Cleaning system and device including heated components
The device and system address the challenges of standardization and temperature control in irrigation by integrating heating components and adaptable flow control, ensuring safe and effective disinfection of surgical wounds.
Patent Information
- Application Number
- JP2023522923
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-10-15
- Filing Date
- 2021-10-14
- Publication Date
- 2026-01-29
- Estimated Expiration
- 2041-10-14
AI Technical Summary
Current irrigation methods for surgical wounds lack standardization, require extensive preparation time for irrigation solution temperature control, and often result in inadequate disinfection due to improper use or insufficient heating, posing risks to patient safety and surgical outcomes.
A device and system for delivering cleaning fluids, such as disinfectant solutions, with integrated heating components that maintain temperature control and adaptable flow rates and patterns, allowing for safe and effective disinfection of surgical wounds.
The system ensures rapid and reliable temperature control of irrigation fluids, reducing contamination risks and enhancing surgical outcomes by providing efficient disinfection with selectable fluid delivery options.
Smart Images

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Abstract
Description
[Technical Field]
[0001] This application claims priority to U.S. Provisional Application No. 63 / 092,254, filed October 15, 2020, the entire disclosure of which is expressly incorporated herein by reference.
[0002] FIELD OF THE DISCLOSURE The present disclosure relates to devices and systems for applying cleaning fluid to surfaces, and in particular to devices and systems that include a heating component. [Background technology]
[0003] Currently, irrigation (i.e., the cleaning of a body cavity, surgical cavity, or wound with a medically acceptable fluid) is often used to prevent contamination of surgical wounds that can occur for a variety of reasons, including accidental visceral penetration or perforation, complicated procedures due to gross leakage, deviations from aseptic technique, and / or existing ongoing clinical infections. Thus, irrigation processes are often used to disinfect and cleanse wounds during surgery.
[0004] Currently, irrigation techniques utilize a wide variety of approaches that vary depending on the situation (e.g., the size and shape of the body cavity or wound) and the practitioner performing the irrigation process (e.g., the practitioner's technique preferences). Because the field currently lacks a standard, specific irrigation technique, healthcare facilities often require many different irrigation devices and systems to accommodate the various potential approaches. The presentation of such devices and systems can also be a concern, as their careless and improper use (e.g., improper use intravenously when the device and / or system resembles an intravenous device and / or system in appearance) can have devastating effects.
[0005] Furthermore, current irrigation methods have several drawbacks, including inadequate disinfectant properties (e.g., excessive time required for the disinfectant to achieve an acceptable biological effect), the risk of systemic absorption of the disinfectant, and side effects such as anaphylaxis, peritoneal adhesions, neurotoxicity, and respiratory failure, as well as inadequate or contaminated doses of disinfectant prepared extemporaneously by the physician performing the irrigation.
[0006] Additionally, irrigation fluids often require a specific temperature to provide acceptable functionality. For example, controlling a patient's body temperature during a surgical procedure is important to ensure a good patient outcome. Thus, when using irrigation fluids before, during, and / or after a surgical procedure, it is important to warm the irrigation fluid to prevent the irrigation fluid from adversely affecting the patient's body temperature during surgery. Additionally, overheating of the irrigation fluid can have harmful effects on the patient and any sensitive tissue within the surgical cavity.
[0007] In current irrigation methods, the temperature of the irrigation solution is typically controlled by providing it in a heated chamber or water bath before use. However, because the irrigation process (e.g., irrigating a surgical cavity) often uses large volumes of irrigation solution, the irrigation solution must be loaded into the heated chamber or water bath over an extended period of time before use. This can create significant challenges when there is insufficient time to prepare the irrigation solution (i.e., in emergency surgery) or when the irrigation solution is forgotten to be loaded into the heated chamber or water bath. In this case, the surgical procedure is delayed or must proceed with irrigation solution at an insufficient temperature. The irrigation solution used in current irrigation methods cannot be stored indefinitely in the current heated chamber and / or water bath. This is because prolonged heat stress can adversely affect product quality (e.g., degradation of the irrigation solution and / or deterioration of the container containing the irrigation solution). Additionally, current irrigation methods require the provision of a heated chamber or water bath at or near the surgical area, which can create space and / or sterility challenges. Finally, current irrigation methods do not provide a reliable method for determining whether and when the irrigation solution has reached an acceptable temperature.
[0008] Therefore, there is a need in the art for versatile devices and systems for warming irrigation fluids used in performing irrigation processes, particularly devices and systems that allow physicians to safely and effectively reduce contamination of surgical wounds that are prone to surgical site infections. Summary of the Invention [Problem to be solved by the invention]
[0009] The present disclosure relates to devices and systems for delivering cleaning fluids, such as disinfectant fluids, to surfaces. [Means for solving the problem]
[0010] The device includes a body configured to contain a cleaning fluid, such as a disinfectant solution, and further configured to be in fluid communication with a heating component sufficient to heat and / or maintain the temperature of the cleaning fluid contained within the body within an acceptable temperature range. The body is further configured to be in fluid communication with at least one applicator element configured to apply the cleaning fluid to a surface sufficient for the cleaning process. The device and system are adaptable to allow a user to select from two or more different fluid flow rates, fluid flow patterns, and / or fluid flow forces, thereby allowing selectable control of the delivery of the cleaning fluid to a surface. The present disclosure also relates to methods of using the devices and systems described herein. [Brief explanation of the drawings]
[0011] [Figure 1A] 1 illustrates an example of a compressible body according to aspects of the present disclosure. [Figure 1B] 1 illustrates an example of a foldable body according to aspects of the present disclosure. [Figure 2A] 1 illustrates an example of a body according to aspects of the present disclosure. [Figure 2B] 1 illustrates an example of a body according to aspects of the present disclosure. [Figure 3] 1 illustrates an example of a connection portion of a main body according to an aspect of the present disclosure. [Figure 4] 1 illustrates an example of a body with an outer casing according to aspects of the present disclosure. [Figure 5] 1 illustrates an exemplary applicator member according to aspects of the present disclosure. [Figure 6] 1 illustrates an exemplary system according to an aspect of the present disclosure. [Figure 7A] 1 illustrates an exemplary dispensing aid according to aspects of the present disclosure. [Figure 7B] 1 illustrates an exemplary dispensing aid according to aspects of the present disclosure. [Figure 8] 1 illustrates an exemplary system according to an aspect of the present disclosure. [Figure 9] 1 illustrates an exemplary system according to an aspect of the present disclosure. [Figure 10] 1 illustrates an exemplary system according to an aspect of the present disclosure. [Figure 11] 1 illustrates an exemplary system according to an aspect of the present disclosure. [Figure 12] 1 illustrates an exemplary system with multiple nozzles, according to aspects of the present disclosure. [Figure 13] 1 illustrates an exemplary system including a body and a heating component according to aspects of the present disclosure. [Figure 14] 1 illustrates an exemplary system including a body and a heating component according to aspects of the present disclosure. [Figure 15] 1 illustrates an exemplary system including a body and a heating component according to aspects of the present disclosure. [Figure 16] 1 illustrates an exemplary system including a body and a heating component according to aspects of the present disclosure. DETAILED DESCRIPTION OF THE INVENTION
[0012] The present disclosure relates to devices and systems for delivering a cleaning fluid, such as a disinfectant solution, to a surface. The devices include a body configured to contain a cleaning fluid, such as a disinfectant solution, and further configured to be in fluid communication with a heating component sufficient to heat and / or maintain the temperature of the cleaning fluid contained within the body within an acceptable temperature range. The body is further configured to be in fluid communication with at least one applicator element configured to apply the cleaning fluid to a surface sufficient for the cleaning process. The devices and systems are adaptable to allow a user to select from two or more different fluid flow rates, fluid flow patterns, and / or fluid flow forces, allowing selectable control of the delivery of the cleaning fluid. The present disclosure also relates to methods of using the devices and systems described herein.
[0013] As used herein, the term "irrigation fluid" refers to a fluid suitable for the irrigation processes described herein. As used herein, "irrigation" refers to the cleaning of a body cavity, a surgical cavity, and / or a wound.
[0014] According to some embodiments, the cleaning solution may include a disinfectant solution. As used herein, "disinfectant solution" refers to a solution containing at least one solvent and one or more disinfectants. According to some embodiments, the disinfectant solution is an aqueous solution. As used herein, the term "aqueous solution" refers to a solution containing water as at least half of the solvent. It should be understood that in some examples, the solvent may consist of water. According to some embodiments, the disinfectant solution is an alcohol solution. As used herein, the term "alcohol solution" refers to a solution containing alcohol as at least half of the solvent. It should be understood that in some examples, the solvent may consist of one or more alcohols. Non-limiting examples of alcohols include, but are not limited to, ethanol, isopropyl alcohol, n-propanol, and combinations thereof.
[0015] In one non-limiting example, the antiseptic may include a cationic molecule (i.e., a molecule having a positive charge) such as a cationic surfactant or a cationic biguanide derivative (i.e., a compound derived from a biguanide). According to some embodiments, the antiseptic may include a bis-(dihydropyridinyl)-decane derivative (i.e., a compound derived from bis-(dihydropyridinyl)-decane). According to some embodiments, the antiseptic may include an octenidine salt and / or a chlorhexidine salt. According to some embodiments, the antiseptic may include alexidine, octenidine dihydrochloride, chlorhexidine gluconate, or a combination thereof.
[0016] Additionally or alternatively, the antiseptic may include iodine. According to some embodiments, the iodine may be provided as an iodine complex, such as povidone-iodine (PVPI), nonylphenoxy-(ethyleneoxy)-iodine, polyethyleneoxypolypropyleneoxy-iodine, undecoyllium iodide chloride, povacrilex iodide, and combinations thereof.
[0017] Additionally or alternatively, the disinfectant may include an oxidant (i.e., an oxidizing agent). Non-limiting examples of oxidants according to the present disclosure include, but are not limited to, sodium hypochlorite, hydrogen peroxide, and combinations thereof.
[0018] A disinfectant may have sufficient antimicrobial activity to allow for an acceptable log reduction of microorganisms over a specified period of time. It should be understood that the term "microorganisms" as used herein may refer to any microorganism that is killed and / or removed as a result of cleaning. Exemplary microorganisms include bacteria, fungi, viruses, and combinations thereof.
[0019] Examples of bacteria include Streptococcus mutans, Streptococcus pyogenes (group A beta-hemolytic streptococci), S. salivarius, S. sanguis, Staphylococcus aureus, Staphylococcus epidermidis, S. haemolyticus, S. hominis, S. simulans, Staphylococcus saprophyticus, methicillin / oxacillin-resistant Staphylococcus aureus (MRSA / ORSA) and methicillin / oxacillin-susceptible Staphylococcus aureus (MSSA / OSSA), Enterococcus faecalis (e.g., Enterococcus faecalis, Enterococcus faecalis, and Enterococcus hirae), vancomycin-resistant enterococci (VRE) and vancomycin-susceptible enterococci (VSE), Bacteroides furunculosis, and Enterococcus faecalis. radilis, Propionibacterium acnes, Clostridium difficile (spores and vegetative cells), Selenomonas, Pseudomonas aeruginosa, Escherichia coli, Burkholderia cepacia, Proteus mirabilis, Gardnerella vaginalis, Klebsiella aerogenes, Klebsiella pneumoniae, multidrug-resistant Klebsiella pneumoniae (MDR), Acinetobacter baumannii, Acinetobacter baumannii MDR, Achromobacter xylosoxidans, Micrococcus luteus, Ralstonia pickettii, Haemophilus influenzae, and Serratia marcescens.
[0020] Exemplary fungi include, but are not limited to, Aspergillus niger, Candida albicans, Candida auris, C. dubliniensis, C. glabrata (formerly Torulopsis glabrata), C. guilliermondii, C. kefir (formerly C. pseudotropicalis), C. krusei, C. lusitaniae, C. tropicalis, Epidermophyton floccosum, Microsporum gypsum, Microsporum canis, and Trichophyton mentagrophytes.
[0021] Exemplary viruses include, but are not limited to, viruses that have a lipid component in their coat or have an outer envelope, such as cytomegalovirus (CMV), human immunodeficiency virus (HIV), herpes simplex virus type 1 (HSV-1) and type 2 (HSV-2), influenza virus, parainfluenza virus, smallpox virus (variola virus), vaccinia virus, norovirus, and coronavirus.
[0022] According to some embodiments, the specified period of time may be a period of about 5 minutes or less, optionally about 4 minutes or less, optionally about 3 minutes or less, optionally about 2 minutes or less, optionally about 1 minute or less.
[0023] According to some embodiments, the specified period of time may be about 120 seconds or less, optionally about 105 seconds or less, optionally about 90 seconds or less, optionally about 75 seconds or less, optionally about 60 seconds or less, optionally about 45 seconds or less, optionally about 30 seconds or less, and optionally about 15 seconds or less.
[0024] It is understood that an "acceptable log reduction" can be microorganism-dependent. For example, an acceptable log reduction as described herein may refer to an acceptable log reduction of one microorganism present on a surface (e.g., present in a body cavity or trauma site), a combination of two microorganisms present on a surface, or all microorganisms present on a surface.
[0025] According to some embodiments, an acceptable log reduction is at least about 1.0, optionally at least about 1.1, optionally at least about 1.2, optionally at least about 1.3, optionally at least about 1.4, optionally at least about 1.5, optionally at least about 1.6, optionally at least about 1.7, optionally at least about 1.8, optionally at least about 1.9, optionally at least about 2.0, optionally at least about 2.1, optionally at least about 2.2, optionally at least about 2.3, optionally at least about 2.4, optionally at least about 2.5, optionally at least about 2.6, optionally at least about 2.7, optionally at least about 2.8, optionally at least about 2.9 , optionally at least about 3.0, optionally at least about 3.1, optionally at least about 3.2, optionally at least about 3.3, optionally at least about 3.4, optionally at least about 3.5, optionally at least about 3.6, optionally at least about 3.7, optionally at least about 3.8, optionally at least about 3.9, optionally at least about 4.0, optionally at least about 4.1, optionally at least about 4.2, optionally at least about 4.3, optionally at least about 4.4, optionally at least about 4.5, optionally at least about 4.6, optionally at least about 4.7, optionally at least about 4.8, optionally at least about 4.9, optionally at least about 5.0.
[0026] According to some embodiments, the disinfectant can be present in the disinfecting solution at a concentration sufficient to allow an acceptable log reduction of microorganisms over a specified period of time, as described herein. According to some embodiments, the disinfectant can be present in the disinfecting solution at a concentration of about 0.001-5% w / v, optionally about 0.001-2.5% w / v, optionally about 0.001-1% w / v, optionally about 0.001-0.1% w / v, optionally about 0.001-0.01% w / v, optionally about 0.01-5% w / v, optionally about 0.01-2.5% w / v, optionally about 0.01-2% w / v, optionally about 0.01-1.5% w / v, optionally about 0.01-1% w / v, or optionally about 0.5% w / v.
[0027] According to some embodiments, the disinfectant may be present in the disinfectant solution at a concentration of about 0.1-0.9% w / v, optionally about 0.2-0.8% w / v, optionally about 0.3-0.7% w / v, optionally about 0.4-0.6% w / v.
[0028] According to some embodiments, the disinfectant may be present in the disinfectant solution at a concentration of about 0.1-1% w / v, optionally about 0.2-1% w / v, optionally about 0.3-1% w / v, optionally about 0.4-1% w / v.
[0029] It should be understood that, according to some embodiments, the cleaning fluid is not necessarily a disinfectant fluid as described herein, but may be any medically acceptable fluid configured to perform the cleaning process described herein. In one non-limiting example, the cleaning fluid may include a saline solution. The saline solution may include water and sodium chloride at a medically acceptable concentration, such as about 0.1-1% w / v, optionally about 0.45% w / v, and optionally about 0.9% w / v.
[0030] According to some embodiments, cleaning solutions, such as the disinfectant solutions described herein, can include a visualization aid. As used herein, the term "visualization aid" refers to a component in a cleaning solution configured to aid in visualizing the application of the cleaning solution. Exemplary visualization agents include, but are not limited to, colorants, stains, and radiopaque agents. It should be understood that the visualization agent can be the same as or different from one of the other components of the cleaning solution. For example, a disinfectant can function as a visualization agent. Additionally or alternatively, the cleaning solution can include a visualization agent that is different from the disinfectant.
[0031] According to some embodiments, the cleaning fluid may include a colorant. As used herein, the term "colorant" refers to a component sufficient to provide a visible color to the fluid. The colorant may be sufficient to allow visualization of the cleaning fluid upon application to a surface. In some non-limiting examples, the colorant may include an anionic colorant, such as an anionic dye. The anionic dye may be any dye suitable for medical use, such as a dye approved by the Food and Drug Administration for use in food, drugs, and / or cosmetics (i.e., a "D&C" or "FD&C" dye). Exemplary anionic dyes include, but are not limited to, FD&C Blue No. 1 (Brilliant Blue FCF), FD&C Blue No. 2 (Indigo Carmine), FD&C Green No. 3 (Fast Green FCF), FD&C Red No. 3 (Erythrosine), FD&C Red No. 40 (Allura Red AC), FD&C Yellow No. 5 (Tartrazine), FD&C Yellow No. 6 (Sunset Yellow FCF), D&C Yellow No. 8 (Fluorescein), D&C Orange No. 4, and combinations thereof. They can be combined to achieve a specific color. For example, an orange hue can include both FD&C Red No. 40 and D&C Yellow No. 8. Additionally or alternatively, the colorant can include a compound that becomes observable upon irradiation with visible and / or non-visible light, including, but not limited to, vitamin B-12, medical honey, fluorescent polymeric nanoparticles, water-soluble luminescent carbon nanodots, quinine, and combinations thereof.
[0032] According to some aspects, cleaning solutions, such as the disinfecting solutions described herein, may include a staining agent. As used herein, the term "staining agent" refers to a component sufficient to temporarily or permanently stain a surface with which it comes into contact.
[0033] According to some embodiments, cleaning solutions, such as the disinfecting solutions described herein, can include a radiopaque agent. As used herein, the term "radiopaque agent" refers to a component that is opaque to radio waves and x-ray portions of the electromagnetic spectrum sufficient for visualization. In some non-limiting examples, radiopaque agents can include barium, iodine, iron oxide nanoparticles, gadolinium composite nanospheres, silica nanospheres, and combinations thereof.
[0034] According to some embodiments, cleaning solutions, such as the disinfecting solutions described herein, can be basic, neutral, or acidic. According to some embodiments, the pH of the cleaning solution can be about 1-8, optionally about 1-7, optionally about 1-6, and optionally about 2-5.5.
[0035] According to some embodiments, cleaning solutions, such as the disinfectant solutions described herein, may include a buffer system. As used herein, the term "buffer system" refers to components present in a composition or solution that provide resistance to significant changes in pH caused by strong acids or strong bases. A buffer system may include a single agent or multiple agents, such as a weak acid and its conjugate base. A buffer system may provide resistance to significant pH changes by interacting with a strong acid or strong base in the composition or solution, thereby at least partially preventing the pH of the composition or solution from significantly changing.
[0036] Generally, a buffer system has one or more buffer ranges that provide resistance to significant pH changes. When a composition or solution containing a buffer system has a pH within the buffer range of the buffer system, the pH of the composition or solution does not change significantly upon addition of an equimolar amount of a strong acid or strong base.
[0037] The buffer range of a buffer system is determined by the acid dissociation constant (K a ) The term "acid dissociation constant" refers to the equilibrium constant for the dissociation reaction of an acid. The midpoint of the buffer range of a buffer system is generally approximately the logarithmic measure of the acid dissociation constant of the weak acid included in the buffer system (i.e., -log 10 K a pK equals a ).
[0038] According to some aspects, cleaning solutions, such as the disinfecting solutions described herein, may include a stabilizer. As used herein, the term "stabilizer," unless expressly stated otherwise, refers to any component that supports the stability of the cleaning solution.
[0039] A device according to the present disclosure includes a body configured to contain a cleaning solution as described herein. According to some embodiments, the body may be compressible. As used herein, the term "compressible" refers to the ability to reversibly reduce in volume without unacceptable changes, such as unacceptable permanent changes in size, shape, and / or one or more properties described herein. According to some embodiments, the body may be configured to dispense at least a portion of the disinfectant contained therein upon compression. It should be understood that "dispensing" (or "dispensing") as used herein may refer to transferring the cleaning solution to an application member in fluid communication with the body and / or transferring the cleaning solution from the application member to a surface.
[0040] According to some embodiments, the body may be foldable. As used herein, the term "foldable" refers to the ability to permanently reduce volume. For example, the foldable body described herein can have a first volume when containing a first volume of fluid. Upon dispensing at least a portion of the fluid, the foldable body may be folded to have a second volume smaller than the first volume. It should be understood that a foldable body advantageously reduces waste volume (e.g., the volume of the body after the fluid within the body has been dispensed). A foldable body can further enable efficient fluid dispensing.
[0041] According to some embodiments, the body may be configured to allow for at least a 10% volume reduction, optionally at least a 20% volume reduction, optionally at least a 30% volume reduction, optionally at least a 40% volume reduction, optionally at least a 50% volume reduction, optionally at least a 60% volume reduction, optionally at least a 70% volume reduction, optionally at least a 80% volume reduction, optionally at least a 90% volume reduction, optionally at least a 99% volume reduction when compressed and / or folded.
[0042] According to some embodiments, the body may comprise a body material that is compatible with the cleaning solution contained therein, i.e., a material that does not chemically or physically react with the cleaning solution or render the cleaning solution unsuitable for medical use.
[0043] According to some embodiments, the body material may be sufficient to prevent unacceptable vapor or disinfectant loss from a cleaning solution contained therein over a specified shelf life. It should be understood that "unacceptable vapor or disinfectant loss" may be loss that renders the cleaning solution unsuitable for its intended use. Vapor or disinfectant loss may result, for example, from adsorption or absorption of disinfectant by a material (e.g., the body material), evaporation of the solution, evaporation of a component of the solution (e.g., a disinfectant in the disinfectant solution), or a combination thereof. In one non-limiting example, the cleaning solution includes water and iodine, as described herein, and the body material may be sufficient to prevent water vapor loss and / or iodine loss over a specified shelf life.
[0044] The term "shelf life" as used throughout this application refers to the length of time a product (e.g., a disinfectant solution) can be stored within the required specifications for form, fit, and function. Shelf life may be determined by measuring certain product characteristics that may indicate that the product is unsuitable for medical use. For example, shelf life may be determined by measuring the concentration of impurities in the product, the color change of the product, the concentration of insoluble particles in the product, the potency of an active agent (e.g., a disinfectant) contained in the product, the concentration of one or more ingredients of the product, the pH of the product, and / or the sterility of the product after storage at long-term storage conditions. As used herein, the term "long-term storage conditions" refers to environmental conditions sufficient to acceptably preserve a product for more than 72 hours. According to some embodiments, long-term storage conditions may refer to a temperature of about 25°C and a relative humidity of about 60%. Additionally or alternatively, shelf life can be determined by measuring the concentration of impurities in the product, the color change of the product, the concentration of insoluble particles in the product, the potency of the active agent in the product, the concentration of one or more ingredients in the product, the pH of the product, and / or the sterility of the product after storage at 37° C. and 65% relative humidity. Additionally or alternatively, shelf life can be determined by measuring the concentration of impurities in the product, the color change of the product, the concentration of insoluble particles in the product, the potency of the active agent in the product, the concentration of one or more ingredients in the product, the pH of the product, and / or the sterility of the product after storage at a temperature range of about 15° C. to 30° C., up to about 40° C.
[0045] According to some embodiments, the storage period can be at least about 20 months, optionally at least about 21 months, optionally at least about 22 months, optionally at least about 23 months, optionally at least about 24 months, optionally at least about 25 months, optionally at least about 26 months, optionally at least about 27 months, optionally at least about 28 months, optionally at least about 29 months, optionally at least about 30 months, optionally at least about 31 months, optionally at least about 32 months, optionally at least about 33 months, optionally at least about 34 months, optionally at least about 35 months, optionally at least 36 months, optionally at least about 37 months, optionally at least about 38 months, optionally at least about 39 months, optionally at least about 40 months.
[0046] According to some embodiments, the body material is capable of being sterilized using known sterilization techniques useful according to the present disclosure, including moist heat sterilization (i.e., autoclaving), gas sterilization, gamma irradiation, electron beam (e-beam) sterilization, aseptic manufacturing processes (e.g., sterile filtration and / or blow-fill-seal operations), and combinations thereof. According to some embodiments, a container comprising the body material remains at least 10% sterilized after sterilization. -6 A body material can be determined to be sufficient for sterilization if it has a Sterility Assurance Level (SAL) of 0.1 or greater and provides acceptable results when tested for container closure integrity after sterilization.
[0047] According to some embodiments, the body material can have sufficient mechanical strength so that the body provides acceptable resistance to shock, vibration, shaking, or a combination thereof. According to some embodiments, acceptable resistance refers to a resistance in accordance with ASTM D4169-16 (Standard Practice for Performance Testing of Shipping Containers and Systems), ASTM D4728-06 (Standard Test Method for Random Vibration Testing of Shipping Containers), ASTM D642-15 (Standard Test Method for Determining Compressive Resistance of Shipping Containers, Components, and Unit Loads), and combinations thereof. According to some embodiments, the body material can be safe for biomedical applications. For example, the body material may comply with ISO 10993 and / or REACH requirements. According to some embodiments, the body material may be sufficient to exhibit at least some of the properties described herein over a specified shelf life of the cleaning solution at temperatures between about 15° C. and 30° C., within a temperature range of about 40° C. or less. Additionally or alternatively, the body material may be sufficient to exhibit at least some of the properties described herein over a specified shelf life of the cleaning solution after storage at about 25° C. and 60% relative humidity. Additionally or alternatively, the body material may be sufficient to exhibit at least some of the properties described herein over a specified shelf life of the cleaning solution after storage at about 37° C. and 65% relative humidity.
[0048] The body material can be rigid or flexible. As used herein, the term "rigid" refers to sufficient stiffness to resist deformation under normal operating forces. As used herein, the term "flexible" refers to the ability to bend or compress under normal operating forces.
[0049] Exemplary body materials include, but are not limited to, glass, plastic, paper, foil, and any combination thereof. Exemplary plastics useful in accordance with the present disclosure include, but are not limited to, high-density polyethylene (HDPE), low-density polyethylene (LDPE), polypropylene, polystyrene, nylon, and any combination thereof. According to some embodiments, the body material may be a backing and / or coating material, such as a backing and / or coated paper.
[0050] According to some embodiments, the body may be provided with an outer casing. For example, FIG. 4 shows a body 41 including a flexible body material. The body 41 may be provided with an outer casing 42 that may be permanently attached to the body 41 or may be removable. According to some embodiments, the outer casing 42 may be rigid and thus function to protect the body 41 during storage and / or use. Additionally or alternatively, the outer casing 42 may function to distinguish the body 41 from similar devices used in medical settings, such as intravenous (IV) fluid bags. In this way, the outer casing 42 may reduce the risk of inadvertent misuse of the body 41.
[0051] Bodies according to the present disclosure are configured to dispense cleaning fluid, such as disinfectant fluid, contained therein via one or more mechanisms. According to some embodiments, the bodies may be configured to dispense cleaning fluid upon compression, as described herein. For example, as shown in FIG. 1A, body 11 may be configured to dispense at least a portion of the cleaning fluid contained therein in response to compression, such as squeezing. Additionally or alternatively, as shown in FIG. 1B, body 12 may be configured to dispense at least a portion of the cleaning fluid contained therein in response to longitudinal compression.
[0052] Additionally or alternatively, the body may be configured to dispense at least a portion of the cleaning fluid contained therein when oriented in a particular direction. For example, as shown in FIG. 2A, the body 21 may include an opening 23 through which the cleaning fluid may be dispensed. In this example, the body 21 may be configured to dispense at least a portion of the cleaning fluid by gravity when oriented in a particular direction (e.g., the opening 23 is at or near the bottom of the body relative to the ground).
[0053] In the example shown in FIG. 2A , the body 21 can include a positioning component 22 that allows the body to be positioned in a particular orientation. The positioning component 22 can be any component configured to position and / or secure the body in a selected orientation, such as a hook, strap, snap, button, string, or combination thereof. The positioning component 22 can be integral with the body and / or a separate component configured to interact with the body, such as a strap attachable to the body. The positioning component 22 can also be configured to interact with a second positioning component, such as an extension arm included in the body and / or configured to interact with a hook attached to the body.
[0054] 2B shows another example of a system according to the present disclosure. In this example, body 24 is configured to interact with a separate positioning element 22, which may include a snap 25 or the like, so that body 24 may be positioned and secured relative to a user's arm, such as the arm of a physician performing the irrigation. In this example, irrigation fluid may be dispensed by gravity as described herein and / or by a dispensing aid as described below.
[0055] According to some aspects, the body may be configured in communication with a dispensing aid configured to provide sufficient force to at least partially dispense the cleaning fluid contained in the body. For example, the dispensing aid may include a pump configured to move the cleaning fluid from the body. The pump may be a mechanical pump, an electric pump, a vacuum pump, or any combination thereof.
[0056] It should be understood that the body may be configured to dispense irrigation fluid via one or a combination of the mechanisms described herein. For example, the body may be configured to dispense irrigation fluid in conjunction with gravity when compressed. Additionally or alternatively, the body may be configured to dispense irrigation fluid in conjunction with force generated by a pump (including, but not limited to, vacuum force generated by a pump) when compressed and / or by gravity. According to some embodiments, the body may be configured to selectively dispense irrigation fluid via one or more of the mechanisms described herein. In one non-limiting example, the body may be configured to dispense irrigation fluid in conjunction with pump force when compressed, with or without pump force. This allows a user to select a desired delivery mechanism based on physical constraints (e.g., the user's athletic ability), desired fluid flow force, desired fluid flow rate, desired fluid flow pattern (e.g., pulsed or constant), or combinations thereof.
[0057] According to some embodiments, the body may be configured to dispense at least about 75%, optionally at least about 80%, optionally at least about 85%, optionally at least about 90%, optionally at least about 95%, and optionally about 100% of the cleaning fluid contained therein. The body may be configured to continuously dispense cleaning fluid and / or to intermittently dispense cleaning fluid. In one non-limiting example, the body may be configured to intermittently dispense cleaning fluid such that cleaning fluid is dispensed only upon compression of the body and / or activation of a dispensing aid, such as a pump.
[0058] The body may be configured to contain a volume of cleaning fluid sufficient to perform at least a portion of the cleaning process. According to some embodiments, the body may be configured to contain approximately 250-2000 mL of fluid, optionally approximately 500-1000 mL of fluid. According to some embodiments, the body may be configured to contain approximately 500 mL of fluid. According to some embodiments, the body may be configured to contain approximately 1 L of fluid.
[0059] According to some aspects, the body may be configured to communicate with a heating component sufficient to warm the cleaning fluid contained in the body to a temperature within an acceptable temperature range and / or maintain the cleaning fluid contained in the body at a temperature within an acceptable temperature range. The heating component may include at least one surface configured to contact a corresponding surface of the body sufficient to transfer energy to the body and subsequently to the cleaning fluid contained in the body, thereby warming the cleaning fluid.
[0060] 13 shows an exemplary body 131 described herein in communication with a warming element 132. In this example, the warming element 132 may include a sleeve having a shape sufficient to fit snugly around at least a portion of the body 131, thereby allowing energy from the heating element 132 to be transferred from the heating element 132 to the cleaning fluid contained within the body 131 via the interface between the heating element 132 and the body 131.
[0061] 13, it should be understood that the contact surface includes the exterior surface of the body 131, i.e., the surface of the body 131 that contacts the heating element 132. However, it should be understood that the present disclosure is not particularly limited to this configuration. For example, the contact surface may additionally or alternatively include one or more surfaces contained within one or more passages provided in the body.
[0062] For example, FIG. 14 illustrates a cross-sectional view of a body 141 having one or more internal passages 142. It should be understood that each of the one or more internal passages 142 has a surface that increases the total surface area of the body 141 that contacts the cleaning fluid 146 contained therein. In this non-limiting example, a heating element 143 may be configured to contact a surface of the one or more internal passages 142 to transfer energy to the cleaning fluid 146 contained within the body 141 via the interface between the heating element 143 and the body 141. This allows for even distribution of heat to the cleaning fluid 146 contained within the body 141. Additionally, the increased surface area of contact provided by the one or more internal passages 142 allows the cleaning fluid 146 contained within the body 141 to be rapidly heated, at least in part.
[0063] The non-limiting example shown in FIG. 14 includes five evenly distributed internal passages 142 completely traversing the body 141, however, it should be understood that a different number, size, and / or shape of internal passages may be selected to provide a selected heating distribution and / or rate.
[0064] For example, FIG. 15 shows another example of a body 151 having an internal passage 152 as described herein. As shown in FIG. 15 , the internal passage 152 may be provided on the surface of the body 151 opposite the opening 153, which may be referred to as the “bottom” of the body 151 relative to the ground. In this example, the warming component 154 may include a base 155 configured to interact with the bottom of the body 151 and may further include a protrusion 156 configured to fit within the internal passage 152 of the body 151. As described herein, one or both of the base 155 and the protrusion 156 may be configured to transfer energy. In this non-limiting example, the warming component 154 may further support the body 151 so that the cleaning solution contained in the body 151 can be heated while providing the body 151 in a safe position during the warming process.
[0065] In this example, the internal passageway 152 and the protrusion 156 may be generally straight, as shown in FIG. 15 . Alternatively, the internal passageway 152 and / or the protrusion 156 may have any shape configured to removably secure the body 151 to the heating element 154 during heating. For example, the internal passageway 152 and the protrusion 156 may have complementary curved shapes, such as complementary helical shapes. Additionally or alternatively, the protrusion 156 may include one or more threads configured to interact with corresponding threads included in the internal passageway 152 to form a threaded connection, thereby allowing the body 151 to be threaded onto the heating element 154.
[0066] According to some embodiments, a heating component may be configured to communicate with multiple bodies simultaneously. For example, FIG. 16 illustrates a heating component 161 having multiple body housings 162, each configured to accommodate a body 163 described herein. This allows a single heating component to be used with multiple bodies described herein. Although not shown, the heating component may include a lid for at least partially covering one or more of the multiple body housings 162.
[0067] A heating component according to the present disclosure is configured to contact a corresponding surface of the body sufficient to transfer energy to a cleaning fluid contained in the body, as described herein, and is therefore understood to include an energy source sufficient to heat the cleaning fluid to a temperature within an acceptable temperature range and / or maintain the cleaning fluid within an acceptable temperature range, as described herein.
[0068] According to some embodiments, the energy source may include a heating material contained in a heating element. In one non-limiting example, the heating material may include a material configured to absorb energy (e.g., microwave energy) from an external source, such as an external heating chamber. In this example, the heating element may be provided within the external heating chamber for a period of time prior to the cleaning process sufficient for the heating element to absorb the energy. As described herein, the heating element may then be provided in contact with the body to transfer the absorbed energy to the cleaning fluid contained within the body. This reduces the risk of unacceptable degradation of the cleaning fluid and / or body material, as heating the cleaning fluid to a temperature within an acceptable temperature range does not require providing the cleaning fluid and / or body in a heating chamber.
[0069] Examples of energy absorbing materials useful in the heating element include, but are not limited to, one or more organic materials (e.g., rice, buckwheat husks, corn husks, etc.), one or more synthetic materials (e.g., ceramic and / or clay, including ceramic and / or clay beads), and combinations thereof.
[0070] Additionally or alternatively, the heating material may include an activatable heating material configured to provide heat upon activation. In one non-limiting example, activation may include a chemical reaction, such as an exothermic reaction.
[0071] In one non-limiting example, the heating material may include physically separated first and second chemical components, such as a first chemical component contained in a first cavity and / or a second chemical component contained in a second cavity. To activate the heating material, the first and second chemical components may be mixed, such as by releasing the first and / or second chemical components from the first and / or second cavities, respectively. Upon mixing, the first and second chemical components may react to provide heat.
[0072] In another non-limiting example, the heating material can include a first chemical component isolated from the external environment, such as a first chemical component contained in a cavity. To activate the heating element, the first chemical component can be contacted with the external environment (e.g., by removing a cover or tab and / or by releasing the first chemical component from the cavity) such that oxygen contacts the first chemical component. In this example, the first chemical component can react with oxygen to provide heat.
[0073] Examples of activatable heating materials useful according to the present disclosure include, but are not limited to, activatable mixtures, such as iron powder and / or a mixture of salt and catalyst. In one non-limiting example, the activatable mixture can include water supersaturated with a salt (e.g., sodium acetate) to form a solution, the supersaturated solution including one or more catalyst particles (e.g., metal particles, glass particles) configured to provide one or more nucleation sites.
[0074] Additionally or alternatively, the heating material may include a heating fluid, in this example, the heating component may be configured to contain the heating fluid.
[0075] 13 , the warming element 132 may include an inlet 133 capable of supplying a warming fluid into a cavity defined by the warming element 132. The warming element 132 may further include an outlet 134 through which the warming fluid can exit. As the warming fluid moves from the inlet 133 to the outlet 134, energy from the warming fluid can be transferred to the cleaning fluid contained in the body 131 via the interface between the warming element 132 and the body 131 described herein. In this example, the warming fluid may be transferred periodically or continuously from the inlet 133 to the outlet 143 during the cleaning process to controllably and quickly warm the cleaning fluid and / or maintain the temperature of the cleaning fluid within an acceptable temperature range.
[0076] 14 shows another example of a heating element 143 having an inlet 144 and an outlet 145 as described herein. In this example, heating fluid may enter the heating element 143 via the inlet 144 and travel towards the outlet 145 via one or more internal passages 142. This allows cleaning fluid contained within the body 141 to be controllably and rapidly heated as described herein.
[0077] 16 shows another example of a warming element 161 including an inlet 164 and an outlet 165 as described herein. In this example, warming fluid may enter the warming element 161 via the inlet 164 and travel toward the outlet 165 sufficient to heat the body 163. This allows the cleaning fluid contained in the body 163 to be controllably and rapidly heated as described herein.
[0078] In one non-limiting example, the warming fluid may include warm water alone and / or warm water containing one or more adjuvants configured to provide an acceptable specific heat, such as glucose, glycerin, or a combination thereof. Additionally or alternatively, the warming fluid may include one or more glycols (e.g., propylene glycol, ethylene glycol), one or more oils (e.g., mineral oil, silicone oil), one or more perfluorocarbons, one or more alcohols (e.g., 1-octanol), one or more waxes (e.g., paraffin wax), or a combination thereof. It should be understood that as heat from the warming fluid is transferred to the cleaning fluid, as described herein, the warming fluid may cool. In one example, warm water may enter the warming component via an inlet port described herein, and cooled water may exit the warming component via an outlet port. According to some embodiments, the warming fluid may continuously pass through the warming component during at least a portion of the cleaning process.
[0079] According to some embodiments, at least one of the inlets and outlets described herein can include at least one restrictive feature.
[0080] In one non-limiting example, a limiting feature may include a one-way valve having a first closed position that prevents fluid from passing through and a second open position that allows fluid to pass through. In this example, the inlet may include a one-way valve that is configured to be in the first position when pressure is applied from one direction (i.e., fluid pressure from inside the warming component). The one-way valve can be easily moved to the second position when pressure is applied from an opposite, different direction (i.e., fluid pressure from outside the warming component). This allows warming fluid to enter the inlet as described herein but may prevent it from exiting the inlet, thereby preventing inadvertent discharge of the warming fluid onto a surface (e.g., a surgical site) during a cleaning process.
[0081] Additionally or alternatively, the limiting feature may include an actuation valve having a first closed position and a second open position, as described herein. In this example, the outlet may include an actuation valve disposed in a first position, which may be selectively actuated to a second position. In this manner, warming fluid may be allowed to exit the outlet when actuated, as described herein, but may otherwise be prevented from exiting the outlet, thereby preventing inadvertent discharge of warming fluid onto a surface (e.g., a surgical site) during the irrigation process.
[0082] As described herein, the heating component is configured to heat the irrigation fluid to a temperature within an acceptable temperature range and / or maintain the irrigation fluid within an acceptable temperature range. The acceptable temperature range is preferably a temperature range suitable for use on the human body during a surgical procedure. For example, the heating component may be configured to heat and / or maintain the irrigation fluid within a temperature range of between about 32°C and 43°C, optionally between about 35°C and 37°C, and optionally about 36°C. It should be understood that the heating component may have a temperature higher than the acceptable temperature range before transferring energy to the irrigation fluid to heat and / or maintain the irrigation fluid within the acceptable temperature range described herein. For example, the heating component may have a temperature higher than 37°C, optionally between about 37°C and 65°C.
[0083] According to some aspects, the heating component may be configured to heat the cleaning fluid to a temperature within an acceptable temperature range within a specified heating period. According to some embodiments, the specific heating period can be about 1 hour or less, optionally about 30 minutes or less, optionally about 25 minutes or less, optionally about 24 minutes or less, optionally about 23 minutes or less, optionally about 22 minutes or less, optionally about 21 minutes or less, optionally about 20 minutes or less, optionally about 19 minutes or less, optionally about 18 minutes or less, optionally about 17 minutes or less, optionally about 16 minutes or less, optionally about 15 minutes or less, optionally about 14 minutes or less, optionally about 13 minutes or less, optionally about 12 minutes or less, optionally about 11 minutes or less, optionally about 10 minutes or less, optionally about 9 minutes or less, optionally about 8 minutes or less, optionally about 7 minutes or less, optionally about 6 minutes or less, optionally about 5 minutes or less, optionally about 4 minutes or less, optionally about 3 minutes or more, optionally about 2 minutes or less, optionally about 1 minute or less, optionally about 45 seconds or less, optionally about 30 seconds or less.
[0084] According to some aspects, systems according to the present disclosure include reusable heating components for use in multiple heating processes, particularly multiple heating processes using multiple bodies.
[0085] According to some aspects, a device or system according to the present disclosure may include a temperature indicator configured to indicate when the cleaning fluid has reached a particular temperature or temperature range. The temperature indicator may be an integral part of one or more components of the device or system described herein, such as an integral part of the body and / or the warming component. Additionally or alternatively, the temperature indicator may be another component of the system configured to communicate with the body described herein. The temperature indicator may be selectively communicable with the body, such as, for example, an attachment that may be provided to selectively communicate with the body during warming of the cleaning fluid.
[0086] According to some aspects, the temperature indicator can signal a specific temperature or temperature range of the cleaning fluid contained in the main body. The specific temperature or temperature range can be a temperature or temperature range within an acceptable temperature range described herein, and no signal is present if the cleaning fluid has a temperature outside the acceptable temperature range. This allows the temperature indicator to prevent the use of cleaning fluid that is too cold and / or too hot when used in a cleaning process.
[0087] In one non-limiting example, the signal can be a color change. In this example, the temperature indicator can include a temperature sensitive material that has a first color (the first color can be colorless) upon contact with a temperature below a selected temperature or temperature range, such as a temperature below an acceptable temperature range described herein. The temperature sensitive material can have a second color (the second color can be colorless) upon contact with a temperature within a selected temperature range, such as an acceptable temperature range described herein. Optionally, the temperature sensitive material can have a third color (the third color can be colorless) upon contact with a temperature above a selected temperature or temperature range, such as a temperature above an acceptable temperature range described herein. According to some embodiments, the first color and the third color are different from the second color. Optionally, the first color can be different from the third color.
[0088] According to some aspects, the temperature sensitive material may be in direct contact with the cleaning fluid. For example, the bodies described herein may be formed at least in part from a temperature sensitive material such that the temperature sensitive material is in contact with the cleaning fluid contained in the body. Additionally or alternatively, the temperature sensitive material may not be in direct contact with the cleaning fluid. For example, the temperature sensitive material may be in contact with an exterior portion of the body sufficient to sense the temperature of the cleaning fluid contained in the body.
[0089] Temperature-sensitive materials useful in accordance with the present disclosure include, but are not limited to, one or more thermochromic paints (e.g., paints including liquid crystals, leuco dyes, one or more inorganic compounds), one or more thermochromic pigments, one or more inks, or combinations thereof.
[0090] Additionally or alternatively, the signal may include a change in position of a fluid contained in the temperature indicator. For example, the temperature indicator may include a conduit containing a fluid, where the fluid has a first position when contacted with a temperature below a selected temperature or temperature range, such as a temperature below an acceptable temperature range described herein. The fluid can have a second position when contacted with a temperature within a selected temperature range, such as an acceptable temperature range described herein. For example, the second position may include an increase in the fluid in the conduit. Optionally, the temperature-sensitive material can have a third position when contacted with a temperature above a selected temperature or temperature range, such as a temperature above an acceptable temperature range described herein. According to some embodiments, the first and third positions are different from the second position. Optionally, the first position may be different from the third position.
[0091] According to some embodiments, the conduit may include a fluid flow path through which the fluid can travel by capillary action. As used herein, the term "capillary action" refers to the action of a fluid flowing into and through a space without the assistance of and / or resistance to an external force, such as gravity. In one non-limiting example, the conduit may have a length-to-diameter ratio sufficient to achieve capillary action. The temperature indicator may include one or more conduit groups, each of which may include one, two, or three or more conduits to provide acceptable visibility to a user. The fluid contained in the one or more conduits may include any fluid configured to move by capillary action as described herein, such as water, alcohol, and / or any liquid with a sufficient coefficient of thermal expansion to move by capillary action. According to some embodiments, the fluid may include a colorant as described herein. It should be understood that the fluid included in the temperature indicators described herein may remain in a liquid state upon contact with heat provided by the heating components described herein.
[0092] According to some embodiments, the conduit may not be in direct contact with the cleaning fluid, thereby eliminating the need for the conduit to be sterile. For example, the conduit may contact an exterior portion of the body sufficient to sense the temperature of the cleaning fluid contained in the body. Additionally or alternatively, the body may include one or more internal passages, as described herein, configured to communicate with a portion of a temperature indicator, such as a conduit or a probe configured to communicate with the conduit. In this example, the conduit or probe may be inserted into a passage sufficient to sense the temperature of the cleaning fluid contained in the body, without needing to directly contact the cleaning fluid.
[0093] Additionally or alternatively, the signal may include the appearance of text, symbols, or other observable cues. Additionally or alternatively, the signal may include an audible signal, such as an alarm. According to some aspects, the temperature indicator may include a device, such as a thermocouple, capable of communicating with an external device, such as an external electronic device. The external electronic device may be configured to provide the signals described herein. In one non-limiting example, the thermocouple may be hardwired to the external electronic device. Additionally or alternatively, the thermocouple may be configured to communicate with the external electronic device via wireless technology, such as Bluetooth technology.
[0094] According to some aspects, devices and / or systems according to the present disclosure may include components configured to shake, rotate, vibrate, or otherwise move the body sufficient to more evenly distribute the heated cleaning fluid within the body. For example, the components may include devices configured to shake, rotate, vibrate, or otherwise move the body during and / or after the warming process, with or without a heating component as described herein. This may provide a faster and more efficient warming process by more evenly distributing the heated fluid within the body.
[0095] The body according to the present disclosure may include a connector configured to selectively place the body in fluid communication with the applicator member. As used herein, the term "connection" refers to a portion of the body configured to provide a secure connection between the body and the application member to controllably dispense a fluid (e.g., antiseptic solution) from the body to the application member.
[0096] In one example, the connector is configured to secure the body and the applicator member such that a first opening included in the body is aligned with a second opening included in the applicator member sufficient to provide fluid communication between the body and the applicator member. The connector may include any connector type known in the art useful in accordance with the present disclosure.
[0097] 3 shows one example of a connecting portion 33 configured to connect a body 31 and an applicator member 32. In this example, the connecting portion 33 includes protrusions configured to interact with corresponding protrusions included on the applicator member to form a threaded connection, thereby allowing the body 31 to be threaded onto the applicator member 32. It should be understood that in this example, threading the body 31 onto the applicator member 32 via the connecting portion 33 aligns the opening 34 of the body 31 with the opening 35 of the applicator member 32 to provide fluid communication between the body 31 and the applicator member 32 when they are connected.
[0098] According to some aspects, the body may be provided with a removable lid, e.g., a cap, configured to interact with the connection portion of the body instead of the applicator member, It should be appreciated that the lid may prevent fluid from being expelled from the body, for example, during storage or transport of the body.
[0099] According to some embodiments, the connection may be provided with a fluid metering device, e.g., a valve, that is provided in communication with (e.g., at) the opening in the body and may be sufficient to affect the flow of fluid from the body.
[0100] The present disclosure also relates to a system including a body as described herein and one or more application members, each of which may be configured to apply a cleaning fluid to a surface sufficient for a cleaning process.
[0101] According to some embodiments, the system accommodates interchangeable application members by including a connector configured to interface with two or more different application members. For illustrative purposes, using the example shown in FIG. 3 , the system may include a body 31 having a connector 33 as shown. The system may further include one or more application members, each having a connector 36 having substantially the same size and shape, such that each of the one or more application members can be interchangeably connected to the body 31. This allows a user to select from two or more application members based on their cleaning process preferences and requirements without requiring multiple body types. Thus, systems according to the present disclosure beneficially allow a user to select from a variety of different application members, each of which can provide a unique fluid flow rate, fluid flow pattern, and / or fluid flow force, as described in more detail herein.
[0102] 5 illustrates one exemplary applicator member 50 according to the present disclosure. As shown in FIG. 5, applicator member 50 may include a connecting portion 51 and a discharge portion 52. As described herein, connecting portion 51 may be configured to connect applicator member 50 to a main body. Discharge portion 52 may include one or more discharge openings 53 configured to dispense a fluid (e.g., an antiseptic solution as described herein) onto a surface, such as a surgical site, during a cleaning process.
[0103] In the example shown in FIG. 5 , the discharge portion 52 may include a semi-flexible conduit with adjustable conduit shape and / or direction. This allows the angle and / or direction of fluid discharge to be adjusted before and / or during the cleaning process. As used herein, the term “semi-flexible” refers to the ability to bend or compress in addition to maintaining shape when subjected to fluid flow and / or operational pressures, such as those from user handling. According to some embodiments, the degree of flexibility of a semi-flexible component may depend, at least in part, on the material of the applicator member, the shape of the discharge portion, the length of the discharge portion, or a combination thereof. It should be appreciated that the applicator member 50 shown in FIG. 5 advantageously provides control over the flow path of the dispensed fluid, allowing a user to direct the fluid (e.g., antiseptic solution) onto irregularly shaped and / or hard-to-reach surfaces, such as an irregularly shaped and / or hard-to-reach surgical site.
[0104] FIG. 6 illustrates another exemplary applicator member 60 according to the present disclosure. As shown in FIG. 6, applicator member 60 may include a connecting portion 61 and a discharge portion 62. Connecting portion 61 may be configured to connect applicator member 60 to main body 600 as described herein. Discharge portion 62 may include one or more discharge openings 63 configured to dispense a fluid (e.g., antiseptic solution) onto a surface, such as a surgical site, during a cleaning process. It should be understood that discharge portion 62 may include a conduit 64, which may be a semi-flexible conduit, a flexible conduit, or a rigid conduit, as described in connection with FIG. 5.
[0105] As shown in FIG. 6, the application member 60 may further include a dispensing aid 65 as described herein, such as a pump. For example, as shown in FIG. 7A, the dispensing aid may be a mechanical pump. FIG. 7A shows a hand pump 71 that moves fluid upon compression by a user's hand 72. Additionally or alternatively, as shown in FIG. 7B, the dispensing aid may be an electric pump. FIG. 7B shows an electric pump 73 that moves fluid using electrical energy generated, for example, by a battery 74.
[0106] It should be appreciated that the application member 60 having the dispensing aid 65 described herein can dispense cleaning fluid (e.g., disinfectant solution) from the body 600 upon actuation of the dispensing aid 65 (e.g., actuation of a pump described herein). Additionally or alternatively, the dispensing aid 65 can function to dispense fluid from the body 600 in conjunction with gravity. For example, FIG. 6 illustrates an exemplary body 600 similar to that shown in FIG. 2A, i.e., a body configured to dispense at least a portion of the contained cleaning fluid by gravity when oriented in a particular direction. It should be appreciated that the dispensing aid advantageously allows a user to control the fluid flow force, fluid flow rate, and / or fluid flow pattern (e.g., pulsed or constant) of the dispensed cleaning fluid.
[0107] While the examples shown in Figures 5 and 6 depict a discharge portion having one discharge opening, it should be understood that the discharge portion may include two, three, four, or more discharge openings. Each of the discharge openings may have the same or a different size as one or more of the other discharge openings. Additionally or alternatively, each of the discharge openings may have the same or a different shape as one or more of the other discharge openings. The shape and / or size of one or more discharge openings may be selected to provide a particular fluid flow force, fluid flow rate, and / or fluid flow pattern. According to some embodiments, the shape and / or size of one or more discharge openings may be adjustable so that the fluid flow force, fluid flow rate, and / or flow pattern of the dispensed fluid can be adjusted.
[0108] According to some embodiments, one or more discharge openings may be provided in a nozzle portion of a discharge portion of an application member. For example, FIG. 8 illustrates a body 800 in fluid communication with an application member 80 having a connection portion 81 and a discharge portion 82, as described herein. As shown in FIG. 8, the discharge portion 82 may include a nozzle 83 having one or more discharge openings 84, as described herein. It should be understood that the nozzle 83 may be removable or replaceable, such that the same application member 80 may include at least two different interchangeable nozzles 83. Thus, a system according to the present disclosure may include at least one application member and two or more interchangeable nozzles, as described herein.
[0109] 8, the application member 80 may further include a dispensing aid including a pump shaft 85 and an actuator 86, such as a button. In this example, the nozzle 83 may be adapted to provide a fluid mist in conjunction with the pump shaft 85 when the actuator 86 is actuated by any mechanism known in the art. It should be understood that, additionally or alternatively, the nozzle 83 may be configured to provide a fluid stream, a fluid spray, or a combination thereof.
[0110] FIG. 9 illustrates another example of a system according to the present disclosure. As shown in FIG. 9 , an application member 90 may include a connection portion 91 and a discharge portion 92, as described herein. The discharge portion may include a nozzle 93 and an actuator 94, such as a trigger. In this example, the application member 90 may further include a conduit 95 in fluid communication with a fluid contained in the body 900, as described herein. In this example, the body 900 may be pressurized. Upon actuation of the actuator 94 (e.g., upon compression of the trigger), the pressure in the conduit 95 may fall below the pressure in the body 900, thereby forcing fluid from the body 900 into the application member 90. The nozzle 93 may be configured to provide, for example, a fluid stream, a fluid mist, a fluid spray, or a combination thereof.
[0111] FIG. 10 illustrates another example of a system according to the present disclosure. As shown in FIG. 10 , an application member 100 may include a connection portion 101 and a discharge portion 102, as described herein. The discharge portion may include a nozzle 103. In this example, the nozzle 103 may also function as an actuator, for example, by being pressed toward the main body 1000. The application member 100 may further include a conduit 104 in fluid communication with a fluid contained in the main body 1000. As described in connection with FIG. 9 , the main body 1000 may be pressurized. As described in connection with FIG. 9 , upon actuation of the nozzle 103, the pressure in the conduit 104 may fall below the pressure in the main body 1000, thereby forcing fluid from the main body 1000 into the application member 100.
[0112] Figure 11 shows another exemplary system according to the present disclosure, similar to the example shown in Figure 10, including an applicator member 110, a connection portion 111, an outlet portion 112 including a nozzle 113, and a conduit 114. Figure 11 shows that the nozzle 113 may further include an actuator 115, such as a button. As described in relation to Figures 9 and 10, the body 1100 may be pressurized such that upon actuation of the actuator 115 (i.e., by pressing the button), the pressure in the conduit 114 falls below the pressure in the body 1100, thereby forcing fluid from the body 1100 into the applicator member 110.
[0113] FIG. 12 illustrates another example of a system according to the present disclosure. As shown in FIG. 12, the application member 120 may include a connection portion 121 and a discharge portion 122, as described herein. The discharge portion may include a first nozzle 123 and an actuator 124. As described in connection with FIGS. 9, 10, and 11, the main body 1200 may be pressurized. Additionally or alternatively, the system may include a cartridge (not shown) containing a propellant configured to provide an aerosol as known in the art. The propellant may be any propellant acceptable for medical use according to the present disclosure, including, but not limited to, carbon dioxide, nitrous oxide, nitrogen, helium, argon, air, and any combination thereof. As used herein, the term "air" refers to the Earth's natural atmosphere.
[0114] The exemplary system shown in FIG. 12 also illustrates multiple interchangeable nozzles 125, as described herein. It should be understood that, as described herein, each of the multiple interchangeable nozzles 125 is configured to be interchangeable with nozzle 123, thereby providing a single application member 120 and body 1200 configured to dispense fluid to a surface through various nozzles to provide a variety of selectable fluid flow rates, fluid flow patterns, and / or fluid flow forces. It should be understood that the systems described herein may include at least a body configured to be in fluid communication with one or more different application members, as described herein, each of the one or more different application members having at least one discharge opening, the at least one discharge opening optionally being included in a removable, interchangeable nozzle. It should be understood, therefore, that the systems described herein may be configured to deliver cleaning fluid to a surface with one or more selectable different fluid flow rates, fluid flow patterns, and / or fluid flow forces, as described herein.
[0115] For example, a system can include at least two different application members and / or at least two different nozzles, as described herein, where each of the at least two different application members and / or each of the at least two different nozzles is configured to provide a unique fluid flow rate, fluid flow pattern, and / or fluid flow force. According to some embodiments, a single application member and / or a single nozzle may be configured to provide at least two unique fluid flow rates, fluid flow patterns, and / or fluid flow forces, as described herein, for example, by providing one or more discharge openings with adjustable shapes and / or sizes.
[0116] According to some embodiments, the system may be configured to provide an acceptable fluid flow rate for the cleaning process. As used herein, the term "fluid flow rate" refers to the rate at which a fluid is applied to a surface, such as a human subject, during the cleaning process. The fluid flow rate may depend, at least in part, on the delivery mechanism (e.g., body compression, body orientation, use of a dispensing aid, or a combination thereof, as described herein) and / or the characteristics of the application member and / or nozzle, as described herein. According to some embodiments, the fluid flow rate may be related to the fluid flow force. For example, an increase in fluid flow rate can correspond to an increase in fluid flow force, and vice versa. Systems according to the present disclosure may be configured to provide at least two, optionally at least three, optionally at least four, and optionally at least five different selectable fluid flow rates.
[0117] According to some embodiments, the system may be configured to provide an acceptable fluid flow force for the cleaning process. As used herein, the term "fluid flow force" refers to the force that a fluid exerts on a surface, such as a human subject, during the cleaning process. The acceptable fluid flow force may be determined based on the requirements of the cleaning process. Exemplary fluid flow forces useful in accordance with the present disclosure include, but are not limited to, about 10-50 g, optionally about 15-45 g. According to some embodiments, the fluid flow force may be about 15 g. According to some embodiments, the fluid flow force may be about 30-45 g. Other exemplary fluid flow forces useful in accordance with the present disclosure include, but are not limited to, about 1-15 psi (referred to herein as "low pressure") and about 35-70 psi (referred to herein as "high pressure").
[0118] It should be understood that the fluid flow forces provided by the systems described herein may depend, at least in part, on the characteristics of the delivery mechanism and / or the application member and / or nozzle, as described herein. Systems according to the present disclosure may be configured to provide at least two, optionally at least three, optionally at least four, and optionally at least five different selectable fluid flow forces. It should be understood that each selectable fluid flow force may correspond, for example, to a particular delivery mechanism, a particular application member, a particular nozzle, or a combination thereof, as described herein. For example, one or more selectable flow forces may correspond to an application member having an actuator, such as a trigger, as described herein, and each of the one or more selectable flow forces may correspond to a degree of trigger compression. In another example, one or more selectable flow forces may correspond to a nozzle having one or more discharge openings, and each of the one or more selectable flow forces may correspond to the shape and / or size of the one or more discharge openings.
[0119] According to some embodiments, the system is configured to provide an acceptable fluid flow pattern for the cleaning process. As used herein, the term "fluid flow pattern" refers to the pattern in which a fluid is dispensed from a device and / or applied to a surface, such as a human subject, during a cleaning process. In some non-limiting examples, the fluid flow pattern may include a fluid mist (i.e., fine fluid particles suspended in a gas), a fluid stream (i.e., a steady, continuous stream of fluid), a fluid spray (i.e., fine fluid particles), or a combination thereof. The fluid flow pattern may be constant (e.g., in the case of fluid dispensed from a device and / or applied to a surface in a continuous manner) or pulsed (e.g., in the case of fluid dispensed from a device and / or applied to a surface in an intermittent manner).
[0120] Additionally or alternatively, a fluid flow pattern may refer to the angle at which a fluid flow path is dispensed from a device and / or applied to a surface. For example, a fluid flow path, as described herein, can have a fluid flow pattern that is generally perpendicular to the longitudinal axis of the body.
[0121] Additionally or alternatively, the fluid flow pattern may refer to the geometry of the fluid flow path, which should be understood to refer to the shape defined by a cross-section of the fluid flow path in any of the x-, y-, and z-directions.
[0122] It should be understood that the fluid flow pattern may depend, at least in part, on the delivery mechanism and / or application member and / or nozzle, as described herein. Systems according to the present disclosure may be configured to provide at least two, optionally at least three, optionally at least four, and optionally at least five different selectable fluid flow patterns. For example, one or more selectable flow patterns may correspond to a dispensing aid, such as a pump, which may be configured to provide a constant fluid flow from the body and / or a pulsed fluid flow from the body. In another example, the one or more selectable flow patterns may correspond to an application member outlet, such as an outlet including a semi-flexible conduit, as described herein. In this example, the one or more selectable flow patterns may include one or more fluid delivery angles corresponding to the shape and / or orientation of the semi-flexible conduit, as described herein.
[0123] According to some embodiments, one or more components of the systems described herein may be provided in sterile packaging. As used herein, the term "sterile packaging" refers to packaging that provides a sterile environment to maintain the sterility of the contained sterile product. Exemplary sterile packaging includes, but is not limited to, sterile blister packaging, sterile safe-edge trays, sterile surgical trays, customized sterile thermoform packaging, and combinations thereof. It should be understood that one or more components of the system may be provided in the same sterile packaging as at least one other component of the system and / or in separate sterile packaging. For example, a first component of the system may be contained in a first sterile packaging, and a second component of the system may be contained in a second sterile packaging. In one non-limiting example, the system may include a body contained in a first sterile packaging and an application member contained in a second sterile packaging. In another non-limiting example, the system may include a body contained in a first sterile packaging, an application member contained in a second sterile packaging, and / or a heating component contained in a third sterile packaging. It will be appreciated that providing one or more components of the system in different sterile packaging allows each component of the system to be removed immediately prior to use, thereby preventing prolonged exposure of one or more components to an unsterile environment, thereby allowing the system to be presented fully assembled and in a sterile condition.
[0124] The present disclosure also relates to methods of using the devices and systems described herein. For example, the method may include providing a body containing a cleaning fluid, the body including a connection. The method may include placing the body in fluid communication with an application member and dispensing a cleaning fluid described herein sufficient to perform a cleaning process.
[0125] In another example, a method may include providing a body containing a cleaning fluid in communication with a warming component described herein. The method may include heating the cleaning fluid contained in the body to a temperature within an acceptable temperature range via an interface between the warming component and the body. The method may also optionally include observing a temperature indicator of a signal described herein, the signal being indicative of a particular temperature or temperature range of the cleaning fluid contained in the body. The method may further include dispensing sufficient cleaning fluid to perform the cleaning process.
[0126] While the embodiments described herein have been described in conjunction with the exemplary embodiments outlined above, various alternatives, variations, modifications, improvements, and / or substantial equivalents, whether known or presently unforeseen, will become apparent to those skilled in the art. Accordingly, the exemplary embodiments as set forth above are intended to be illustrative rather than limiting. Various modifications can be made without departing from the spirit and scope of the present disclosure. Accordingly, the present disclosure is intended to embrace all known or later-developed alternatives, variations, modifications, improvements, and / or substantial equivalents.
[0127] Accordingly, the claims are not intended to be limited to the embodiments set forth herein, but are to be accorded full scope consistent with the language of the claims, and reference to an element in the singular is intended to mean "one or more," and not "one and only one," unless expressly stated otherwise. All structural and functional equivalents to the elements of the various embodiments described throughout this disclosure that are known or later become known to those of ordinary skill in the art are expressly incorporated herein by reference and are intended to be encompassed by the claims. Furthermore, nothing disclosed herein is intended to be made available to the public, regardless of whether such disclosure is expressly recited in the claims. No claim element is to be construed as a means-plus-function unless the element is expressly recited using the phrase "means for."
[0128] The word "exemplary" is used herein to mean "serving as an example, instance, or illustration." Any aspect described herein as "exemplary" is not necessarily to be construed as preferred or advantageous over other aspects. Unless otherwise specified, the term "some" refers to one or more. Combinations such as "at least one of A, B, or C," "at least one of A, B, and C," "A, B, C, or any combination thereof" can include any combination of A, B, and / or C, and can include multiples of A, multiples of B, and multiples of C. Specifically, combinations such as "at least one of A, B, or C," "at least one of A, B, and C," "A, B, C, or any combination thereof" can be A only, B only, C only, A and B, A and C, B and C, or A, B, and C, and any of these combinations can include one or more of A, B, or C. Nothing disclosed herein is intended to be made available to the public, whether or not such disclosure is expressly recited in the claims.
[0129] The word "about" is used herein to mean within ±5%, optionally within ±4%, optionally within ±3%, optionally within ±2%, optionally within ±1%, optionally within ±0.5%, optionally within ±0.1%, optionally within ±0.01% of the stated value.
Claims
1. 1. A system for applying a cleaning fluid to a surface, comprising: a body configured to contain a cleaning fluid and having at least one internal passage; an applicator member in fluid communication with the body and configured to dispense the cleaning fluid; a heating component configured to communicate with the body to transfer energy to the body sufficient to heat the cleaning fluid contained in the body; the heating component includes a base and a protrusion configured to fit into the at least one internal passage; The system wherein the heating element contacts the body at a surface contained within the at least one internal passageway.
2. The system of claim 1 , wherein the heating component includes a sleeve configured to fit around at least a portion of the body.
3. The system of claim 1 , wherein the body has a plurality of internal passages.
4. The system of claim 1 , wherein the at least one internal passageway and the protrusion are linear.
5. The system of claim 1 , wherein the at least one internal passage and the protrusion have complementary helical shapes.
6. The system of claim 1 , wherein the heating component comprises an energy absorbing heating material.
7. The system of claim 1 , wherein the heating component comprises an activatable heating material configured to provide heat upon activation.
8. The system of claim 1 , wherein the heating component is configured to contain a heating fluid therein.
9. The system of claim 8 , wherein the heated fluid comprises heated water.
10. The heating component is an inlet configured to allow the heating fluid to enter the heating element; and an outlet configured for the heating fluid to exit the heating component.
11. 11. The system of claim 10, wherein at least one of the inlet and outlet has a restrictive feature selected from the group consisting of a one-way valve and an actuated valve.
12. The system of claim 1 , wherein the heating component is configured to transfer sufficient energy to the main body to heat the cleaning fluid contained in the main body to a temperature between 32°C and 43°C.
13. 13. The system of claim 12, wherein the heating component is configured to transfer sufficient energy to the body to heat the cleaning fluid contained in the body to the temperature in a heating period of 5 minutes or less.
14. The system of claim 12 , further comprising a temperature indicator configured to provide a signal when the cleaning fluid reaches the temperature.
15. The system of claim 14 , wherein the signal comprises a color change of a temperature sensitive material.
16. The system of claim 14 , wherein the temperature indicator is included in at least one of the body and the heating element.
17. The system of claim 1 , wherein the heating component includes a plurality of body housings, each of the plurality of body housings configured to house a body.
18. 10. The system of claim 1, wherein the cleaning solution comprises an iodine-containing disinfectant and water.
Citation Information
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