Disinfection Cap
The antiseptic cap with open-cell and closed-cell foam structures addresses the contamination risk in male Luer connectors by preventing disinfectant entry into the lumen while effectively disinfecting, thereby reducing catheter-related infections and streamlining the disinfection process.
Patent Information
- Application Number
- JP2022562610
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-04-13
- Filing Date
- 2021-04-14
- Publication Date
- 2025-12-12
- Estimated Expiration
- 2041-04-14
AI Technical Summary
Existing disinfection methods for male Luer connectors in vascular access devices (VADs) are inadequate, leading to high risks of catheter-related bloodstream infections due to contamination, as disinfectants can enter the lumen and fluid pathway, and compliance with disinfection protocols is low.
An antiseptic cap with a housing containing open-cell and closed-cell foam structures, where the open-cell foam is impregnated with a sterilizing fluid and the closed-cell foam blocks the lumen, preventing disinfectant entry into the fluid path while disinfecting the connector.
The antiseptic cap effectively disinfects the connector without allowing disinfectants to enter the bloodstream, reducing the risk of infections and simplifying the disinfection process by providing a mechanical barrier and occlusion.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present disclosure relates to a disinfection cap device for disinfecting a corresponding medical connector. The present disclosure generally relates to a device for disinfecting and sterilizing an access port of a medical connector having a fitting. In general, exemplary embodiments of the present disclosure relate to the field of threaded or interlocking fittings, including medical caps and medical disinfection caps, and particularly to caps and / or disinfection caps for use with threaded fluid connectors. One or more exemplary embodiments of the present disclosure relate to a male disinfection cap device for disinfecting a male threaded Luer connector. [Background technology]
[0002] Vascular access devices (VADs) are commonly used therapeutic devices, including intravenous (IV) catheters. There are two general classifications of VADs: peripheral catheters and central venous catheters. Bacteria and other microorganisms can enter a patient's vascular system through the access hub, port, or valve connected to the VAD to deliver fluids or medications. Each access hub, port, valve, or connection poses a risk of catheter-related bloodstream infection (CRBSI), which can be costly and potentially fatal. To reduce CRBSI and ensure proper use and maintenance of VADs, standards of practice, including disinfection and cleaning procedures, have been developed. Disinfection caps have been added to the Society for Healthcare Epidemiology of America (SHEA) and Infusion Nurse Standards (INS) guidelines.
[0003] In developed countries, when using IV catheters, needleless connectors are typically used to seal the system and then access the catheter to administer medications or other necessary fluids to the patient. The INS practice guidelines recommend the use of needleless connectors and state that they should be thoroughly disinfected with alcohol, iodine tincture, or a chlorhexidine gluconate / alcohol combination before each access. The ultimate goal of disinfecting needleless connectors is to reduce the bacterial population that may inhabit their surfaces and cause various catheter-related complications, including CRBSI. Nurses typically complete this disinfection process with a 70% isopropyl alcohol (IPA) pad, a process known as "hub scrubbing." However, compliance with this method is typically very low. In addition to a lack of compliance with "hub scrubbing," clinician interviews often point to variations in scrubbing time, drying time, and frequency of scrubbing needleless connectors.
[0004] There is an increasing need to protect male and female Luer connectors to reduce central line-associated bloodstream infections (CLABSIs) and peripheral line-associated bloodstream infections (PLABSIs). If not properly protected, threaded male Luer connections on intravenous gravity infusion sets and syringes can be a source of contamination. Currently, when disconnecting an IV connector from a central or peripheral line to temporarily stop an infusion, nurses often loop the male Luer connector into a needleless Y-connector or wrap the male Luer connector in a wipe or cloth saturated with isopropyl alcohol (IPA). However, such protection is very weak and does not adequately protect the Luer from contact contamination. Male antiseptic caps have become the state-of-the-art disinfection and protection device for disinfecting male Luer connectors and creating a physical barrier to prevent microbial growth.
[0005] There are many risks of contact or contamination throughout the process related to the transmission of microorganisms that can cause CRBSI. As one example, contamination can occur during medication mixing, cannula attachment, and insertion into the access hub. Furthermore, threaded male Luer connectors have open Luers with exposed lumens. Because the VAD connection procedure is so common and simple, the risks associated with entering the patient's vascular system have often been overlooked. Currently, the risk to the hospital and patient depends essentially on the diligence of the clinician performing the connection, a diligence that is largely uncontrollable. Summary of the Invention [Problem to be solved by the invention]
[0006] Typically, disinfectants have a threshold limit for systemic exposure due to the biotoxicity of the disinfectant at high doses when injected into the bloodstream. There is a need for a mechanism that prevents the disinfectant from entering the lumen and fluid pathway while providing effective disinfection of the surrounding connector or fitting. Therefore, there is a need for a disinfection device that can block the lumen of an open luer to facilitate mitigation of disinfectant entry into the connector, thereby reducing the risk of the disinfectant entering the bloodstream. [Means for solving the problem]
[0007] A first aspect of the present disclosure relates to an antiseptic cap comprising a top wall, a cylindrical side wall, an open bottom, an open-cell foam structure, and a closed-cell foam structure. The cylindrical side wall has an inner surface defining a cavity. The open bottom is formed by the cylindrical side wall and has an opening leading to the cavity in the housing for receiving a luer connector hub. The open-cell foam structure is disposed within the cavity, the open-cell foam structure contacting the top wall of the cavity, and the open-cell foam structure is impregnated with a pre-activated sterilizing fluid. The closed-cell foam structure is disposed in contact with the open-cell foam structure, the closed-cell foam structure configured as a closure for fluidly blocking the luer connector hub. The luer connector hub is received within the inner surface of the cavity.
[0008] In one or more embodiments, a cavity extends essentially from the inner surface of the top wall toward the open bottom of the housing.
[0009] In one or more embodiments, the closed-cell foam structure forms an interference fit between the closed-cell foam structure and the inner surface of the housing. In embodiments, the open-cell foam structure is adhered to the closed-cell foam structure. In one or more embodiments, insertion of the luer connector causes compression of the open-cell foam structure, thereby allowing fluid to escape.
[0010] In one or more embodiments, the closed-cell foam structure has a polygonal shape.
[0011] In one or more embodiments, the closed cell foam structure has one of a number of corners that engage the interior surface of the housing with an interference fit.
[0012] In one or more embodiments, a gap is formed between one of the multiple flats and the inner surface of the housing, the gap providing a path for the sterilant to flow upon compression of the open-cell foam structure.
[0013] In one or more embodiments, the closed-cell foam structure has a hexagonal shape. In one or more embodiments, the closed-cell foam structure has a pentagonal shape. In one or more embodiments, the closed-cell foam structure has a star shape.
[0014] In one or more embodiments, the closed cell foam structure has one of multiple points that engage the interior surface of the housing with an interference fit, hi one or more embodiments, a gap is formed between one of the multiple interior points and the interior surface of the housing, the gap providing a path for the sterilant to flow upon compression of the open cell foam structure.
[0015] In one or more embodiments, the closed-cell foam structure has a four-pointed star shape. In one or more embodiments, the closed-cell foam structure has a five-pointed star shape.
[0016] In one or more embodiments, the antiseptic cap further comprises at least one thread on the exterior surface of the housing, the at least one thread sufficient to interlock with a mating portion of a luer connector.
[0017] In one or more embodiments, the hub is secured within the interior surface of the cavity by interlocking at least a portion of the at least one thread with a fitting on the hub of the luer connector, hi one or more embodiments, the interior surface of the cavity is secured by an interference fit with the hub of the luer connector.
[0018] In one or more embodiments, a removable peelable seal covers the opening to the cavity.
[0019] In one or more embodiments, the open-cell foam structure has a polygonal shape. In one or more embodiments, the open-cell foam structure has a star shape.
[0020] A second aspect of the present disclosure relates to a method of manufacturing an antiseptic cap, the method comprising the steps of adhering a sheet of closed-cell foam to an open-cell foam to form an adhesive assembly of open-cell foam structure and closed-cell foam structure, cutting the adhesive assembly of open-cell foam structure and closed-cell foam structure to shape, and inserting the adhesive assembly of open-cell foam structure and closed-cell foam structure into a cavity of a housing of the antiseptic cap.
[0021] In one or more embodiments, the method further comprises the step of impregnating the open-cell foam structure with a fungicide prior to inserting the adhesive of the open-cell foam structure and the closed-cell foam structure.
[0022] In one or more embodiments, the method further includes impregnating the open-cell foam structure with a disinfectant through a gap formed between the flat portion of the closed-cell foam structure and the inner surface of the cavity of the housing.
[0023] In one or more embodiments, the method further includes placing a peelable seal at the open end of the housing to seal the cavity and disinfectant therein. [Brief explanation of the drawings]
[0024] [Figure 1] FIG. 1 is a front view of an antiseptic cap according to a first exemplary embodiment of the present disclosure. [Figure 2] FIG. 2 is a perspective view of the antiseptic cap of FIG. 1. [Figure 3] 2 is a cross-sectional view of the antiseptic cap of FIG. 1 along the axis XX' of the antiseptic cap. [Figure 4] FIG. 2 is a semi-transparent perspective view of the antiseptic cap of FIG. 1. [Figure 5A] FIG. 2 is a side view showing the open-cell foam structure and the closed-cell foam structure of the antiseptic cap of FIG. 1. [Figure 5B]FIG. 2 is a side view showing the open-cell foam structure and the closed-cell foam structure of the antiseptic cap of FIG. 1. [Figure 6A] FIG. 2 is a bottom view of the embodiment of the antiseptic cap of FIG. 1. [Figure 6B] FIG. 2 is a bottom view of the embodiment of the antiseptic cap of FIG. 1. [Figure 6C] FIG. 2 is a bottom view of the embodiment of the antiseptic cap of FIG. 1. [Figure 6D] FIG. 2 is a bottom view of the embodiment of the antiseptic cap of FIG. 1. [Figure 6E] FIG. 2 is a bottom view of the embodiment of the antiseptic cap of FIG. 1. [Figure 7] FIG. 10 is a front view of a second embodiment of an exemplary antiseptic cap. [Figure 8] FIG. 10 is a cross-sectional view of a third embodiment of an exemplary antiseptic cap. DETAILED DESCRIPTION OF THE INVENTION
[0025]
[0003] Embodiments of the present disclosure relate to a disinfection cap for connecting to and disinfecting a medical connector including a threaded connection. In one or more embodiments, the medical connector is a luer connector or a needleless connector. In one or more embodiments, the medical connector is a male luer connector. In one or more embodiments, the medical connector is a female luer connector. The present disclosure aims to provide a mechanism for preventing disinfectants from entering the fluid pathway of the medical connector while providing effective disinfection of the hub and surrounding periphery of the medical connector.
[0026] Before describing several example embodiments of the present disclosure, it is to be understood that the present disclosure is not limited to the details of construction or method steps set forth in the following description. The present disclosure is capable of other embodiments and of being practiced or carried out in various ways.
[0027] For purposes of the following description, the terms "upper," "lower," "right," "left," "vertical," "horizontal," "top," "bottom," "transverse," "longitudinal," and derivatives thereof, shall refer to the present disclosure as oriented in the drawings. However, it should be understood that the present disclosure may contemplate alternative variations and process sequences unless expressly specified otherwise. It should also be understood that the specific devices and methods illustrated in the accompanying drawings and described in the following specification are merely exemplary embodiments of the present disclosure. Hence, specific dimensions and other physical characteristics related to the embodiments disclosed herein are not to be considered limiting.
[0028] As used herein, the use of the articles "a," "an," and "the" includes the singular and the plural.
[0029] As used herein, the term "catheter-related bloodstream infection" or "CRBSI" refers to any infection resulting from the presence of a catheter or IV line.
[0030] As used herein, the term "Luer connector" refers to a connecting collar, which is a standard method for attaching syringes, catheters, hubbed needles, IV tubing, and the like. A Luer connector consists of one or more interlocking tubes that are slightly tapered so that they can be held together with a simple pressure / torsion fit. Optionally, a Luer connector can also include external threads for more secure fixation. Typically, a Luer connector is associated with a flush syringe and can interlock and connect to an end located on a vascular access device (VAD). A Luer connector consists of a distal end, a proximal end, an irregularly shaped outer wall, and a profiled central passage for fluid communication from the chamber of the syringe barrel to the hub of the VAD. The Luer connector also has a distal end channel that releasably attaches the Luer connector to the hub of the VAD and a proximal end channel that releasably attaches the Luer connector to the syringe barrel. As used herein, the term "Luer connector" refers to a male Luer connector or a female Luer connector.
[0031] As used herein, the term "medical device" refers to a general medical device having a threaded or interlocking connection, the connection having a corresponding mating element. By way of non-limiting example, a syringe may have a threaded connection to releasably interlock with a secondary medical device, such as a needleless connector for a catheter, IV line, or the like. The threaded connection may include a lumen defining a fluid pathway surrounded by a protruding wall having threaded means for attachment to the secondary medical device.
[0032] As would be readily understood by one of ordinary skill in the relevant art, descriptive terms such as "screw," "taper," "tab," "wall," "top," "side," "bottom," and the like are used throughout this specification for ease of understanding, but are not intended to limit any components that may be used in combination or individually to implement various aspects of embodiments of the present disclosure.
[0033] An embodiment of the presently disclosed antiseptic cap includes a housing having a top wall defining a sealed distal end, an open proximal end, and a substantially cylindrical sidewall extending from the sealed end to the open proximal end, the sidewall having an inner surface. The cavity is configured to receive the hub of a needleless connector. In one or more embodiments, the cavity is configured to receive the hub of a threaded needleless connector and has at least one thread on the outer surface of the cylindrical sidewall sufficient to engage with a mating portion of the threaded connection. An embodiment of the antiseptic cap discloses that the at least one thread of the antiseptic cap engages with a mating portion of the threaded connection, more specifically, with a Luer connection. The cap further includes an open-cell foam structure serving as an absorbent material configured to release antiseptic solution upon insertion of the hub of the needleless connector. A closed-cell foam structure resistant to fluid absorption is attached to the open-cell foam structure. The closed-cell foam structure is configured as an occlusion to prevent antiseptic solution from entering the fluid path of the hub of the Luer connection. The open-cell foam structure and the closed-cell foam structure are further configured to prevent migration within the cavity in a pre-activated state. In one or more embodiments, the open proximal end includes a peripheral ledge extending radially outward from the outer surface of the sidewall, defining an end face and an engagement surface for a peelable seal and / or septum to maintain sterility of the cavity. The peelable seal reduces or prevents contamination of the cavity during transportation and storage of the antiseptic cap. The peelable seal generally remains sealed in a pre-activated state until immediately prior to an injection and / or aspiration procedure (at which point the peelable seal is removed). The peelable seal minimizes the ingress of potential particulate hazards and provides a substantially impermeable, sealed space for the cavity prior to use of the antiseptic cap. The peelable seal provides a sufficient seal over a range of temperatures, pressures, and humidity levels.
[0034] The antiseptic cap provides a mechanical barrier for the connector and contains an antiseptic or antibacterial agent (hereinafter referred to as "fluid"). The antiseptic cap of the present disclosure allows those skilled in the art to streamline the disinfection process. The examples set forth herein are provided to facilitate a comprehensive understanding of the exemplary embodiments of the present disclosure. Therefore, those skilled in the art will recognize that various changes and modifications can be made to the embodiments described herein without departing from the scope and spirit of the present disclosure. Furthermore, for the sake of clarity and conciseness, descriptions of well-known functions and structures are omitted.
[0035] In particular, one skilled in the art can disinfect the needleless connector in a single action by inserting or threading the antiseptic cap onto the needleless connector of a medical device, creating an occlusion that prevents fluid from entering the fluid path of the hub and lumen of the needleless connector, while inserting the hub of the Luer connector causes fluid to be released by compressing the open-cell foam, allowing disinfection of the Luer connector hub and its surroundings. In one or more embodiments, the antiseptic cap can then be removed by unscrewing it from the Luer connector. In one or more embodiments, the antiseptic cap can remain attached to the Luer connector until ready for use, providing a disinfected, sealed environment.
[0036] In exemplary implementations of embodiments of the present disclosure, the antiseptic cap includes integral threads or tabs and other features in any and all combinations that allow it to connect with threaded fittings on medical devices. In a preferred embodiment, the antiseptic cap connects to a Luer fitting. Exemplary configurations of couplers, fittings, ports, and adapters may include commercially available Luer locks, Luer slip ports, locking ports, threaded connections, interlocking connections, or other common medical device fittings known in the art.
[0037] Referring now to the drawings, wherein like reference numerals indicate identical or corresponding parts throughout the several views, embodiments of the present disclosure will now be described.
[0038] As shown in FIGS. 1 and 2 , a first aspect of the present disclosure relates to an antiseptic cap 100 including a housing 110 having an upper portion 110A and a lower portion 110B. In one or more embodiments, the lower portion 110B has a cylindrical housing 112 and is substantially cylindrical. In one or more alternative embodiments, the lower portion 110B may have a tapered lower portion. The upper portion 110A of the housing has inwardly tapered sidewalls. In further embodiments, the upper portion 110A and the lower portion 110B have substantially cylindrical sidewalls. In one or more embodiments, the inner surface 126 of the lower portion 110B of the housing 110 defines a cavity 130 having an open bottom 116 to receive a hub of a needleless connector, more specifically, a Luer connector. In one embodiment, the upper portion 110A is integrally formed with the lower portion 110B, while further embodiments are permanently or removably assembled with a threaded connection, a press-fit connection, an adhesive connection, or a combination thereof.
[0039] In one or more embodiments, the cavity 130 can be configured to facilitate a loose fit between the cavity 130 and the hub of a Luer connector, and the antiseptic cap 100 is secured by at least one thread 122 or a set of tabs included on the outer surface of the cylindrical housing 112. The at least one thread 122 disposed on the outer surface of the cylindrical housing 112 has dimensions and a thread pattern that mates with a standard ISO-2 type fitting. The loose fit allows fluid to flow around the hub of the Luer connector. In further embodiments, the cavity 130 can be configured as a Luer slip fitting to facilitate an interference fit between the cavity 130 and the hub of the Luer connector. In some embodiments, the interference fit can be configured strong enough so that a threaded connection (e.g., the at least one thread 122) is not required to removably secure the cavity 130 to the Luer connector.
[0040] In one or more embodiments, when the hub of a Luer connector is received within the inner surface 126 of the cavity 130, the hub is secured within the cavity 130 of the antiseptic cap 100 by interlocking at least a portion of the at least one thread 122 with a mating portion on the hub of the Luer connector. In one or more embodiments, the at least one thread 122 can include an oblique thread pattern. In one or more embodiments, the at least one thread 122 can include a helical thread pattern. Such connectors are commonly and commonly used as catheters and other fluid-tight protective connectors in needleless connectors, and more generally in medical applications. In some embodiments, the antiseptic cap 100 provides a protective cover for the Luer connector when engaged with the connector, when the threads of the Luer connector engage with the at least one thread 122 of the antiseptic cap 100 to form a releasable connection.
[0041] FIG. 3 shows a cross-sectional view of the antiseptic cap 100 taken along the X-X' plane shown in FIG. 1. As shown in FIG. 2, the cavity 130 of the housing 110 extends the entire length of the housing 110 from the open bottom 116 to the top wall 114, and the cavity 130 has a substantially cylindrical shape. An open-cell foam structure 120 for absorbing and retaining a disinfectant is disposed within the cavity. The open-cell foam structure is impregnated with the disinfectant in a pre-activated state. The open-cell foam structure 120 can be disposed against or adjacent to the top wall 114. The open-cell foam structure 120 is compressible both horizontally and vertically, primarily due to the longitudinal advancement of a needleless or luer connector relative to the open-cell foam structure 120. In one or more embodiments, the open-cell foam structure 120 is sized to create an interference fit with the inner surface 126 of the cavity 130, with the diameter of the open-cell foam structure 120 being larger than the diameter of the cavity 130. In a preferred embodiment, the open-cell foam structure 120 is sized to fit loosely within the cavity, with the diameter of the open-cell foam structure 120 being smaller than the diameter of the cavity 130. The open-cell foam structure 120 allows fluid to escape when the open-cell foam structure 120 is compressed.
[0042] As shown in FIGS. 3 and 4 , closed-cell foam structure 118 is positioned adjacent to open-cell foam structure 120. Closed-cell foam structure 118 is configured to resist fluid absorption and prevent the infiltration of disinfectants into the fluid path of the luer connector hub. As shown in FIG. 5A , in one or more embodiments, open-cell foam structure 120 and closed-cell foam structure 118 are two separate, unitary structures, with open-cell foam structure 120 positioned on top of closed-cell foam structure 118. As shown in FIG. 5B , in one or more embodiments, open-cell foam structure 120 and closed-cell foam structure 118 are bonded into a unitary body using adhesive layer 121. In one or more embodiments, open-cell foam structure 120 and closed-cell foam structure 118 are single-cell foam structures having a closed-cell foam portion and an open-cell foam portion, with the open-cell foam portion positioned against top wall 114. In one or more embodiments, the open-cell foam structure 120 is separate from the closed-cell foam structure 118, with the open-cell foam structure initially positioned within the cavity 130 against the top wall 114 and the closed-cell foam structure 118 positioned against the open-cell foam structure 120. Advancement of the needleless or luer connector into the cavity 130 in a longitudinally connected state results in compression of the open-cell foam structure 120 against at least the top wall 114, and in some embodiments, compression of the closed-cell foam structure 118 against the top wall 114.
[0043] In one or more embodiments, the closed cell foam structure 118 can be composed of a polyethylene sponge or a polyurethane sponge. In one or more embodiments, the adhesive can be a bonding layer of EVA.
[0044] The closed-cell foam structure 118 is configured to be secured within the cavity 130 in a pre-activated state. In some embodiments, the closed-cell foam structure 118 forms an interference fit with the inner surface 126 of the cavity 130. The closed-cell foam structure 118 has a non-circular cross-sectional shape. As illustrated in the embodiments below, the non-circular cross-sectional shape is configured to create an interference fit with the inner surface 126 of the cavity 130 upon compression of the open-cell foam structure 120 while allowing fluid to flow from the open-cell foam structure 120 disposed between the top wall 114 and the closed-cell foam structure 118.
[0045] 6A-6E, cross-sectional shapes are illustrated. As shown in FIGS. 6A, 6B, and 6C, in one or more embodiments, the closed-cell foam structure 118 has a polygonal shape, such as a pentagon, hexagon, or rectangle. In such embodiments, one of the corners 190 of the polygonal shape engages with the inner surface 126 of the housing 110 in an interference fit, and the distance between the corners 190 of the polygonal shape is configured to be greater than the diameter of the cavity 130. A gap 192 is formed between one of the flat portions 194 and the inner surface 126 of the housing 110. The one or more gaps 192 are configured to allow fluid to flow between the one of the flat portions 194 and the inner surface 126 of the housing 110. Upon compression of open-cell foam structure 120 and compression of closed-cell foam structure 118 due to longitudinal advancement of luer connector 170, disinfectant is released from open-cell foam structure 120 through gaps 192, thereby disinfecting the area around hub 174 and luer connector 170. Closed-cell foam structure 118 fluidly seals lumen 172 of luer connector 170. Gap 192 provides a fluid path for the disinfectant to flow upon compression of the open-cell foam structure.
[0046] 6D and 6E , in one or more embodiments, the closed-cell foam structure 118 has a star-shaped configuration, such as a four-pointed or five-pointed star. One of the multiple points 290 engages the inner surface 126 of the cavity 130 with an interference fit, and the distance between one or more of the multiple points 290 is configured to be greater than the diameter of the cavity 130. A gap 292 is formed between one of the multiple flats 294 and the inner surface 126 of the housing 110. The one or more gaps 292 are configured to allow fluid to flow between the one of the multiple flats 294 and the inner surface 126 of the housing 110. The star shape further includes multiple interior points 296, forming a larger gap 292 than the embodiment having the flat 164.
[0047] In one or more embodiments, the closed-cell foam structure is oval in shape. Referring to Figure 7, in one or more embodiments, the closed-cell foam structure 318 and the open-cell foam structure 320 have the same shape. In one or more embodiments, the closed-cell foam structure 318 and the open-cell foam structure 320 have a polygonal shape, such as a pentagon, hexagon, or rectangle, or a star shape, such as a four-pointed or five-pointed star.
[0048] Referring to FIG. 8 , in one or more embodiments, an antiseptic cap 400 includes a housing 410 having an inner surface 426 defining a cavity 430. The cavity 430 has an open bottom 416 for receiving a hub 472 of a luer connector 470. In one or more embodiments, the cavity 430 is configured to facilitate a loose fit between the cavity 430 and the hub 472 of the luer connector 470, and the antiseptic cap is secured by at least one thread 422 or a set of tabs included on the exterior surface of the housing. The at least one thread 422 disposed on the exterior surface of the cylindrical housing has dimensions and a thread pattern that mate with a standard ISO-2 type fitting of the luer connector 470. The loose fit allows fluid to flow around the hub 472 of the luer connector 470. In further embodiments, cavity 430 can be configured in a luer slip fitting to facilitate an interference fit between cavity 430 and hub 472 of luer connector 470. The interference fit can be configured to be strong enough so as not to require a threaded connection, i.e., at least one thread 422, to removably secure cavity 430 to luer connector 470.
[0049] In one or more embodiments, when the hub 472 of the luer connector 470 is received within the inner surface 426 of the cavity 430, the hub 472 is secured within the cavity 430 of the antiseptic cap 400 by interlocking at least a portion of the at least one thread 422 with a mating portion or thread 474 on the hub of the luer connector 470. In one or more embodiments, the at least one thread 422 can include an oblique thread pattern. In one or more embodiments, the at least one thread 422 can include a helical thread pattern. Such connectors are commonly used as catheters and other fluid-tight protective connectors in medical applications. In some embodiments, the antiseptic cap 400 provides a protective cover for the luer connector when engaged with the connector, when the threads 474 of the luer connector 470 engage with the at least one thread 422 of the antiseptic cap 400 to form a releasable connection.
[0050] Compression of the open-cell foam structure 420 disposed within the cavity 430 and compression of the closed-cell foam structure 418 disposed adjacent to the open-cell foam structure 420 causes the disinfectant to be released from the open-cell foam structure 420 through the gaps to disinfect the area around the hub 472 and the luer connector 470. The closed-cell foam structure 418 fluidly seals the lumen 476 of the luer connector 470. The gaps provide a fluid path for the disinfectant to flow when the open-cell foam structure 420 is compressed.
[0051] The open-cell foam structure and the closed-cell foam structure having the same shape are beneficial in the manufacture of antiseptic caps. Instead of individually adhering pre-cut open-cell foam structures to closed-cell foam structures, the closed-cell foam and the bonded open-cell foam sheet can be cut to the appropriate shape in a single manufacturing process. The manufacturing method includes adhering a sheet of closed-cell foam to a sheet of open-cell foam to obtain an adhering assembly of the open-cell foam structure and the closed-cell foam structure, cutting the adhering assembly of the open-cell foam structure and the closed-cell foam structure to the shape, and inserting the adhering assembly of the open-cell foam structure and the closed-cell foam structure into the cavity of a molded housing. In one or more embodiments, the sheet of closed-cell foam and the sheet of open-cell foam are industrial size. In one or more embodiments, the shape of the bonded open-cell foam structure and the closed-cell foam structure is polygonal, star-shaped, or elliptical.
[0052] In one or more embodiments, the method further includes impregnating the open-cell foam structure with a fungicide prior to inserting the adhesive assembly of the open-cell foam structure and the closed-cell foam structure. In one or more embodiments, the method further includes impregnating the open-cell foam structure with a fungicide through a gap formed between the flat portion of the closed-cell foam structure and the inner surface of the cavity of the housing.
[0053] The method of manufacture further includes placing a peelable seal at the open end of the housing to seal the cavity and the disinfectant therein.
[0054] The antiseptic cap 100 can achieve disinfection when used with needleless connectors, more specifically, luer connectors, by incorporating a disinfectant into the cavity 130 of the antiseptic cap 100. The disinfectant can be contained directly in the cavity 130. The antiseptic cap 100 is configured to be compatible with interacting with various disinfectants or antimicrobial agents or fluids. In one or more embodiments, the disinfectant or antimicrobial agent or fluid comprises a variation of alcohol or chlorhexidine. In one or more embodiments, the disinfectant or antimicrobial agent or fluid comprises a variation of alcohol or chlorhexidine.
[0055] In one or more embodiments, the disinfectant is selected from the group consisting essentially of isopropyl alcohol, ethanol, 2-propanol, butanol, methylparaben, ethylparaben, propylparaben, propyl gallate, butylated hydroxyanisole (BHA), butylated hydroxytoluene, t-butyl-hydroquinone, chloroxylenol, chlorhexidine, chlorhexidine diacetate, chlorhexidine gluconate, povidone-iodine, alcohol, dichlorobenzyl alcohol, dehydroacetic acid, hexetidine, triclosan, hydrogen peroxide, colloidal silver, benzethonium chloride, benzalkonium chloride, octenidine, antibiotics, and mixtures thereof. In certain embodiments, the disinfectant or antibacterial agent comprises at least one of chlorhexidine gluconate and chlorhexidine diacetate. In one or more embodiments, the disinfectant or antibacterial agent is a fluid or gel.
[0056] In one or more embodiments, the antiseptic cap 100 can include a removable peelable seal covering the opening to the cavity 130. In one or more embodiments, the peelable seal includes a peel-back top of aluminum or a multilayer polymer film. In certain embodiments, the peelable seal is heat-sealed or induction-sealed to the open end of the antiseptic cap 100. In one or more embodiments, the peelable seal includes a moisture barrier. In some embodiments, the peelable seal is thin enough to be pierced by a luer connector, allowing the luer connector to be advanced into the cavity 130 without first removing the peelable seal.
[0057] The antiseptic cap 100 is made from any of a number of types of plastic materials, such as polycarbonate, polypropylene, polyethylene, polyethylene terephthalate, polylactide, acrylonitrile / butadiene / styrene, or any other moldable plastic material used in medical devices. In one or more embodiments, the antiseptic cap 100 comprises a polypropylene or polyethylene material.
[0058] In one or more embodiments, the connector of the medical device may be selected from the group consisting essentially of needleless connectors, catheter luer connectors, stopcocks, and hemodialysis connectors on primary IV gravity infusion sets, secondary IV gravity infusion sets, extension sets, and infusion or syringe pump sets. In some embodiments, the antiseptic cap can be connected to any of a variety of different needleless infusion sites. In one or more embodiments, after the antiseptic cap is mated with a connector, it is not necessary to disinfect the connector (e.g., with an alcohol swab) before each reconnection of the connector with another connector because the connector remains uncontaminated while mated with the antiseptic cap. Use of the antiseptic cap 100 replaces standard swabbing protocols for cleaning connectors.
[0059] Yet another aspect of the present disclosure relates to a method of disinfecting a medical connector, the method including connecting one or more embodiments of the antiseptic cap 100 to the medical connector, the connection including engaging threads of the medical connector with threads on the exterior surface of the sidewall of the antiseptic cap housing 110 upon insertion of the medical connector into the antiseptic cap 100 and contacting the medical connector with an occlusion. In one or more embodiments, the occlusion is a closed-cell foam structure 118.
[0060] The antiseptic cap 100 disclosed herein and shown in the drawings can be utilized with luer connectors, including male and female luer connectors, and the occlusion can be used to block the open luer lumen to facilitate mitigation of antiseptic penetration into the connector, thereby reducing the risk of antiseptic entering the bloodstream. Thus, it is contemplated that the antiseptic cap 100 disclosed herein and shown in the drawings can be utilized with male and female luer connectors.
[0061] Although the present disclosure has been shown and described with reference to specific exemplary embodiments thereof, it will be understood by those skilled in the art that various changes in form and details may be made therein without departing from the spirit and scope of the embodiments of the present disclosure. Also, the housing of the antiseptic cap may be manufactured by one-shot molding or other suitable processes. Furthermore, the features or elements of any exemplary implementation of the embodiments of the present disclosure as described above and shown in the drawings may be implemented individually or in any combination(s) as would be readily understood by one skilled in the art, without departing from the spirit and scope of the embodiments of the present disclosure.
[0062] Additionally, the accompanying drawings further illustrate non-limiting examples of implementations of certain exemplary embodiments of the present disclosure and aid in the description of the related technology. Any specific or relative dimensions or measurements provided in the drawings, other than those described above, are illustrative and not intended to be limiting.
[0063] Reference throughout this specification to "one embodiment," "a particular embodiment," "one or more embodiments," or "an embodiment" means that a particular feature, structure, material, or characteristic described in connection with an embodiment is included in at least one embodiment of the present disclosure. Thus, the appearances of phrases such as "in one or more embodiments," "a particular embodiment," "in one embodiment," or "an embodiment" in various places throughout this specification are not necessarily all referring to the same embodiment of the present disclosure. Furthermore, particular features, structures, materials, or characteristics may be combined in any suitable manner in one or more embodiments.
[0064] Although the disclosure herein has provided a description with reference to particular embodiments, it is to be understood that these embodiments are merely illustrative of the principles and applications of the present disclosure. It will be apparent to those skilled in the art that various modifications and variations can be made to the disclosed method and apparatus without departing from the spirit and scope of the present disclosure. Therefore, it is intended that the present disclosure cover modifications and variations that come within the scope of the appended claims and their equivalents.
Claims
1. 1. An antiseptic cap having a housing, the housing comprising: a top wall and a cylindrical side wall having an inner surface and an outer surface defining a cavity; an open bottom formed by the cylindrical sidewall having an opening to the cavity in the housing for receiving a hub of a luer connector; an open-cell foam structure disposed within the cavity, the open-cell foam structure contacting a top wall of the cavity, the open-cell foam structure being pre-impregnated with a germicidal liquid in an activated state; a closed-cell foam structure disposed adjacent to the open-cell foam structure, the closed-cell foam structure configured as a closure for fluidly isolating the hub of the luer connector when the hub is received within the interior surface of the cavity; Including, 1. A disinfection cap, wherein the cross-sectional shape of the closed-cell foam structure is a polygonal shape.
2. 2. The antiseptic cap of claim 1, wherein the open-cell foam structure is bonded to the closed-cell foam structure.
3. 2. The antiseptic cap of claim 1, wherein insertion of the luer connector causes compression of the open-cell foam structure, thereby releasing fluid.
4. 2. The antiseptic cap of claim 1, wherein the closed cell foam structure has one of a number of corners that fit tightly against the interior surface of the housing.
5. 5. The antiseptic cap of claim 4, wherein a gap is formed between one of the flat portions and the inner surface of the housing, the gap forming a path for antiseptic flow when the open-cell foam structure is compressed.
6. 2. The antiseptic cap of claim 1, wherein the cross-sectional shape of the closed-cell foam structure is a hexagonal shape.
7. The antiseptic cap of claim 1, wherein the cross-sectional shape of the closed-cell foam structure is a pentagonal shape.
8. The antiseptic cap of claim 1, wherein the cross-sectional shape of the closed-cell foam structure has a star-shaped configuration.
9. 9. The antiseptic cap of claim 8, wherein the closed cell foam structure has one of multiple points that engage the inner surface of the housing with an interference fit.
10. 10. The antiseptic cap of claim 9, wherein a gap is formed between one of the multiple interior points and the inner surface of the housing, the gap providing a path for antiseptic flow upon compression of the open-cell foam structure.
11. The antiseptic cap of claim 1, wherein the cross-sectional shape of the closed-cell foam structure has a four-pointed star shape.
12. The antiseptic cap of claim 1, wherein the cross-sectional shape of the closed-cell foam structure has a five-pointed star shape.
13. 10. The antiseptic cap of claim 1, further comprising at least one thread on the exterior surface of the housing, the at least one thread interlocking with a mating portion of the luer connector.
14. 6. The antiseptic cap of claim 5, wherein the hub is secured within the inner surface of the cavity by engaging at least a portion of at least one thread with a fitting on the hub of the luer connector.
15. 10. The antiseptic cap of claim 1, wherein a removable peelable seal covers the opening to the cavity.
16. 2. The antiseptic cap of claim 1, wherein the cross-sectional shape of the open-cell foam structure is a polygonal shape.
17. 2. The antiseptic cap of claim 1, wherein the cross-sectional shape of the open-cell foam structure is star-shaped.
18. bonding a sheet of closed-cell foam to the open-cell foam to obtain an adherend of an open-cell foam structure and a closed-cell foam structure; cutting the bonded assembly of open-cell foam structure and closed-cell foam structure into a polygonal cross-sectional shape; inserting an adhesive of open-cell foam structure and closed-cell foam structure into a cavity of a housing of an antiseptic cap; A method for manufacturing a disinfection cap, comprising:
19. 20. The method for manufacturing an antiseptic cap according to claim 18, further comprising the step of impregnating the bonded open-cell foam structure with an antiseptic before the step of inserting the bonded open-cell foam structure and closed-cell foam structure.
20. 20. The method for manufacturing an antiseptic cap according to claim 18, further comprising the step of impregnating the bonded open-cell foam structure with an antiseptic through a gap formed between the flat portion of the closed-cell foam structure and the inner surface of the cavity of the housing.
21. 20. The method of claim 18, further comprising the step of placing a peelable seal on the open end of the housing to seal the cavity and the antiseptic therein.
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