Negative Pressure Wound Therapy (NPWT) Dressings

NPWT dressings with specific MVTR and structural design enhance system stability and efficiency by managing exudate, reducing pump frequency and noise, and extending wear time.

JP7710466B6Active Publication Date: 2025-08-13MOLNLYCKE HEALTH CARE AB
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Patent Information

Application Number
JP2022570405
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-05-25
Filing Date
2021-05-24
Publication Date
2025-08-13
Estimated Expiration
2041-05-24

AI Technical Summary

Technical Problem

Existing NPWT systems face challenges in maintaining stable and controlled negative pressure delivery due to dressing saturation from excessive wound exudate, leading to frequent pump activation, noise, and battery consumption, particularly in portable devices with remote fluid collection means.

Method used

NPWT dressings with a backing layer having a moisture vapor transmission rate (MVTR) of 500 to 3500 g/m²/24h, combined with a flexible and tensile backing layer, absorbent structure, and controlled air inflow, to manage exudate efficiently and maintain system stability.

Benefits of technology

The solution reduces pump activation frequency by up to 26%, extends wear time, and ensures stable treatment with reduced noise and battery drain, while maintaining effective exudate management and wound healing.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present disclosure generally relates to a negative pressure wound therapy (NPWT) dressing (100) comprising a backing layer (101) and an adhesive skin contact layer (102); the adhesive skin contact layer (102) is configured to releasably adhere the dressing (100) to a skin surface, the backing layer (101) comprising a coupling member (104); and the coupling member (104) comprising tubing (105) configured to connect the dressing (100) to a negative pressure source and a remote fluid collection means.
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Description

[Technical Field]

[0001] The present disclosure relates generally to negative pressure wound therapy (NPWT) dressings, as well as systems and kits that include such dressings. [Background technology]

[0002] Negative pressure wound therapy (NPWT) is a technique that promotes healing of wounds, such as surgical, acute, and chronic wounds, by applying subatmospheric pressure to the wound using a negative pressure pump. Wound healing is achieved by applying negative pressure, such as a vacuum, through a dressing or cover applied over the wound. This draws out excess wound exudate, thereby increasing blood flow to the area and promoting the formation of granulation tissue. NPWT technology also allows for a reduction in external disturbances to the wound, transporting excess fluid away from the wound site.

[0003] NPWT technology has thus far primarily been applied to patients while in a hospital setting, however recent product developments have enabled patients to use this technology in the home environment.

[0004] In a hospital setting, the wound to be treated is typically an open cavity wound that is first filled with a wound packing material, such as gauze or foam. The wound may then be sealed with an adhesive film and connected to a vacuum pump via a drain or port. The size of the foam, gauze, and / or adhesive film may be adapted and cut depending on the size, shape, or type of wound. The application procedure is typically performed by a caregiver. The negative pressure pumps used in such systems are typically large and generally have a large capacity to handle large volumes of wound exudate. This type of system typically includes a fluid collection means, such as a canister, located remotely from the dressing. Wound exudate draining from the wound is transported by tubing to the canister for fluid collection.

[0005] In a home environment, portable NPWT devices that can be carried by the patient are generally preferred. Portable NPWT devices typically include an absorbent dressing configured to be connected to a negative pressure source using tubing. The pumps used in such devices are generally relatively small and have a more limited capacity.

[0006] In most portable NPWT systems, the dressing serves as the only means of collecting wound exudate. When dealing with large amounts of wound exudate, the dressing can quickly become saturated. This can negatively impact the dressing's ability to remain on the skin; that is, the dressing's wear time is shortened. Typically, the dressing must be discarded and replaced with a new dressing.

[0007] For negative pressure wound therapy to operate properly and in a controlled manner, the NPWT system must be stable. This is especially true in NPWT systems that include a remotely located fluid collection means, such as a canister. In such systems, exudate is continuously or intermittently transferred through tubing or conduits connecting the dressing to the canister. Therefore, the negative pressure source, i.e., the vacuum pump, must be activated at regular intervals. For example, if the negative pressure level delivered to the wound is not within a desired threshold, the pump must be activated to ensure the correct negative pressure is delivered. One example of a situation requiring the pump to function more powerfully is when an undesirable air leak is present in the system. An excessively high activation frequency of the negative pressure source, i.e., the pump, will result in undesirable noise and battery consumption.

[0008] In summary, there is a need to provide improvements in the delivery of stable and controlled negative pressure wound therapy. In particular, there is a need to provide dressings for portable NPWT systems and devices that allow for efficient removal of exudate while improving the overall control and stability of the NPWT system. [Prior art documents] [Patent documents]

[0009] [Patent Document 1] European Patent Application Publication No. 2759310 [Patent Document 2] European Patent Application Publication No. 3023083 Summary of the Invention [Problem to be solved by the invention]

[0010] In view of the above-mentioned problems, it is an object of the present disclosure to provide improvements with respect to dressings for NPWT applications, particularly with respect to their ability to improve treatment stability and provide a reliable portable NPWT system. [Means for solving the problem]

[0011] According to a first aspect of the present disclosure, there is provided a negative pressure wound therapy (NPWT) dressing comprising: a backing layer; an adhesive skin contact layer; and an absorbent structure disposed between the backing layer and the adhesive skin contact layer; the adhesive skin contact layer is configured to releasably adhere the dressing to a skin surface; and the backing layer includes a connecting member including tubing configured to connect the dressing to a negative pressure source and a remote fluid collection means, wherein the backing layer has a weight of 500 to 3500 g / m as measured in accordance with NWSP070.4R0. 2 Negative pressure wound therapy (NPWT) dressings are provided that have moisture vapor transmission rates (MVTR) in the range of 1 / 24h.

[0012] The present disclosure is based on the recognition that the moisture vapor transmission rate of the backing layer, i.e., the rate at which the backing layer (and thus the dressing as well) allows moisture to evaporate, has an effect on the stability of the negative pressure wound therapy and the overall NPWT system.

[0013] It is generally known that exuding wounds require absorbent dressings with backing layers that have very high moisture vapor transmission rates (MVTR). Contrary to what is known in the art, the present inventors have recognized that backing layers with low MVTRs are in fact associated with positive effects when such dressings are applied in negative pressure wound therapy.

[0014] More specifically, the present inventors have determined that the fiber density is 500 to 3500 g / m 2 It has been recognized that a backing layer with an MVTR within the 24h / 24h range improves the stability of the negative pressure wound treatment and system, and has a positive effect on the negative pressure source, i.e., the pump, so that the negative pressure source does not need to work as hard as during treatment. This range can still ensure that excess moisture is efficiently removed from the dressing to promote wound healing.

[0015] The NPWT dressings of the present disclosure are configured to be connected to a negative pressure source, i.e., a pump, and to a fluid collection means located remotely from the dressing, i.e., located between the dressing and the negative pressure source, or integrated into the same unit as the negative pressure source. In other words, wound exudate will be transported from the dressing using tubing to a separate fluid collection means, such as a canister.

[0016] The inventors have determined that the 2 / 24h, preferably 600 to 2700 g / m 2 It has been discovered that a backing layer with an MVTR in the 24 hour range ensures an optimal balance between providing stable wound treatment with less demand on the pump and overall system, and establishing a favorable environment for wound healing, i.e., ensuring that excess moisture evaporates from the dressing, thereby preventing maceration.

[0017] In embodiments, the tubing of the dressing includes a fluid conduit configured to remove fluid from the dressing and an air conduit configured to supply air to the fluid conduit and / or the dressing.

[0018] A small, controlled inflow of air can be beneficial to more efficiently draw fluid from the wound site and transport the fluid to a remotely located fluid collection means, such as a canister. The introduction of air helps to dissipate potential exudate blockages or fluid columns that may form within the tubing.

[0019] In an embodiment, the backing layer has a tensile strength in the machine direction (MD) and / or cross machine direction (CD) of 30 to 70 MPa, preferably 35 to 55 MPa, as measured according to ISO 527-3 / 2 / 200.

[0020] The inventors have discovered that the tensile strength of the backing layer also plays a role in providing stable and reliable treatment. The backing layer must be sufficiently rigid to prevent tearing or breaking during patient movement. For example, the edges of the absorbent structure may be particularly susceptible to breaking, as thicker absorbent structures may rub against the backing layer at the edges. If perforations or slits are formed in the backing layer, this may be accompanied by undesirable air leakage into the dressing and system, resulting in a loss of stability of the treatment and system. However, the backing layer must still be sufficiently flexible to allow the dressing to adapt to the user's movement or flexion of a joint, such as the knee.

[0021] In an embodiment, the backing layer comprises a thermoplastic elastomer, preferably a thermoplastic polyurethane.

[0022] Such layers are associated with softness and flexibility.

[0023] As noted above, the NPWT dressings of the present disclosure include an absorbent structure disposed between a backing layer and an adhesive skin contact layer. Typically, the backing layer and the adhesive skin contact layer are configured to extend beyond the periphery of the absorbent structure to form a border that follows the contours of the absorbent structure.

[0024] In a preferred embodiment, the adhesive skin contact layer contains a plurality of apertures in the areas underlying the absorbent structure, but is devoid of apertures in the areas forming the edge portions.

[0025] The apertures serve to improve absorption of wound exudate into the dressing and are therefore located in the areas where absorption occurs. Areas of the absorbent layer forming the edge portions of the dressing are preferably devoid of apertures. In this way, adhesion to the skin is enhanced and the residual capacity of the dressing is thereby extended.

[0026] The absorbent structure is preferably configured to not only optimize distribution of wound exudate within the dressing, but also ensure removal of the exudate towards a remotely located fluid collection means. The inventors have discovered that the absorbent structure can be designed to achieve an appropriate liquid distribution balance between the dressing and the remote fluid collection means, both of which serve as liquid "compartments" for holding and storing liquid.

[0027] In an embodiment, the absorbent structure has a density of 10 to 20 mg / cm 2 , preferably 13 to 17 mg / cm 2 The amount of superabsorbent particles included in the absorbent structure is:

[0028] The inventors have found this range to be beneficial for dressings according to the present disclosure. Such an absorbent structure absorbs exudate at a "reasonable" level. If too much SAP is included, the SAP layer may swell and absorb too much too quickly. This can have the effect of the dressing acting as the sole or at least predominant means for fluid collection. In the context of the present disclosure, the balance between the remotely located fluid collection means, e.g., a canister, and the dressing (also considered a fluid collection means) is preferably 50:50, e.g., at least 40:60 or 60:40. This liquid distribution balance is important for improving the wear time of the dressing.

[0029] In an embodiment, the absorbent structure comprises a first liquid spreading layer, a superabsorbent layer and a second liquid spreading layer, the superabsorbent layer being disposed between the first and second liquid spreading layers.

[0030] The first liquid spreading layer is configured to absorb and distribute fluid flowing from the wound site. The liquid spreading layer distributes and spreads wound exudate evenly over a large surface area so that it can be absorbed by the superabsorbent layer. The second liquid spreading layer distributes the exudate evenly and allows a larger surface area from which the exudate can evaporate from the backing layer.

[0031] In an embodiment, the absorbent structure is embossed.

[0032] The embossed absorbent structure improves the fluid handling properties of the dressing and contributes to a balanced and more controlled spreading of wound exudate within the dressing. Furthermore, the embossed absorbent structure allows the dressing to retain its shape and thinness while also remaining flexible. Enhanced spreading and distribution of exudate is achieved within the compressed areas of the structure.

[0033] In embodiments, at least a portion of the backing layer and the absorbent structure include an opening, the opening being located below the joining member.

[0034] This is to ensure fluid communication between the wound site and the tubing of the dressing, and therefore also between the wound site and the remotely located fluid collection means.

[0035] In an embodiment, the dressing further includes a liquid spreading layer disposed between the backing layer and the absorbent structure, the liquid spreading layer configured to extend over at least 90% of the surface area of the absorbent structure and lacking openings.

[0036] The liquid spreading layer is a continuous layer that extends substantially throughout the entire absorbent structure. The liquid spreading layer serves several functions within the dressing of the present disclosure. First, it improves spreading and distribution of wound exudate within the dressing, providing a larger surface area from which exudate can evaporate from the dressing (through the backing layer). In this way, the larger surface area of the liquid spreading layer can "compensate" for the lower moisture vapor transmission rate (MVTR) of the backing layer.

[0037] Furthermore, the liquid spreading layer is believed to contribute to a controlled and balanced distribution of liquid between the dressing and a remote fluid collection means, optimizing the dressing's ability to function as a fluid collection means while still allowing removal and transport of a substantial portion of the exudate from the dressing using tubing.

[0038] Another advantage is that the liquid spreading layer improves distribution of potential "backflow" exudate, i.e., exudate flowing in the opposite direction (from the tubing to the dressing), which can occur, for example, if the dressing becomes separated from the negative pressure source and / or remote fluid collection means.

[0039] The dressing may further include a transmission layer disposed between the adhesive skin-contacting layer and the absorbent structure, the transmission layer including a spacer fabric.

[0040] The transmission layer serves to facilitate the transmission of negative pressure from the negative pressure source to the wound site.

[0041] According to a second aspect, - a negative pressure wound therapy (NPWT) dressing as described above; a negative pressure source; a remote fluid collection means fluidly connected to the negative pressure source and the dressing; A negative pressure wound therapy (NPWT) system is provided, including:

[0042] In an embodiment, the remote fluid collection means is a canister, and the canister and negative pressure source are located within the same device; the device includes a housing within which the negative pressure source is located, and the canister is releasably connected to the housing.

[0043] The detachable configuration allows a user or caregiver to remove the canister, empty the collected liquid, and then reattach the canister to the housing.

[0044] In an embodiment, the NPWT system includes a means for supplying air to the dressing during operation at a flow rate of 2-7 ml / min.

[0045] A small and controlled inflow of air can be beneficial to more efficiently draw fluid from the wound site and transport the fluid to a remotely located fluid collection means, such as a canister. The introduction of air helps to dissipate potential exudate blockages or fluid columns that may form within the tubing.

[0046] In other words, air is supplied to the dressing using the air conduit at a controlled, relatively low rate in a manner that overcomes problems associated with liquid columns and clogging of the tubing. Thus, the air also helps deliver the desired pressure level to the wound. If too much air is introduced, this can have a negative impact on the stability of the system, and typically the pump will be operated at a higher frequency.

[0047] According to a third aspect, there is provided a kit comprising a negative pressure wound therapy (NPWT) dressing as described above.

[0048] Further features and attendant advantages of the present disclosure will become apparent upon review of the appended claims and the following description, and those skilled in the art will recognize that different features of the present disclosure may be combined to create embodiments other than those described below without departing from the scope of the present disclosure.

[0049] The various aspects of the present disclosure, including its particular features and advantages, will be readily understood from the following detailed description and the accompanying drawings. [Brief explanation of the drawings]

[0050] [Figure 1] FIG. 1 illustrates a dressing according to an exemplary embodiment of the present disclosure. [Figure 2a] FIG. 2a shows a partial cross-sectional view of the dressing of FIG. 1 with the connecting members and tubing removed. [Figure 2b] FIG. 2b shows an exploded view of a dressing according to an exemplary embodiment of the present disclosure. [Figure 3] FIG. 3 conceptually illustrates a negative pressure wound therapy (NPWT) system according to an exemplary embodiment of the present disclosure. [Figure 4] FIG. 4 illustrates a negative pressure wound therapy (NPWT) kit according to an exemplary embodiment of the present disclosure. [Figure 5] FIG. 5 shows the average time between pump actuations, Toff, measured for coatings according to embodiments of the present disclosure compared to a reference coating. [Figure 6] FIG. 6 shows the liquid distribution between the canister and three different coating materials (Coating D, Coating C, and Coating A, respectively). [Figure 7a] FIG. 7a is a photograph of the first dressing (D) after exposure to the test liquid during the seven day test period. [Figure 7b] FIG. 7b is a photograph of a second dressing (Dressing C) after exposure to the test liquid during the 7 day test period. [Figure 7c] FIG. 7c is a photograph of a third dressing (Dressing A) after exposure to the test liquid during the 9 day test period. [Figure 8a] FIG. 8a shows a photograph of a dressing according to a preferred embodiment of the present disclosure (Dressing A) compared to a reference dressing (Dressing E) after exposure to a liquid, viewed from the backing layer of the dressing. [Figure 8b]FIG. 8b shows a photograph of a dressing according to a preferred embodiment of the present disclosure (Dressing A) compared to a reference dressing (Dressing E) after exposure to a liquid, viewed from the transmission layer when the adhesive skin contact layer was removed. DETAILED DESCRIPTION OF THE INVENTION

[0051] The present disclosure will now be described more fully hereinafter with reference to the accompanying drawings, in which presently preferred embodiments of the disclosure are shown. However, the present disclosure may be embodied in many different forms and should not be construed as limited to the embodiments set forth herein. Rather, these embodiments are provided for completeness and completeness, so as to fully convey the scope of the disclosure to those skilled in the art. Like reference characters refer to like elements throughout.

[0052] 1 and 2a show a negative pressure wound therapy (NPWT) dressing 100 according to an exemplary embodiment of the present disclosure. The NPWT dressing 100 includes a backing layer 101, an adhesive skin contact layer (see 102 in the figures), and an absorbent structure 103 disposed between the backing layer 101 and the adhesive skin contact layer; the adhesive skin contact layer is configured to adhere the dressing 100 to the skin surface, and the backing layer 101 includes a coupling member 104 including tubing 105 configured to connect the dressing 100 to a negative pressure source and a remote fluid collection means. The backing layer 101 has a tensile strength of 500 to 3500 g / m as measured according to NWSP070.4R0(15). 2 / 24h moisture vapor transmission rate (MVTR) in the range.

[0053] As used herein, the term "negative pressure wound therapy dressing" refers to a dressing for use in negative pressure wound therapy. In the context of this disclosure, "negative pressure wound therapy" refers to therapy that utilizes a negative pressure source (e.g., a vacuum pump) to remove excess fluid from a wound. The wound may be an open wound or may be a closed wound, i.e., a closed surgical incision; therefore, the term also encompasses the application of "topical negative pressure (TNP) therapy," a term often used in connection with closed incisions.

[0054] The NPWT dressing 100 of the present disclosure includes an absorbent structure, which may also be referred to as a "wound pad." NPWT dressings are commonly referred to as "bordered dressings." The backing layer 101 and adhesive skin-contacting layer are arranged to extend beyond the contours of the absorbent structure 103 to form a border portion 108.

[0055] As used herein, the term "skin surface" means the skin of the wearer. The skin may include a wound to be treated, such as an open or closed wound.

[0056] "Moisture Vapor Transmission Rate (MVTR)" is the rate at which a backing layer allows moisture to penetrate through it. Moisture Vapor Transmission Rate is measured by standard method NWSP070.4R0(15). MVTR is measured at a temperature of 38°C.

[0057] The moisture vapor transmission rate (MVTR) of the backing layer 101 is 500 to 3500 g / m when measured according to NWSP070.4R0(15). 2 / 24h, preferably 600 to 2700, for example 1400 to 2600 g / m 2 / 24h range.

[0058] This range has been shown to unexpectedly produce positive effects when the dressing is used in wound treatment. More stable treatment is observed with less frequent activation of the negative pressure source, yet exudate fluid collected within the dressing can still be successfully evaporated from the backing layer into the surrounding environment. Overall, this provides positive effects in terms of battery drain, reduced noise, and longer and more stable wound treatment.

[0059] The NPWT dressing 100 of the present disclosure is adapted for use in an NPWT system that includes a remote fluid collection means. As used herein, the term "remote fluid collection means" means that the fluid collection means is located a distance from the dressing, e.g., between the dressing and the negative pressure source, or is connected to the negative pressure source. The negative pressure source and fluid collection means may also be located within the same NPWT device.

[0060] When the dressing 100 of the present disclosure is utilized in a NPWT system that includes a remotely located fluid collection means, wound exudate is drawn from the wound site using tubing 105 to the fluid collection means.

[0061] Continuous (or intermittent) removal of exudate through tubing requires that the NPWT source, i.e., vacuum pump, be operated at regular intervals. However, if the pump is operated too frequently and at a "faster than necessary" speed, this can have negative consequences in terms of noise and battery drain. The dressing 100 of the present disclosure has shown at least a 26% reduction in pump operation, as demonstrated in Example 1 below.

[0062] The tubing 105 can include a fluid conduit 106 configured to remove fluid from the dressing and an air conduit 107 configured to supply air to the fluid conduit 106 and / or the dressing 100. Additionally, the tubing 105 is configured to deliver negative pressure to the dressing and wound site.

[0063] The tubing 105 and / or the coupling member 104 may be any suitable flexible tubing made from an elastomeric and / or polymeric material. The tubing is attached to the coupling member 104. In an embodiment, the tubing 105 is rigidly attached to the coupling member 104. In an alternative embodiment, the tubing 105 is releasably attached to the coupling member 104.

[0064] The coupling member 104 typically includes an attachment portion configured to be attached to the backing layer of the dressing. The coupling member may be adhesively attached to the backing layer. The coupling member may also include a fluid inlet and a fluid outlet configured to be coupled to the tubing 105, i.e., the air conduit 107 and the fluid conduit 106, respectively.

[0065] The connecting member may have a structure as defined in EP application no. 13152841.6.

[0066] In an embodiment, the distal end of tubing 105 is coupled to a first connector portion 109. First connector portion 109 is configured to couple to a second connector portion associated with a remote fluid collection means, such as a canister, and in an embodiment, a negative pressure source (see, e.g., FIG. 4 , which illustrates second connector portion 123 associated with a canister).

[0067] In an embodiment, the backing layer 101 has a tensile strength in the machine direction (MD) and / or cross machine direction (CD) of 30 to 70 MPa, preferably 35 to 55 MPa, as measured according to ISO 527-3 / 2 / 200. The tensile strength is measured on 15 mm wide strips.

[0068] Thus, the backing layer 101 has sufficient "strength" to withstand the forces exerted on it as the patient moves, yet allows flexibility and sufficient stretchability.

[0069] The backing layer 101 typically comprises a thermoplastic elastomer, which has the ability to be stretched to a moderate elongation and return to its original shape upon stress removal. Examples of suitable materials that comprise a thermoplastic elastomer include polyurethane, polyamide, and polyethylene.

[0070] The backing layer may also be a laminate of a polyester-based nonwoven material and at least one polyurethane film.

[0071] Preferably, the backing layer comprises a thermoplastic polyurethane.

[0072] The thickness of the backing layer may be in the range of 10 to 40 μm, preferably 15 to 30 μm.

[0073] The backing layer 101 can include at least one film. For example, the backing layer can include two or more films. In embodiments, the backing layer is a laminate formed by two or more films. A thin layer of adhesive, such as a polyacrylate adhesive, can be applied to the backing layer to attach the backing layer to the adhesive skin-contact layer and / or any other layers of the absorbent structure or dressing. Within the framework of the present disclosure, the backing layer 101 includes at least one film comprising a thermoplastic elastomer and an adhesive (e.g., polyacrylate) applied thereon. The adhesive can be applied in a continuous or discontinuous pattern.

[0074] 2a and 2b show an exemplary dressing of the present disclosure that includes multiple layers.

[0075] The backing layer 101 is the outermost layer of the dressing and is configured to face away from the wearer's skin.

[0076] The absorbent structure 103 is disposed between a backing layer 101 and an adhesive skin contact layer 102. The backing layer 101 and the adhesive skin contact layer 102 are configured to extend beyond the periphery of the absorbent structure 103 to form an edge portion 108 that follows the contour of the absorbent structure 103. In other words, the dressing comprises a pad portion and an edge portion 108. The pad portion comprises the absorbent structure 103 and, in embodiments, an additional dressing layer.

[0077] In a preferred embodiment, the adhesive skin contact layer 102 includes a plurality of apertures 110 in the area underlying the absorbent structure 103, but is free of apertures in the area forming the edge portion 108.

[0078] The absence of apertures in the edge portion of the dressing is beneficial for improving adhesion at the edge portion 108 of the dressing, thus improving the dressing's retention ability.

[0079] The adhesive skin contact layer 102 is the bottom layer of the dressing. The adhesive skin contact layer 102 is configured to releasably adhere the dressing to the skin surface. In other words, the adhesive skin contact layer 102 is configured to contact the wearer's skin or wound. This layer may also be referred to as the "wound contact layer" or "skin contact layer."

[0080] The adhesive skin-contact layer 102 preferably comprises a silicone-based adhesive, i.e., a silicone gel. Adhesive skin-contact layers comprising silicone gel are gentle on the skin and are easily removed without causing trauma. The adhesive skin-contact layer is configured to adhere sufficiently to the skin so that the dressing remains in place and maintains its adhesion even after repeated removal and reapplication.

[0081] 2a, the adhesive skin-contact layer 102 can include two layers. For example, the adhesive skin-contact layer 102 can include a polymer-based film 102a and a silicone gel layer 102b, where the silicone gel layer 102b is configured to contact the wearer's skin.

[0082] The polymer-based film 102a is preferably a breathable film and may contain, for example, polyethylene, polyamide, polyester, or polyurethane. Preferably, the polymer-based film contains polyurethane. The thickness of the polyurethane film may be 15 to 100 μm, for example, 20 to 80 μm, and preferably 20 to 60 μm.

[0083] Examples of silicone gels suitable for use in the adhesive skin contact layer 102 and / or silicone gel layer 102b include the two-component RTV systems described herein, such as Q72218 (Dow Corning) and SilGel 612 (Wacker Chemie AG), as well as NuSil silicone elastomers. In embodiments of the present invention, the adhesive can comprise a soft silicone gel having a softness (penetration) of 8 to 22 mm, e.g., 12 to 17 mm, as measured by methods based on ASTM D 937 and DIN 51580, as described in European Patent Application No. 14194054.4. The adhesive skin contact layer typically has a thickness of at least 20 μm. The adhesive skin contact layer may also have a thickness of 100 to 200 μm.

[0084] The apertures 110 in the adhesive skin-contact layer 102 are configured to extend through the polymer film 102a (if present) and the silicone gel layer 102b.

[0085] In embodiments, the absorbent dressing has a solubility of 300 to 700 mg / cm as measured by the test method described in Example 3. 2 , preferably 400 to 600 mg / cm 2 It has the ability to hold.

[0086] The inventors have discovered that the retention capacity of the dressing is important to ensure that a balanced liquid distribution between the two fluid collection means (the dressing and, e.g., the canister) is achieved. This improves the wear time of the dressing. If the dressing absorbs wound exudate too quickly and too much, less exudate will be transferred to the remote fluid collection means. In this situation, the dressing acts as the dominant fluid collection means, which can result in a reduced wear time for the dressing and requires more frequent dressing changes. In contrast, if too much exudate is transferred to the remote fluid collection means, e.g., the canister, the canister may need to be emptied and changed too frequently.

[0087] The dressings of the present disclosure are configured to store 35-65%, for example 40-60%, of the wound exudate and remove 35-65%, for example 40-60%, of the wound exudate from the dressing to a remote fluid collection means.

[0088] The liquid distribution between the dressing and the canister is preferably 40:60 to 60:40, and the inventors have found that such a distribution can be maintained for up to 9 days of treatment without the need to change the dressing (see Example 2).

[0089] The absorbent structure 103 is configured to absorb wound exudate and efficiently distribute such wound exudate, thus controlling the transport of the liquid to the canister using the tubing 105 while also acting as a temporary reservoir for holding and distributing the exudate.

[0090] The absorbent structure 103 may include one or more layers, where at least one of the layers is a superabsorbent layer 103a that includes superabsorbent polymers (SAPs).

[0091] A "superabsorbent polymer" or "SAP" is a polymer capable of absorbing up to 300 times its own weight in aqueous fluids. Superabsorbent polymers are composed of water-swellable, water-insoluble polymers that have the ability to absorb large amounts of fluid upon formation of a hydrogel. Superabsorbent polymers for use in accordance with the present disclosure can be inorganic or organic cross-linked hydrophilic polymers, such as polyvinyl alcohol, polyethylene oxide, cross-linked polyacrylates, and the like. Typically, superabsorbent polymers (SAPs) include sodium acrylate. SAP materials are in the form of particles, fibers, flakes, or the like. Preferably, the SAP material is in the form of superabsorbent polymer (SAP) particles. The size of the superabsorbent particles can range from 45 to 850 μm, preferably from 150 to 600 μm.

[0092] In an embodiment, the absorbent structure has a density of 10 to 20 mg / cm2 , preferably 13 to 17 mg / cm 2 containing superabsorbent particles in an amount of

[0093] The inventors have found this range to be beneficial for the dressings of the present disclosure. Such an absorbent structure absorbs exudate at a "reasonable" level. If too much SAP is included, the SAP layer may swell and absorb too much and too quickly. This can have the effect of the dressing acting as the sole, or at least predominant, fluid collection means. In the context of the present disclosure, the balance between the remotely located fluid collection means, e.g., a canister, and the dressing (also considered a fluid collection means) is preferably 50:50, e.g., at least 40:60 or 60:40. As mentioned above, this balance is important for improving the wear time of the dressing.

[0094] The absorbent structure 103 preferably has a mass of 250 to 550 g / m 2 , preferably 350 to 450 g / m 2 In this way, fluid distribution is controlled and the right balance between fluid absorption and fluid removal from the dressing is observed. Additionally, the dressing is flexible and can better adapt to the wearer's movements.

[0095] The absorbent structure 103 can include one or more layers, where at least one layer is a superabsorbent layer.

[0096] Preferably, the absorbent structure comprises at least one superabsorbent layer 103a and at least one liquid spreading layer.

[0097] As shown in Figure 2b, the absorbent structure 103 comprises three layers 103a-c.

[0098] The bottom layer 103b of the absorbent structure 103 is the liquid spreading layer 103b. Exudate from the wound site entering the liquid spreading layer 103b is evenly distributed before entering the other layers of the absorbent structure 103, thus creating a greater surface area towards the superabsorbent layer 103a and other layers of the absorbent structure 103 and / or the dressing 100.

[0099] The absorbent structure 103 comprises a first liquid spreading layer 103b, a superabsorbent layer 103a and a second liquid spreading layer 103c, with the superabsorbent layer 103a disposed between the first and second liquid spreading layers 103b, 103c.

[0100] The first and / or second liquid spreading layers may comprise any material capable of efficiently distributing exudate, for example, the first and / or second liquid spreading layers may comprise a nonwoven material.

[0101] In embodiments, a first liquid spreading layer 103b is disposed below the superabsorbent layer 103a and has a greater liquid spreading capacity than the second liquid spreading layer 103c. In this manner, an absorbent structure with a liquid spreading gradient is achieved, which affects the absorbent structure's 103's ability to retain and remove liquid from and within the dressing, respectively.

[0102] For example, the first liquid spreading layer 103b may include a nonwoven fabric. 2 (gsm), e.g. 30-40g / m 2 The liquid spreading layer 103b may have a grammage in the range of 0.2 to 1.2 mm, for example 0.2 to 0.6 mm. The thickness is measured under dry conditions.

[0103] The second liquid spreading layer 103c can be a tissue or nonwoven layer. Typically, the upper layer 103c has a lower spreading capacity than the lower liquid spreading layer 103b.

[0104] Layer 103c also serves to prevent leakage of SAP particles from superabsorbent layer 103a. The SAP particles in superabsorbent layer 103a chemically bond with exudate that enters superabsorbent layer 103a, thereby forming an aqueous gel. Layer 103c prevents the gelling particles from migrating toward backing layer 101 and toward connecting member 104, including tubing 105. This prevents undesirable blockage of gel particles within tubing 105. Preferably, layer 103c is a liquid spreading layer, which serves to create a larger indirect surface for dispensed liquid toward backing layer 101 of dressing 100. Layer 103c or 103b also serves as a "support layer" and serves as a carrier during the manufacturing process.

[0105] The various layers of the absorbent structure create a composite liquid absorption and retention structure, and improved liquid distribution is observed, specifically controlled distribution of exudate, which is retained and removed, respectively.

[0106] The absorbent structure 103 is preferably embossed. In other words, the surface of the absorbent structure 103 is structured and may include a plurality of depressions and ridges (not shown). This is beneficial because, with increasing basis weight, an absorbent structure 103 comprising multiple layers may become stiffer and thicker. The embossing allows the absorbent structure to retain its shape and thickness while remaining flexible. The embossed absorbent structure also ensures controlled spreading of wound exudate within the dressing 100. Enhanced spreading and distribution of exudate is obtained within the compressed areas of the structure.

[0107] The superabsorbent layer 103a can be an airlaid superabsorbent layer. In embodiments, the airlaid superabsorbent layer 103a comprises superabsorbent particles, cellulosic fibers, and bicomponent fibers.

[0108] For example, the airlaid superabsorbent layer may include: - 30 to 50% by weight, preferably 35 to 50% by weight, of superabsorbent particles, - 30 to 50% by weight, preferably 40 to 50% by weight, of cellulosic fibers, - 3 to 10% by weight, preferably 5 to 8% by weight, of bicomponent fibers, - 3-8% by weight of polyethylene.

[0109] Such a superabsorbent layer allows for improved fluid handling properties and proper fluid distribution. Additionally, it prevents gel blockage and prevents the absorbent structure from collapsing when handling large volumes of fluid.

[0110] The bicomponent fibers act as a bonding agent and maintain the shape of the SAP layer, especially in wet conditions. The bicomponent fibers may be made of polyethylene and polyethylene terephthalate (PE / PET).

[0111] The thickness of the superabsorbent layer 103a may be between 0.8 and 2.5 mm, for example between 1.4 and 2.2 mm, for example between 1.8 and 2.0 mm. The thickness is measured under dry conditions.

[0112] In an embodiment, the absorbent structure 103 includes additional layers.

[0113] As shown in Figures 2a and 2b, the backing layer 101 and at least a portion of the absorbent structure 103, if present, include openings 111 located below the bonding members 104. In Figure 2b, the absorbent structure 103 includes three layers, each including one opening. However, it is equally conceivable to have one opening in only one layer or in two layers of the absorbent structure 103.

[0114] The opening ensures fluid communication between the wound site and the remotely located fluid collection means, which also allows for the delivery of negative pressure to the wound site.

[0115] The coupling members 104 overlie openings 111 in the backing layer (as best seen in Figure 2b).

[0116] The dressing 100 may further include a liquid spreading layer 112 disposed between the backing layer 101 and the absorbent structure 103, wherein the liquid spreading layer 112 is configured to extend over at least 90% of the surface area of the absorbent structure 103 and is free of apertures. If the absorbent structure 103 includes two liquid spreading layers (103b, 103c), the liquid spreading layer 112 on top of the absorbent structure may be referred to as the third liquid spreading layer.

[0117] Preferably, the liquid spreading layer 112 is configured to extend across the entire surface area of the absorbent structure 103. Thus, the liquid spreading layer 112 and the absorbent structure 103 have the same outer dimensions and cross-sectional area. The liquid spreading layer 112 does not have any openings formed therein.

[0118] The liquid spreading layer 112 is configured to improve spreading of wound exudate and to create a larger surface area through which moisture can evaporate through the backing layer 101 .

[0119] The liquid spreading layer 112 is preferably hydrophilic and porous, so that exudate can be efficiently transported from the wound site through the liquid spreading layer 112 to the tubing 105. Because the liquid spreading layer 112 does not contain any openings, gelling particles and larger unwanted particulates are prevented from entering the tubing 105 of the dressing 100.

[0120] The fluid spreading layer 112 can be a fibrous material, such as a nonwoven, that can provide a good balance of stiffness to the layer and the dressing. The nonwoven fluid spreading layer 112 has the ability to distribute fluid throughout the bulk of the material and transport exudate in a controlled manner to the tubing 105 connecting the dressing to a remotely located fluid collection means.

[0121] The fluid spreading layer 112 helps to move fluid away from the wound site and away from the absorbent structure 103, while ensuring that maximum absorption capacity of the absorbent dressing is utilized.

[0122] The liquid spreading layer 112 is also beneficial for spreading potential exudate flowing from the fluid conduits 106 toward the dressing, i.e., exudate flowing in the "wrong" direction. Backflow of exudate can occur when the person wearing the dressing disconnects the dressing from the negative pressure source and fluid collection means. For example, a patient may disconnect the NPWT dressing when showering or getting dressed. The liquid spreading layer 112 ensures that any backflow of exudate is spread rather than flowing back toward the wound site in one place. In this way, the wound site can be kept relatively dry.

[0123] The liquid spreading layer 112 may comprise a meltblown, spunbonded or spunlaced nonwoven. Examples of suitable polymers for use in the nonwoven liquid spreading layer 112 include polyethylene, polyester, polypropylene and other polyolefin homopolymers and copolymers. For example, a nonwoven web comprising thermoplastic fibers of polypropylene and polyethylene fibers or mixtures thereof may be used. The web may have a high thermoplastic fiber content and contain at least 50%, for example at least 70%, thermoplastic fibers. The nonwoven may be a blend of polyester and viscose, for example in a 70:30 ratio. The basis weight of the nonwoven may be between 10 and 80 g / m 2 , for example, 20 to 50 g / m 2 The liquid spreading layer can also be a spunbond-meltblown or spunbond-meltblown-spunbond (SMS) web.

[0124] The dressing 100 can further include a transmission layer 113 disposed between the adhesive skin-contacting layer 102 and the absorbent structure 103. The transmission layer 113 can include foam, needle-punched nonwoven, through-air-bonded nonwoven, or spacer fabric. The transmission layer 113 is not limited to a particular material and can be any material configured to reliably transmit negative pressure to the wound area in both wet and dry conditions. The transmission layer 113 ensures that fluid can be transported away from the wound site and into the absorbent structure so that the skin can remain relatively dry.

[0125] Preferably, the transmission layer 113 comprises a spacer fabric, which is a three-dimensional material often utilized in negative pressure wound therapy (NPWT) dressings.

[0126] In an embodiment, the spacer fabric layer has a thickness of 1.5 to 4 mm, for example 2 to 3 mm. The thickness is measured under dry conditions. The basis weight of the spacer fabric is 150 to 500 g / m 2 (gsm), e.g. 200-350g / m 2 (gsm), can be.

[0127] The spacer fabric layer 113 generally includes a top layer and a bottom layer and an interconnected layer of pile filaments between the top and bottom layers. The interconnected layer of pile filaments may have a fineness of 200 to 500 denier, for example, 250 to 350 denier.

[0128] The spacer fabric layer 113 is configured to have high compressive strength to withstand the pressure exerted on the dressing during use, and after a compressive force is applied to the dressing, the transmission layer 113 is configured to quickly return to its original shape after the force is removed.

[0129] In an embodiment, the dressing includes a plurality of adhesive stripes 114 between the transmission layer 113 and the absorbent structure 103 .

[0130] The adhesive stripe 114 is configured to stop the flow of exudate towards the coupling member 104 and tubing 105. As previously mentioned, the dressing 100 of the present disclosure preferably has a structure that allows for a proper and substantially equal balance between the remotely located fluid collection means and the dressing. Preferably, approximately 40-60% of the wound exudate is managed by the dressing, while 40-60% is transported to the canister.

[0131] As wound exudate flows from the wound site, it is first addressed by the permeable layer 113, and upon exiting the permeable layer 113, the adhesive stripes 114 serve to direct the exudate into the overlying absorbent structure 103 rather than directly towards the tubing 105. The inclusion of the adhesive stripes 114 may thus contribute to the desired distribution of wound exudate between the remotely located canister and the dressing. The area below the opening 111 preferably does not include any adhesive stripes to prevent clogging and blockage of the tubing 105 and connecting member 104.

[0132] By "multiple stripes" it is meant that the dressing includes at least two adhesive stripes. For example, the dressing can include 2-10, such as 2-6 adhesive stripes, depending on the size of the dressing and the width of the stripes.

[0133] The adhesive stripes 114 may be positioned across the width of the dressing 100. Thus, the adhesive stripes 114 may be positioned to extend between the side edges of the transmission layer 113 and / or the absorbent structure 103. The stripes are preferably positioned perpendicular to the flow path of exudate towards the tubing 105. Thus, the adhesive stripes 114 are positioned in such a way that exudate entering the dressing must always encounter the adhesive stripes 114 as it flows towards the tubing 105.

[0134] The adhesive is preferably a hot melt adhesive.The width of the adhesive stripe may be in the range of 3 to 25 mm, such as 5 to 15 mm, for example 6 to 10 mm.

[0135] The distance between the adhesive stripes 114 may be between 10 and 50 mm, for example between 15 and 30 mm. The distance between the adhesive stripes 114 may depend on the size and shape of the dressing 100.

[0136] The transmission layer 113, absorbent structure 103 and fluid spreading layer 112 may be collectively referred to as the wound pad of the dressing.

[0137] FIG. 3 conceptually illustrates a negative pressure wound therapy (NPWT) system according to the present disclosure.

[0138] The negative pressure wound therapy (NPWT) system 300 includes a NPWT dressing 100 according to the present disclosure. The dressing 100 is applied to the knee of a patient 115.

[0139] The NPWT system 300 includes: - a negative pressure wound therapy (NPWT) dressing 100 as described herein above; and a negative pressure source; A remote fluid collection means 117 fluidly connected to the negative pressure source and the dressing 100.

[0140] The negative pressure source is a negative pressure pump adapted to establish a negative pressure when the pump is in an activated state. The negative pressure pump can be any type of pump that is biocompatible and maintains or draws an appropriate, therapeutically effective vacuum level. Preferably, the negative pressure level to be achieved is within the range of about -20 mmHg to about -300 mmHg. In embodiments of the present disclosure, a negative pressure range of about -80 mmHg to about -180 mmHg, preferably about -100 mmHg to about -150 mmHg, and more preferably about -110 mmHg to about -140 mmHg, is used. In embodiments, the negative pressure pump is a diaphragm or peristaltic pump.

[0141] The term "fluidly connected" as used herein should be interpreted broadly and may include, for example, any form of tubing, conduit, or pathway that provides fluid connection / communication between the remote fluid collection means 117 and the negative pressure source and dressing 100.

[0142] The remote fluid collection means 117 can be any type of fluid container, such as a canister. Alternatively, it can be an absorbent material present inside the tubing of the NPWT dressing or NPWT system, or an absorbent structure disposed between the dressing or dressing of the present disclosure and the canister. Typically, the remote fluid collection means 117 is a canister.

[0143] 3, the negative pressure source is contained within a housing 116 of a portable negative pressure wound therapy (NPWT) device 118. The canister is preferably releasably coupled to the housing 116.

[0144] In other words, the canister 117 is releasably coupled to the housing 116. The releasable coupling may be by conventional means including a friction fit, a bayonet coupling, a snap fit, a locking tab connector, etc. The releasable configuration allows a user or caregiver to remove the canister 117, empty the collected liquid, and then reattach the canister 117 to the housing 116.

[0145] Canister 117 may be formed, for example, from molded plastic, etc. Canister 117 is preferably at least partially transparent / translucent to allow viewing of the interior of canister 117 to aid a user in determining the remaining capacity of canister 117.

[0146] For example, the internal volume of the canister 117 is 30 to 300 ml, for example, 40 to 150 ml. 117 The internal volume of the canister 117 may vary depending on the type of wound. In an embodiment, the canister 117 contains a liquid-absorbent material. In a contemplated embodiment, the canister 117 At least 75% of the interior volume of the container is occupied by liquid-absorbent material.

[0147] The NPWT device 118 uses the tubing 105 to 1003, the NPWT system includes a connector unit 119 located between the dressing 100 and the NPWT device 118. The connector unit 119 can include a first connector portion (labeled 109 in FIG. 1) and a second connector portion (see 123 in FIG. 4). The connector portions 109 and 123 are preferably releasably connected so that the dressing can be disconnected from the NPWT device 118. This is beneficial in a portable NPWT system, as a user may decide to disconnect the dressing from the device 118 when they want to shower or for some other reason.

[0148] 3, tubing 105 is a dual conduit, while the second tubing 120 between the NPWT device 118 and the connector 119 is a single conduit. The NPWT system is by no means limited to such a configuration and may include a single conduit or dual conduits between the NPWT device 118 and the dressing 100. The NPWT system is similarly not limited to the use of a connector unit 119. The tubing 105, in embodiments, may be configured to extend all the way to the NPWT device 118.

[0149] The NPWT system 300 preferably includes a means for supplying air to the dressing during operation at a flow rate of 2-7 ml / min.

[0150] Preferably, the means for supplying air to the dressing is configured to supply air at a rate of 2 to 7 ml, preferably 3 to 5 ml, at a negative pressure of -80 to -150 mmHg, preferably -100 to -130 mmHg.

[0151] 3, ambient air is introduced into the system using connector unit 119 (indicated by arrow 121). For example, the first and / or second connector portions (109 and 123) may include an air filter (not shown) configured to control the supply of air into the dressing 100 and / or into the tubing 105. The first and / or second connector portions (109 and 123) may include, for example, an intake port with an air filter disposed therein.

[0152] The air filter preferably comprises a hydrophobic porous material, wherein the pore size is in the range of 2 to 20 μm, preferably in the range of 5 to 12 μm. The pore size of the filter is measured in the uncompressed state.

[0153] The air filter preferably comprises polyethylene, preferably sintered polyethylene.

[0154] Sintered polyethylene filters have a repeating linear molecular structure: -CH2-CH2. This structure, combined with strong molecular bonds, makes them inert and offers improved chemical resistance, lightweight properties, thermoplasticity, and excellent filtration properties. Sintered polyethylene filters are also environmentally friendly, producing no toxic waste and being washable and reusable.

[0155] The air filter ensures that during operation the air supply is within the range of 2-7 ml / min at a negative pressure of, for example, -80 mmHg to -150 mmHg, e.g., -100 mmHg to -130 mmHg.

[0156] It should be noted that air can be introduced into the system in alternative ways and that the system can be equipped with air filters at alternative locations. Regulation of the air supply can, in embodiments, be controlled by the NPWT device 118.

[0157] During use, the dressing 100 is placed at a user / patient's wound site, forming an enclosed space. Tubing (105 and 120) is provided to fluidly connect the dressing 100 to a NPWT device 118, e.g., an inlet port of the NPWT device 118. The NPWT device 118 is then activated by the user / patient, e.g., by pressing the start / pause button 122. This activates the negative pressure pump. Once activated, the negative pressure pump will begin to evacuate air through the enclosed space formed by the canister 117, the tubing (120 and 105), and the dressing 100, thus creating negative pressure within the enclosed space. If fluid forms at the wound site, this fluid from the wound site may be at least partially "pulled" from the wound site through the tubing (105 and 120) and into the canister 117. The amount of liquid or exudate drawn from the wound and collected in the canister 117 will depend on the wound being treated and the type of wound dressing being used. For example, depending on the absorption capacity of the dressing 100, more or less exudate will be drawn into the canister. Within the framework of this disclosure, a substantially equal balance between liquid distribution is desired. A suitable filter member (not shown) can be positioned between the canister 117 and the negative pressure pump to ensure that no liquid can pass from the canister 117 to the negative pressure pump.

[0158] The canister 117 may include an inlet port to allow connection to the tubing 120. The connection between the inlet port and the tubing 120 is preferably a sealed connection, thus ensuring that no leaks form at the inlet port during normal operation of the NPWT device 118. The tubing 120 is preferably releasably connected to the inlet port through conventional means, including a friction fit, a bayonet coupling, a snap fit, a locking tab connector, or the like. A similar sealed connection is formed between the canister 117 and the negative pressure pump.

[0159] 4 illustrates an exemplary embodiment of a kit 400. The kit 400 includes at least one NPWT dressing 100, as described above.

[0160] The dressing includes tubing 105. Preferably, the tubing 105 is pre-attached to the dressing using, for example, coupling members 104 attached to the backing layer of the dressing 100. The fact that the tubing 105 is pre-attached allows for quick assembly of the system / kit components.

[0161] The distal end of the tubing 105 is coupled to a first connector portion 109. The kit may further include a negative pressure source disposed within the housing 116. The kit may also include a canister 117. The canister may include second tubing 120. The distal end of the second tubing 120 may include a second connector portion 123. The second connector portion 123 is configured to couple to the first connector portion 109 associated with the tubing 105 of the dressing 100. The kit 400 may include additional components such as an additional battery 124 for powering the NPWT device 118 and an adhesive strip 125 for improving adhesion between an edge portion of the dressing and the wearer's skin.

[0162] The kit shown in Figure 4 is adapted for home care, but may be used advantageously in a hospital or nursing home environment as well. The NPWT device is adapted to be carried by a user, for example, in a pocket, on a belt, strap, or the like. The dressing 100 and other components of the kit 400 can be easily assembled by the user.

[0163] The components of kit 400 may vary. For example, one kit may include all of the components described above, while another kit may include only two or three components.

[0164] The kit 400 may include multiple NPWT dressings as described above, optionally packaged with multiple adhesive strips 125 .

[0165] Thus, the kit 400 includes the negative pressure wound treatment dressing described above and at least one additional component, where the additional component is selected from a negative pressure source, a canister 117, a battery 124 and / or an adhesive strip 125.

[0166] The NPWT device 118 used in the kits (and in the NPWT systems) of the present disclosure includes features and components necessary to control the operation of the device. For example, the NPWT device can include a control unit electrically connected to a battery. Such a control unit can include a microprocessor, a microcontroller, a programmable digital signal processor, or another programmable device. Additionally, the NPWT device 118 can include at least one pressure sensor disposed in fluid communication with the negative pressure pump. [Example]

[0167] Example 1: System stability comparison test Wear testing was conducted using a dressing according to the present disclosure (Dressing A) and a reference dressing (Dressing B). Dressings A and B were similar in construction, differing only in terms of the backing layer. From bottom to top, the dressings included an adhesive skin-contacting layer comprising a polyurethane film and a silicone gel layer, a spacer fabric transmission layer, an absorbent structure (comprising a nonwoven liquid spreading layer, the airlaid SAP layer described above, and a tissue layer), a nonwoven liquid spreading layer, and a backing layer, respectively. Both dressings included pre-attached tubing containing air and fluid conduits. The properties of the backing layers are listed in Table 1 below.

[0168] [Table 1]

[0169] The dressing was applied to the subject's anterior knee with the leg bent at 120 degrees (with the dressing tubing pointing upward). The tubing was connected to a mobile negative pressure device using the respective connectors shown in Figure 1. The pump used was a diaphragm pump. A canister configured to store 50 ml of liquid was connected to the pump, as shown in Figure 1. The connector attached to the distal end of the dressing tubing contained an air filter, and ambient air was introduced into the connector and system so that the air supply to the dressing (using the air conduit) was within 2-7 ml / min during operation.

[0170] The pump was activated, applying a negative pressure of -125 mmHg to the dressing. The time between pump activations, Toff, was recorded over the first 5 hours (0-5 hours and 3-5 hours, respectively) as an indication of the stability of the system and a means to ensure that unwanted air was not introduced into the system.

[0171] Tests were conducted on five subjects, and the average Toff was recorded over the periods 0-5 hours and 3-5 hours.

[0172] The average Toff was 26 seconds for Dressing B during the 0-5 hour period compared to 35 seconds for Dressing A, a 26% improvement. The improvement was even more significant during the 3-5 hour period, where Toff was 40% higher for the disclosed dressing. The results are shown in Figure 5 and Table 2 below. These results indicate that the properties of the backing layer have an effect on the stability of negative pressure wound therapy. The system is stable and airtight, and the pump does not have to work as hard.

[0173] [Table 2]

[0174] Example 2: Comparative Liquid Distribution Test To test the liquid distribution between the dressing and the canister, comparative tests were conducted using three absorbent dressings (Dressing A, Dressing C, and D, respectively).

[0175] Dressing A had the same structure as described above. Dressing C had the same layer structure as Dressing A, but the absorbent structure had a higher basis weight and was 1 cm 2 The amount of superabsorbent particles per bag and the holding capacity were varied.

[0176] Dressing D had the same overall layer structure but differed with respect to its absorbent structure. The absorbent structure of Dressing D included an absorbent layer containing 40% by weight superabsorbent fiber (SAF) and 60% by weight polyester (polyethylene terephthalate) fiber, as well as a nonwoven spreading layer. There were no superabsorbent particles present within the absorbent structure of Dressing D.

[0177] All dressings (A, C, and D) included a nonwoven liquid spreading layer disposed over the absorbent structure. The nonwoven liquid spreading layer contained 50% viscose fiber and 50% bicomponent fiber by weight. See Table 3 below for further details of the absorbent structure of the dressings.

[0178] [Table 3]

[0179] Retention capacity was measured as described in Example 3 below.

[0180] Pre-weighed dressings were attached to a Plexiglas plate larger than the dressing area. The Plexiglas plate had a hole for the liquid inlet. The dressings were positioned so that the liquid inlet was located within the center of the dressing. Each dressing included tubing connected to a mobile negative pressure device, as shown in Figure 1. The pump used was a diaphragm-type pump. A canister configured to store 50 ml of liquid was used and connected to the pump located inside the housing shown in Figure 1. As described above, the dressing and the NPWT device (including the canister and pump) were connected via their respective connectors. An air filter was placed inside the first connector attached to the dressing tubing. Ambient air was introduced into the connector so that the air supply to the dressing was within the range of 2 to 7 ml / min. The pump was activated, applying a negative pressure of -16665.3 Pa (-125 mmHg) to the dressing.

[0181] Test liquid (horse serum) was applied to the center of each dressing at a rate of 300 ml for 7 days (Dressings C and D) and 386 ml for 9 days (Dressing A). Negative pressure within the dressing was maintained at -125 mmHg (-16665.3 Pa) for the entire test period. After the test period, the wet weights of the dressings and canisters were recorded. The distribution of test liquid between each dressing and the canister was calculated.

[0182] As can be seen in Figure 6, the liquid distribution between Dressing A and the canister was 61:39, while for Dressing C, most of the liquid was kept within the dressing (90%) and only 10% was transferred to the canister. Dressing D had a dressing:canister liquid distribution of 34:66.

[0183] After the test period (7 and 9 days, respectively), photographs of the dressings were taken. As can be seen in Figure 7a, Dressing D had relatively low liquid distribution within the dressing structure. In other words, only a small portion of the dressing's absorption capacity was utilized. Instead, more of the exudate was transferred to the canister.

[0184] Figure 7b shows Dressing C, where most of the dressing was used. Although not clearly visible in this figure, the dressing had a bulky, "swollen" appearance.

[0185] Figure 7c shows Dressing A after 9 days of liquid exposure. Most of the dressing was used to handle the liquid, yet at least 40% of the exudate was still able to be transferred to the canister. The desired liquid distribution between the fluid collection means (dressing and canister) was thus achieved.

[0186] Example 3: Retention capacity of dressings Fluid retention capacity is defined as the ability of a dressing to retain liquid.

[0187] First, the dressing samples were evaluated for theoretical maximum absorption, which is the amount of liquid that the dressing can absorb when exposed to an excess of the test liquid and with no applied load.

[0188] Coating samples A, C, and D were cut to a predetermined size (5 x 5 cm = 25 cm) from the center of the coating (so that all layers present in the coating were used in the test). 2 ) was punched out.

[0189] The area and weight of the dry dressing samples (A, C, and D) were recorded. Each dressing sample was submerged in sufficient test liquid (horse serum) in a bowl. A wire gauze was placed over the sample and pressed down below the surface of the liquid, with the adhesive skin contact layer facing the gauze. Each sample was covered with the test liquid for the entire absorption period and allowed to absorb for 60 minutes. Upon completion of the absorption period, the sample was hung vertically by one corner of the dressing and the liquid was allowed to drain freely for 120 seconds. The sample was allowed to absorb the liquid for 60 minutes. Upon completion of the absorption period, the liquid was allowed to drain freely from the specimen while held vertically by one corner for 120 seconds (see diagram below). The maximum absorbent capacity in grams of liquid for each sample was recorded.

[0190] After calculating the maximum absorption capacity, the same test (as described above) was performed. The test liquid corresponding to 80% of the theoretical maximum absorption was allowed to be absorbed into the sample. After a 10-minute absorption period, a pressure equivalent to 16665.3 Pa (125 mmHg) was applied to the sample with the wound side facing downward. The static pressure was maintained for 120 seconds. The retention capacity was then calculated as the weight of horse serum retained within the sample after exposure to the static pressure. Thus, retention capacity is the ability of a product to retain liquid under a specified amount of pressure. The retention capacities for Dressings A, C, and D are shown in Table 3 above.

[0191] Example 4: Effect of a liquid spreading layer on preventing backflow of liquid A comparative study was set up using a dressing according to a preferred embodiment of the present disclosure (Dressing A, described above) and a reference dressing (Dressing E) to test the dressing's ability to address exudate backflow, which can be a problem when the dressing is disconnected from the NPWT device. Dressing E had the same structure as Dressing A, but lacked the nonwoven liquid spreading layer between the backing layer and the absorbent structure. The tubing of each dressing was connected to a mobile negative pressure device using the same procedures as described in Examples 1-2.

[0192] Approximately 52 ml of horse serum (excess liquid) was filled into the canister. Once a negative pressure of -125 mmHg was stabilized, the canister was disconnected from the pump, and the excess liquid was allowed to flow back into the dressing. As can be seen in Figures 8a and 8b, the backflow of exudate was distributed over a larger surface area for the dressing of the present disclosure (Dressing A), labeled 100 in Figures 8a and 8b. In contrast, the backflow of exudate for Dressing E (labeled 801 in Figures 8a and 8b) did not spread to a significant extent, with a larger proportion of the exudate being transported back directly toward the wound site. Thus, the liquid spreading layer contributes to the even spreading and distribution of exudate in both directions.

[0193] The terms, definitions and embodiments of all aspects of this disclosure apply mutatis mutandis to other aspects of this disclosure.

[0194] Although the present disclosure has been described with reference to specific exemplary embodiments thereof, it is evident that many different alterations, modifications and the like will become apparent to those skilled in the art.

[0195] Variations to the disclosed embodiments will be understood and effected by those skilled in the art in practicing the present disclosure, from a study of the drawings, the disclosure, and the appended claims. Moreover, in the claims, the word "comprising" does not exclude other elements or steps, and the indefinite article "a" or "an" does not exclude a plurality. The following are some embodiments of the present invention. [Aspect 1] A negative pressure wound therapy (NPWT) dressing (100) comprising a backing layer (101), an adhesive skin contact layer (102), and an absorbent structure (103) disposed between the backing layer (101) and the adhesive skin contact layer (102); the adhesive skin contact layer (102) is configured to releasably adhere the dressing (100) to a skin surface, and the backing layer (101) comprises a connecting member (104) including tubing (105) configured to connect the dressing (100) to a negative pressure source and a remote fluid collection means, wherein the backing layer (101) has a tensile strength of 500 to 3500 g / m2 as measured in accordance with NWSP070.4R0(15). 2 A negative pressure wound therapy (NPWT) dressing (100) characterized by having a moisture vapor transmission rate (MVTR) in the range of 1 / 24h. [Aspect 2] The backing layer (101) has a thickness of 600 to 2700 g / m 2 2. The negative pressure wound therapy (NPWT) dressing (100) of embodiment 1, having a moisture vapor transmission rate (MVTR) in the range of 1 / 24h. [Aspect 3] 3. The negative pressure wound therapy (NPWT) dressing (100) of claim 1 or 2, wherein the tubing (105) includes a fluid conduit (106) configured to remove fluid from the dressing, and an air conduit (107) configured to supply air to the fluid conduit (106) and / or the dressing (100). [Aspect 4] 4. The negative pressure wound therapy (NPWT) dressing (100) of any one of Aspects 1 to 3, wherein the backing layer (101) has a tensile strength in the machine direction (MD) and / or cross-machine direction (CD) of 30 to 70 MPa, preferably 35 to 55 MPa, as measured according to ISO 527-3 / 2 / 200. [Aspect 5] A negative pressure wound therapy (NPWT) dressing (100) according to any one of aspects 1 to 4, wherein the backing layer (101) comprises a thermoplastic elastomer, preferably a thermoplastic polyurethane. [Aspect 6] 6. The negative pressure wound therapy (NPWT) dressing (100) of any one of Aspects 1 to 5, wherein the backing layer (101) and the adhesive skin contact layer (102) are configured to extend beyond the periphery of the absorbent structure (103) to form an edge portion (108) that follows the contour of the absorbent structure (103), and wherein the adhesive skin contact layer (102) includes a plurality of apertures (110) in an area that is underneath the absorbent structure (103), but is free of apertures in the area that forms the edge portion (108). [Aspect 7] The absorbent structure (103) has a density of 10 to 20 mg / cm 2 , preferably 13 to 17 mg / cm 2 7. The negative pressure wound therapy (NPWT) dressing (100) of any one of the preceding embodiments, comprising superabsorbent particles in an amount of [Aspect 8] A negative pressure wound therapy (NPWT) dressing (100) according to any one of aspects 1 to 7, wherein the absorbent structure (103) comprises a first liquid spreading layer (103b), a superabsorbent layer (103a), and a second liquid spreading layer (103c), and the superabsorbent layer (103a) is disposed between the first and second liquid spreading layers (103b, 103c). [Aspect 9] A negative pressure wound therapy (NPWT) dressing (100) according to any one of Aspects 1 to 8, wherein the absorbent structure (103) is embossed. [Aspect 10] 10. The negative pressure wound therapy (NPWT) dressing (100) of any one of embodiments 1 to 9, wherein at least a portion of the backing layer (101) and the absorbent structure (103) comprises an opening (111), the opening (111) being disposed below the connecting member (104). [Aspect 11] 11. The negative pressure wound therapy (NPWT) dressing (100) of any one of claims 1 to 10, further comprising a liquid spreading layer (112) disposed between the backing layer (101) and the absorbent structure (103); the liquid spreading layer (112) is configured to extend over at least 90% of the surface area of the absorbent structure (103), and is free of openings. [Aspect 12] 12. The negative pressure wound therapy (NPWT) dressing (100) of any one of aspects 1 to 11, further comprising a transmission layer (113) disposed between the adhesive skin contact layer (102) and the absorbent structure (103), the transmission layer (113) comprising a spacer fabric. [Aspect 13] - a negative pressure wound therapy (NPWT) dressing (100) according to any one of aspects 1 to 12; a negative pressure source; - a remote fluid collection means (117) fluidly connected to said negative pressure source and said dressing (100); A negative pressure wound therapy (NPWT) system (300) comprising: [Aspect 14] A negative pressure wound therapy (NPWT) system (300) as described in aspect 13, wherein the remote fluid collection means (117) is a canister, and the canister and the negative pressure source are located within the same device (118); the device (118) includes a housing (116) within which the negative pressure source is located, and the canister (117) is releasably connected to the housing (116). [Aspect 15] 15. The negative pressure wound therapy (NPWT) system (300) of aspect 13 or 14, comprising means for supplying air to the dressing at a flow rate of 2 to 7 ml / min during operation. [Aspect 16] A kit (400) comprising a negative pressure wound therapy (NPWT) dressing (100) according to any one of aspects 1 to 12 and at least one additional component selected from a negative pressure source, a canister (117), a battery (124) and / or an adhesive strip (125).

Claims

1. A negative pressure wound therapy (NPWT) dressing (100) comprising a backing layer (101), an adhesive skin contact layer (102), and an absorbent structure (103) disposed between the backing layer (101) and the adhesive skin contact layer (102); the adhesive skin contact layer (102) is configured to releasably adhere the dressing (100) to a skin surface; the backing layer (101) and the adhesive skin contact layer (102) are configured to extend beyond the periphery of the absorbent structure (103) to form an edge portion (108) along the contour of the absorbent structure (103), and the adhesive skin contact layer (102) includes a plurality of apertures (110) in an area underlying the absorbent structure (103), but is free of apertures in the area forming the edge portion (108); 1. A negative pressure wound therapy (NPWT) dressing, wherein the backing layer (101) comprises a coupling member (104) including tubing (105) configured to connect the dressing (100) to a negative pressure source and a remote fluid collection means, wherein the backing layer (101) has a weight of 500 to 3500 g / m as measured by NWSP070.4R0(15). 2 1. A negative pressure wound therapy (NPWT) dressing (100) characterized by having a moisture vapor transmission rate (MVTR) within the range of 1 / 24h.

2. The backing layer (101) has a thickness of 600 to 2700 g / m 2 10. The negative pressure wound therapy (NPWT) dressing (100) of claim 1, having a moisture vapor transmission rate (MVTR) within the range of 10 / 24h.

3. 3. The negative pressure wound therapy (NPWT) dressing (100) of claim 1 or 2, wherein the tubing (105) includes a fluid conduit (106) configured to remove fluid from the dressing, and an air conduit (107) configured to supply air to the fluid conduit (106) and / or the dressing (100).

4. 4. The negative pressure wound therapy (NPWT) dressing (100) of any one of claims 1 to 3, wherein the backing layer (101) has a tensile strength in the machine direction (MD) and / or cross machine direction (CD) of 30 to 70 MPa as measured according to ISO 527-3 / 2 / 200.

5. The negative pressure wound therapy (NPWT) dressing (100) of any one of claims 1 to 4, wherein the backing layer (101) comprises a thermoplastic elastomer.

6. The absorbent structure (103) has a density of 10 to 20 mg / cm 2 6. The negative pressure wound therapy (NPWT) dressing (100) of any one of claims 1 to 5, comprising superabsorbent particles in an amount of

7. A negative pressure wound therapy (NPWT) dressing (100) according to any one of claims 1 to 6, wherein the absorbent structure (103) comprises a first liquid spreading layer (103b), a superabsorbent layer (103a) and a second liquid spreading layer (103c), the superabsorbent layer (103a) being disposed between the first and second liquid spreading layers (103b, 103c).

8. The negative pressure wound therapy (NPWT) dressing (100) of any one of claims 1 to 7, wherein the absorbent structure (103) is embossed.

9. 9. A negative pressure wound therapy (NPWT) dressing (100) according to any one of claims 1 to 8, wherein at least a portion of the backing layer (101) and the absorbent structure (103) comprises an opening (111), the opening (111) being positioned below the coupling member (104).

10. 10. A negative pressure wound therapy (NPWT) dressing (100) as claimed in any one of claims 1 to 9, further comprising a liquid spreading layer (112) disposed between the backing layer (101) and the absorbent structure (103); the liquid spreading layer (112) is configured to extend over at least 90% of the surface area of the absorbent structure (103) and is free of openings.

11. 11. The negative pressure wound therapy (NPWT) dressing (100) of any one of claims 1 to 10, further comprising a transmission layer (113) disposed between the adhesive skin contact layer (102) and the absorbent structure (103), the transmission layer (113) comprising a spacer fabric.

12. - a negative pressure wound therapy (NPWT) dressing (100) according to any one of claims 1 to 11, a negative pressure source; a remote fluid collection means (117) fluidly connected to said negative pressure source and said dressing (100); A negative pressure wound therapy (NPWT) system (300) comprising:

13. 13. A negative pressure wound therapy (NPWT) system (300) as described in claim 12, wherein the remote fluid collection means (117) is a canister, and the canister and the negative pressure source are located within the same device (118); the device (118) includes a housing (116) within which the negative pressure source is located, and the canister (117) is releasably connected to the housing (116).

14. A negative pressure wound therapy (NPWT) system (300) according to claim 12 or 13, comprising means for supplying air to the dressing at a flow rate of 2-7 ml / min during operation.

15. A kit (400) comprising a negative pressure wound therapy (NPWT) dressing (100) according to any one of claims 1 to 11 and at least one additional component selected from a negative pressure source, a canister (117), a battery (124) and / or an adhesive strip (125).

Citation Information

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