The present application for patent is in the field of fluid sterilization and more specifically is in the field of delivery systems which deliver sterilized fluids on demand.
There are a number of systems in which fluids are stored and maintained until needed, such as, for example, coffee delivery systems, soda machines and other similar devices which deliver fluids on demand from a holding reservoir. These systems can harness and promote growth of bacteria, viruses, molds and other infectious microorganisms within the fluid reservoir as well as any lines or conduits that deliver the fluids, especially when these systems are inactive for short periods of time, allowing the microorganisms to grow and multiply. Even sterilized fluids in a reservoir may pick up infectious microorganisms when the fluids are delivered through lines and conduits that contain the infectious microorganisms.
Currently available solutions to this problem rely on heat as the sole method of killing these microorganisms. While helpful, heat alone cannot kill or deactivate the microorganisms. In the current climate of virus and germ pandemics, new and better ways to prevent distribution of harmful organisms is necessary. Thus, there is a need to further reduce or eliminate harmful microorganisms that reside in fluid delivery systems, both in the reservoirs and delivery lines and conduits.
As used herein, the conjunction “and” is intended to be inclusive and the conjunction “or” is not intended to be exclusive unless otherwise indicated. For example, the phrase “or, alternatively” is intended to be exclusive.
As used herein the phrase “at least one” means one or more as desired.
As used herein the term “opaque” means the blocking of the passage of electromagnetic radiation such as, for example, ultraviolet light radiation.
As use herein the term “baffle” refers to flow-directing or obstructing vanes or panes.
In a first embodiment, disclosed and claimed herein is a fluid sterilizing device comprising a reservoir comprising a lid, a bottom and sides for containing a fluid comprised of material which is opaque to UVC radiation, at least one window positioned in the bottom of the reservoir for allowing the passage of UVC radiation into the interior of the reservoir, a base component configured to accept the reservoir comprising at least one UVC emission source positioned at the at least one window and positioned to emit UVC radiation into the interior of the reservoir, wherein the at least one UVC emission source is a UVC cold cathode mercury vapor lamp, a UVC LED or both when more than one UVC source is present and wherein the surface of the lid that is positioned inwardly to the interior of the reservoir has a UVC reflective surface.
In a second embodiment, disclosed and claimed herein is the device of the above embodiment wherein the lid further comprises a shut-off switch configured to disable the UVC transmission from the at least one UVC emission source when the lid opens, and an activation switch situated in the base that activates the UVC emission sources when the reservoir is positioned into or onto the base.
In a third embodiment, disclosed and claimed herein are devices of the above embodiments wherein the UVC emission sources are programmed to activate intermittently, at various intensities and for varying lengths of time.
In a fourth embodiment, disclosed and claimed herein is a fluid sterilizing device comprising a reservoir, comprising a lid, a bottom and sides for containing a fluid comprised of material which is opaque to UVC radiation, wherein the lid is comprised of at least one UVC radiation source positioned in the lid such that, in operation, the UVC emission source emits UVC sterilizing radiation into the interior of the reservoir and wherein the interior of the reservoir my optionally be covered with expanded PTFE.
In a fifth embodiment, disclosed and claimed herein are devices of the above embodiments wherein the at least one UVC emission source is a UVC cold cathode mercury vapor lamp, a UVC LED or both when more than one UVC source is present and wherein the surface of the lid that is positioned inwardly to the interior of the reservoir has a UVC reflective surface.
In a sixth embodiment, disclosed and claimed herein are devices of the above embodiments wherein the lid further comprises a shut-off switch configured to disable the UVC transmission from the at least one UVC emission source when the lid opens, and an activation switch situated in the base that activates the UVC emission sources when the reservoir is positioned into or onto the base.
In a seventh embodiment, disclosed and claimed herein are devices of the above embodiments wherein the UVC emission sources are programmed to activate intermittently, at various intensities and for varying lengths of time.
In an eighth embodiment, disclosed and claimed herein are devices of the above embodiments further comprising an in-line sterilization module configured to receive an output of fluid from the reservoir, comprising, a tubing structure comprised of quartz, FEP or both, situated inside a housing having a UVC reflective interior surface, at least one UVC emission source positioned proximate to the tubing structure, a fluid inlet port and a fluid outlet port, and expanded PTFE reflective materials wrapped around at least a portion of the tubing structure. The tubing structure may be a one bend loop, a spiral loop or combinations thereof.
In an ninth embodiment, disclosed and claimed herein are devices of the above embodiments further comprising an in-line sterilization and filtration module configured to receive an output of fluid from the reservoir, comprising, a filter through which the fluid from the reservoir passes, and a baffling system of at least two vanes, at least one UVC emission source positioned in the module to emit sterilization of the fluid when the fluid passes through the baffle system and wherein the intensity of the UVC emission is programmable.
In a tenth embodiment, disclosed and claimed herein are devices of the above embodiments further comprising an in-line sterilization module configured to receive an output of fluid from the reservoir, comprising a tubing structure comprised in quartz, FEP or both, situated inside a housing having a UVC reflective interior surface, at least one UVC emission source positioned proximate to the tubing structure, a fluid inlet port and a fluid outlet port, and expanded PTFE reflective materials wrapped around at least a portion of the tubing structure. The tubing structure may be a one bend loop, a spiral loop or combinations thereof.
In an eleventh embodiment, disclosed and claimed herein are devices of the above embodiments further comprising an in-line sterilization and filtration module configured to receive an output of fluid from the reservoir, comprising, a filter through which the fluid from the reservoir passes, and a baffling system of at least two vanes, at least one UVC emission source positioned in the module to emit sterilization of the fluid when the fluid passes through the baffle system, wherein the intensity of the UVC emission is programmable.
In a twelfth embodiment, disclosed and claimed herein is a fluid sterilization device for simultaneous sterilization comprising a. a reservoir component comprising a lid, a bottom and sides for storing fluids, b. a tubing system configured to allow the fluids stored in the reservoir to pass through positioned proximate to the reservoir, c. at least one UVC emitting source positioned between the reservoir and the tubing system configured to emit UVC sterilizing radiation into the reservoir containing stored fluids and, simultaneously, the tubing system through which the stored fluids are transported, wherein the at least one UVC emitting source is a cold cathode mercury vapor lamp, a UVC LED or a combination when more than one UVC source is present, wherein the interior surfaces of the components are UVC emission reflective. The tubing system is constructed of corrugated materials which allow UVC sterilizing radiation to pass, wherein the tubing system is constructed of UVC corrugated FEP and connected by silicone connectors.
The current disclosure reduces or eliminates harmful microorganisms that reside in fluid delivery systems such as in fluid reservoirs as well as the tubing systems used to deliver the fluids to a desired site. by either killing them or deactivation them through exposure to UVC sterilizing radiation.
One embodiment is a fluid sterilization device as shown in
The reservoir is positioned into a base component,
The UVC emission sources may be configured to activate at various times and for various periods in order to provide the optimum sterilization protocol. The exposure may be short, high intensity light pulsed. For example, in the application of a coffee delivery system, the UVC sources may be programmed to deliver sterilizing radiation for 2 minutes every 15 minutes. The current disclosure is not limited to any time length or time period, for example, if desired, the UC emission source could be activated for 24 hours a day. Fluids suitable to benefit from the current disclosure are those that act as media for the growth and propagation of infectious microorganisms, such as, for example, any aqueous-based systems as used in coffee delivery systems.
The devices of the current disclosure may be configured to be power by external current or have power supplied by batteries or rechargeable batteries.
In another embodiment shown in
In another embodiment are devices that further contain an in-line sterilization module configured to receive fluid from the reservoir or base of the above embodiments shown in
In another embodiment are devices that further contain an in-line sterilization module configured to receive fluid from the reservoir or base of the above embodiments as shown in a top view in
In another embodiment are devices that further contain an in-line sterilization module configured to receive fluid from the reservoir or base of the above embodiments as shown in
This application claims the benefit of U.S. Provisional Application No. 62/994,692 filed 25 Mar. 2020 under 35 U.S.C. § 119(e); which application is incorporated by reference herein in their entirety.