel 124 to the container 14 by attached flow. For example, blood 16 flows from the flow channel 124 into the collection cavity 70 of the container 14, attached to the flow-directing attachment portion 134 and the interior wall surface 72 of the container 14.
[0062] The third important blood flow path element 144, which involves directing blood 16 from flow channel 124 into collection container 14, exists because it is important that a portion of flow channel 124, such as bottom portion 130, be offset from the centerline CL of housing 112. This ensures that outlet 128 of flow channel 124 and flow-directing attachment portion 134 are adjacent to interior wall surface 72 of container 14 to ensure an attached blood flow transition from flow channel 124 to container 14.
[0063] If blood 16 finds another area to attach to, it will simply flow down flow channel 124 and into container 14. Flow-directing attachment area 134 and interior wall surface 72 of container 14 provide such attachment areas to control blood 16 by attached blood flow to collection cavity 70 of container 14.
[0064] As explained above, once this path of attached blood flow is established, subsequent blood 16 follows and flows along this attached blood flow. In the manner described above, the device 100 of the present disclosure establishes an attached blood flow for the initial drop of blood 16 and subsequent blood 16 to follow from the first end 120 of the housing 112 to the collection cavity 70 of the container 14.
[0065] As discussed above, the portion of hollow needle 123 that provides an attachment portion for the flow of blood 16 functions similarly to first flow-directing attachment portion 32 described above with respect to device 10 shown in Figures 1-10B.
[0066] The hollow needle 123 can include a variety of different designs and structures, as shown in Figures 18-24. Additional alternative designs and structures of the hollow needle 123 are contemplated. For example, with reference to Figures 18 and 19, in one embodiment, the hollow needle 123 comprises a bevel-cut hollow needle. In one configuration, the needle bevel can be between 3 mm and 6 mm in length, and the lumen inner diameter can be between 0.25 mm and 4 mm.
[0067] As discussed above, with reference to Figures 20 and 21, in one embodiment, the hollow needle 123 can include a lancing blade 151 that can be used to puncture the skin surface S of the finger F to provide the blood source 16.
[0068] 21, in another embodiment, hollow needle 123 includes a flow directing ring 155 around hollow needle 123. Flow directing ring 155 prevents blood 16 from flowing down hollow needle 123 and ensures that blood 16 flows through hollow needle 123 and into flow channel 124. FIGS. 22-24 show additional alternative designs and structures for hollow needle 123. The needle bevel acts as an additional first, flow-directing attachment section, similar to post structure portion 32 described above with reference to FIG. 3.
[0069] 7A-10B. Additional alternative designs and structures of the flow directing attachment 134 are contemplated. The flow directing attachment 134 of the device 100 can include the same design and structure as the second flow directing attachment 34 of the device 10 described above and shown in FIGS. 7A-10B.
[0070] Another advantage of the device 10, 100 of the present disclosure is that the device 10, 100 can provide dispersed mixing of a sample stabilizing agent 200 within the blood sample 16. Referring to Figures 11 and 12, in one embodiment, the sample stabilizing agent 200 is disposed within a portion of the flow channel 24, 124 such that the blood sample 16 passes through the sample stabilizing agent 200 as it follows a controlled, adherent blood flow from the collection site to a collection container of the present disclosure. In this manner, the blood sample 16 can be mixed with the sample stabilizing agent 200, such as an anticoagulant or other additive, provided within a portion of the device 10, 100. The sample stabilizing agent 200 can be an anticoagulant or can be a substance designed to preserve elements unique to blood, such as RNA, protein analytes, or other elements.
[0071] 11 and 12, in one embodiment, the sample stabilizer 200 includes a material 202 that includes pores 204 and a dry anticoagulant powder 206 within the pores 204 of the material 202. In this manner, the device 10, 100 can include a dry anticoagulant, such as heparin or EDTA, deposited on or within a portion of the flow channel 24, 124. In one embodiment, the material 202 is an open-cell foam that includes a dry anticoagulant dispersed within the cells of the open-cell foam to promote inflow mixing and anticoagulant uptake. In one embodiment, the sample stabilizer 200 is a dry anticoagulant powder 206.
[0072] In one embodiment, the open-cell foam can be treated with an anticoagulant to form dry anticoagulant powder 206 that is finely dispersed throughout the pores 204 of the open-cell foam. As the blood sample 16 flows through the flow channels 24, 124, the blood sample 16 passes through the open-cell foam and is exposed to the anticoagulant powder 206 that is available throughout the internal pore structure of the open-cell foam. In this manner, the blood sample 16 dissolves and mixes with the dry anticoagulant powder 206 as it passes through the material 202 or open-cell foam.
[0073] The open-cell foam can be a soft, deformable, open-cell foam that is inert to blood, such as a melamine resin foam, such as Basotect® foam available from BASF, or can be composed of a formaldehyde-melamine-sodium bisulfite copolymer. The open-cell foam can also be a flexible, hydrophilic, open-cell foam that is substantially resistant to heat and organic solvents. In one embodiment, the foam can comprise a sponge material.
[0074] Anticoagulants or other additives may be introduced into open-cell foam by immersing the foam in a liquid solution of the additive and water, and then allowing the water to evaporate to form a dry additive powder finely dispersed throughout the foam's internal structure.
[0075] 13-16 illustrate an exemplary embodiment of a sample stabilizing agent 200 contained within the container 14. FIG.
[0076] For example, with reference to Figure 13, in one embodiment, anticoagulant lyophilized spheres 210 are provided within collection cavity 70 of container 14. As blood 16 follows the adhesion flow of the present disclosure into container 14, anticoagulant lyophilized spheres 210 dissolve within blood 16 upon contact with blood 16.
[0077] Referring to Figure 14, in another embodiment, the sample stabilization agent 200 includes an open-cell foam material 220 coated with a floating anticoagulant. Referring to Figure 15, in another embodiment, the sample stabilization agent 200 includes a floating ball 230 coated with a floating anticoagulant. Referring to Figure 16, in another embodiment, the container 14 includes walls 240 and a mixing ball 242 coated with an anticoagulant.
[0078] While this disclosure has been described as having exemplary designs, the disclosure can be further modified within the spirit and scope of the disclosure. Accordingly, this application is intended to cover any variations, uses, or adaptations of the disclosure using its general principles. Further, this application is intended to cover such departures from the disclosure as come within known or customary practice in the art to which this disclosure pertains and fall within the limits of the appended claims.
Claims
1. 1. An apparatus for the adherent flow of blood, comprising: a housing defining a first end with a sloped wall, a second end, a centerline, and a flow channel, the flow channel having an inlet, an outlet, and a central portion extending between the inlet and the outlet, the central portion being offset from the centerline of the housing, the flow channel having a first flow directing attachment adjacent the inlet and a second flow directing attachment adjacent the outlet, the first flow directing attachment extending from the sloped wall, the sloped wall defining a flow channel inlet; a container removably connectable to the housing, the container defining a collection cavity and having an interior wall; Equipped with with the container coupled to the housing, the outlet of the flow channel is in fluid communication with the collection cavity of the container, and the outlet of the flow channel and the second flow directing attachment portion are adjacent to the interior wall of the container; The apparatus, wherein the vessel comprises a resealable septum that receives a portion of the flow channel when the vessel is connected to the housing.
2. 10. The device of claim 1, wherein the first flow directing attachment portion provides a first fluid attachment point for blood to attach to control the flow of blood from a skin surface to a portion of the housing.
3. 10. The device of claim 1, wherein the second flow directing attachment portion provides a second fluid attachment point for blood to attach to control the flow of blood from a portion of the housing to the collection cavity of the container.
4. 2. The device of claim 1, wherein with the first end of the housing in communication with a blood source, the first flow-directing attachment portion, the flow channel, the second flow-directing attachment portion, and the interior wall of the container are configured to establish an attached blood flow for initial droplets of blood and subsequent blood to follow from the first end of the housing to the collection cavity of the container.
5. 2. The device of claim 1, wherein the inlet of the flow channel is in communication with a blood source, the blood flowingly attaches to the first flow directing attachment portion and flows from the first flow directing attachment portion into the flow channel.
6. 6. The device of claim 5, wherein the blood is then drawn by capillary action through the flow channel to the second flow directing attachment portion.
7. 7. The device of claim 6, wherein the blood flows from the flow channel into the collection cavity of the container by flowing and adhering to the second flow directing attachment portion and the interior wall of the container.
8. The apparatus of claim 1 , wherein the first flow-directing attachment portion is an attachment post.
9. The apparatus of claim 1 , wherein the first flow-directing attachment portion comprises a plurality of attachment posts.
10. 10. The apparatus of claim 1, wherein the second flow directing attachment portion is an attachment lip.
11. 10. The apparatus of claim 1, wherein the second flow-directing attachment portion is an extended capillary portion. Place.
12. 10. The apparatus of claim 1, wherein the second flow-directing attachment portion is an inwardly curved lip.
13. 10. The apparatus of claim 1, wherein the second flow-directing attachment portion is a flat cutting lip.
14. 10. The apparatus of claim 1, wherein the second flow-directing attachment portion is an elongated post structure.
15. The outlet of the flow channel extends beyond the second end of the housing.
10. The apparatus of claim 1.
16. 10. The device of claim 1, further comprising a removably connectable cap coupled to the container and configured to seal the collection cavity when the container is removed from the housing.
17. 10. The device of claim 1, wherein the container has a first end attached to the housing and a second end opposite the first end, the second end of the container defining an outlet portion in fluid communication with the collection cavity, and the device further comprises an end cap removably attachable to the container to seal the outlet portion.
Citation Information
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