DEVICES, SYSTEMS AND METHODS FOR TREATING MEDICAL DEVICES HAVING PASSAGEWAYS WITH OZONE GAS
20200171186 ยท 2020-06-04
Inventors
Cpc classification
A61M16/00
HUMAN NECESSITIES
A61L2202/24
HUMAN NECESSITIES
International classification
Abstract
The present disclosure is generally related to devices, methods and systems for cleaning, disinfecting and/or sterilizing a medical device, medical hoses and tubes and accessories thereof with ozone gas, in particular the disclosure relates to devices, methods and systems with multiple receptacles for providing closed-loop fluid pathways to distribute ozone gas to inner passageways and the outer compartments of medical devices. The devices in accordance with an embodiment of the disclosure have two or more receptacles for distributing ozone gas, a gas-tight compartment, an ozone operating system, and one or more connector units configured to fluidly migrate ozone in closed-loop treatment systems.
Claims
1. An ozone treatment system, comprising: an ozone operating system configured to generate ozone gas; a distribution line configured to fluidly couple to and receive ozone gas from the ozone operating system; a connector unit configured to fluidly couple to and receive ozone gas from the distribution line; and a continuous positive airway pressure (CPAP) hose comprising a first end and a second end, wherein the first end is configured to fluidly couple to and receive ozone gas from the connector unit; wherein when: the distribution line is fluidly coupled to the connector unit and the ozone operating system; the first end of the CPAP hose is fluidly coupled to the connector unit; and the ozone operating system is in operation, ozone gas generated by the ozone operating system flows into the ozone distribution line and into the connector unit, and ozone gas flows from the connector unit into the CPAP hose.
2. The ozone treatment system of claim 1, further comprising a gas tight compartment, wherein: the second end of the CPAP hose is configured to fluidly couple with an interior of the gas tight compartment; and when: the distribution line is fluidly coupled to the connector unit and the ozone operating system; the first end of the CPAP hose is fluidly coupled to the connector unit; the second end of the CPAP hose is fluidly coupled to the interior of the gas tight compartment; and the ozone operating system is in operation, ozone gas generated by the ozone operating system flows into the ozone distribution line and into the connector unit, and ozone gas flows from the connector unit, into the CPAP hose, and into the interior of the gas tight compartment.
3. The ozone treatment system of claim 1, further comprising a CPAP device, wherein: the connector unit is further configured to couple to said CPAP device; and when: the distribution line is fluidly coupled to the connector unit and the ozone operating system; the first end of the CPAP hose is fluidly coupled to the connector unit; and the connector unit is coupled to the CPAP device; and the ozone operating system is in operation, ozone gas generated by the ozone operating system flows into the ozone distribution line and into the connector unit, and ozone gas flows from the connector unit into the CPAP hose.
4. The ozone treatment system of claim 3, further comprising a gas tight compartment, wherein: the second end of the CPAP hose is configured to fluidly couple with an interior of the gas tight compartment; and when: the distribution line is fluidly coupled to the connector unit and the ozone operating system; the first end of the CPAP hose is fluidly coupled to the connector unit; the second end of the CPAP hose is fluidly coupled to the interior of the gas tight compartment; the connector unit is fluidly coupled to the cavity in the CPAP device; and the ozone operating system is in operation, ozone gas generated by the ozone operating system flows into the ozone distribution line and into the connector unit, and ozone gas flows from the connector unit, into the CPAP hose, and into the interior of the gas tight compartment.
5. The ozone treatment system of claim 4, wherein the gas tight container further comprises an exhaust port for exhausting ozone gas from the gas tight container.
6. The ozone treatment system of claim 4, further comprising an oxidizing catalyst to convert ozone gas to oxygen.
7. The ozone treatment system of claim 4, further comprising a sensor for sensing an amount of ozone within the interior of the gas tight container.
8. The ozone treatment system of claim 1, further comprising a CPAP device, wherein: said connector unit is configured to fluidly couple to a cavity in said CPAP device; and when: the distribution line is fluidly coupled to the connector unit and the ozone operating system; the first end of the CPAP hose is fluidly coupled to the connector unit; the connector unit is fluidly coupled to the cavity in the CPAP device; and the ozone operating system is in operation, ozone gas generated by the ozone operating system flows into the ozone distribution line, into the connector unit, and into the cavity of the CPAP device, and ozone gas flows from the connector unit into the CPAP hose.
9. The ozone treatment system of claim 8, further comprising a gas tight compartment, wherein: the second end of the CPAP hose is configured to fluidly couple with an interior of the gas tight compartment; and when: the distribution line is fluidly coupled to the connector unit and the ozone operating system; the first end of the CPAP hose is fluidly coupled to the connector unit; the second end of the CPAP hose is fluidly coupled to the interior of the gas tight compartment; the connector unit is fluidly coupled to the cavity in the CPAP device; and the ozone operating system is in operation, ozone gas generated by the ozone operating system flows into the ozone distribution line and into the connector unit, and ozone gas flows from the connector unit, into the CPAP hose, and into the interior of the gas tight compartment.
10. The ozone treatment system of claim 9, wherein the gas tight container further comprises an exhaust port for exhausting ozone gas from the gas tight container.
11. The ozone treatment system of claim 9, further comprising an oxidizing catalyst to convert ozone gas to oxygen.
12. The ozone treatment system of claim 9, further comprising a sensor for sensing an amount of ozone within the interior of the gas tight container.
13. An ozone treatment system, comprising: an ozone operating system configured to generate ozone gas; a distribution line fluidly coupled to the ozone operating system; a connector unit fluidly coupled to the distribution line; and a continuous positive airway pressure (CPAP) hose comprising a first end and a second end, wherein the first end is fluidly coupled to the connector unit; wherein in operation: the ozone operating system generates ozone gas; ozone gas flows into the ozone distribution line and into the connector unit; and ozone gas flows from the connector unit into the CPAP hose.
14. The ozone treatment system of claim 13, further comprising a gas tight compartment, wherein: the second end of the CPAP hose is fluidly coupled to an interior of the gas tight compartment; and in operation: the ozone operating system generates ozone gas; ozone gas flows into the ozone distribution line and into the connector unit; ozone gas flows from the connector unit and into the CPAP hose; and ozone gas flows from the CPAP hose into the interior of the gas tight compartment.
15. The ozone treatment system of claim 13, further comprising a CPAP device, wherein: the connector unit is coupled to said CPAP device; and in operation: the ozone operating system generates ozone gas; ozone gas flows into the ozone distribution line and into the connector unit; and ozone gas flows from the connector unit into the CPAP hose.
16. The ozone treatment system of claim 13, further comprising a gas tight compartment, wherein: the second end of the CPAP hose is fluidly coupled with an interior of the gas tight compartment; and in operation, ozone gas generated by the ozone operating system flows into the ozone distribution line and into the connector unit, and ozone gas flows from the connector unit, into the CPAP hose, and into the interior of the gas tight compartment.
17. The ozone treatment system of claim 16, wherein the gas tight compartment further comprises an exhaust port for exhausting ozone gas from the gas tight compartment.
18. The ozone treatment system of claim 16, further comprising an oxidizing catalyst to convert ozone gas to oxygen.
19. The ozone treatment system of claim 16, further comprising a sensor for sensing an amount of ozone within the interior of the gas tight container.
20. The ozone treatment system of claim 13, further comprising a CPAP device, wherein: said connector unit is fluidly coupled to a cavity in said CPAP device; and in operation, ozone gas generated by the ozone operating system flows into the ozone distribution line, into the connector unit, and into the cavity of the CPAP device, and ozone gas flows from the connector unit into the CPAP hose.
21. The ozone treatment system of claim 20, further comprising a gas tight compartment, wherein: the second end of the CPAP hose is fluidly coupled with an interior of the gas tight compartment; and in operation, ozone gas generated by the ozone operating system flows into the ozone distribution line and into the connector unit, and ozone gas flows from the connector unit, into the CPAP hose, and into the interior of the gas tight compartment.
22. The ozone treatment system of claim 21, wherein the gas tight container further comprises an exhaust port for exhausting ozone gas from the gas tight container.
23. The ozone treatment system of claim 21, further comprising an oxidizing catalyst to convert ozone gas to oxygen.
24. The ozone treatment system of claim 21, further comprising a sensor for sensing an amount of ozone within the interior of the gas tight container.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0007] Many aspects of the disclosure can be better understood with reference to the following drawings. The components in the drawings are not necessarily to scale, emphasis instead being placed upon clearly illustrating the principles of the present disclosure. Moreover, in the drawings, like reference numerals designate corresponding parts throughout the several views.
[0008]
[0009]
[0010]
[0011]
[0012]
[0013]
SUMMARY OF THE DISCLOSURE
[0014] The present disclosure relates to a device, system and method for cleaning, disinfecting and sterilizing medical devices, the system comprising, a device with an ozone operating system; a distribution line fluidly connected to the ozone operating system for receiving and distributing ozone gas; a first receptacle on the device, wherein the distribution line is fluidly coupled to the first receptacle for releasing ozone gas; a connector unit, wherein the connector unit is configured to be fluidly connected at a proximal end to the first receptacle on the device and fluidly connected at a distal end to a proximal end of a hose in one embodiment, in another embodiment to be fluidly connected to a second receptacle on the device, and in another embodiment to be fluidly connected to the proximal end of a medical device; and an exhaust port configured to be fluidly coupled to the distal end of the hose, such that ozone gas passes through the fluid passageway and is exhausted.
DETAILED DESCRIPTION
[0015]
[0016] In accordance with the embodiment shown in
[0017] In accordance with the embodiment shown in
[0018]
[0019] In accordance with the embodiment shown in
[0020]
[0021] Similar to
[0022] In accordance with the methods disclosed in
[0023]
[0024] As such, in accordance with one embodiment of the present disclosure, a system comprising, a device 300 with an ozone operating system; a distribution line 340 fluidly connected to the ozone operating system for receiving and distributing ozone gas; a first receptacle 305 on the device, wherein the distribution line 340 traverses the first receptacle and connects to a connector unit 310; the connector unit 310, wherein the connector unit 310 is configured to be fluidly connected to a medical device 350 and to a medical device hose 315; a second receptacle 330 that engages the hose 315 when the lid 332 is in a closed position with a free end immersed in a gas-tight compartment 335 in the device 300, is described.
[0025]
[0026] In accordance with yet another embodiment of the present disclosure, a device with an ozone operating system comprising; a first receptacle, wherein the first receptacle is adapted to fluidly transfer ozone gas from the ozone operating system to a hose; and a second receptacle, wherein the second receptacle is adapted to fluidly transfer ozone gas from the hose to an exhaust port, is described. In accordance with this embodiment the device further comprises a gas-tight compartment, wherein the exhaust port is coupled to the gas-tight compartment. The device in the present embodiment further comprises a connector unit, wherein the first end of the connector unit is configured to fluidly couple to the first receptacle and a second end is configured to fluidly couple to a first end of the hose. In accordance with this embodiment second receptacle on the device is configured to engage with a second end of the hose, allowing ozone gas to be released from the hose, through the second receptacle, into the gas-tight compartment. The device in the present embodiment further comprises a user interface coupled to the ozone operating system, a timer coupled to the ozone operating system, a sensor coupled to the ozone operating system for sensing remaining ozone in the medical device, an air pump coupled to the ozone operating system and an oxidizing catalyst coupled to the exhaust port to collect and break down ozone.
[0027] In addition to the devices, systems and methods shown in the proceeding examples, the closed-loop systems described include, in some embodiments, steps for delaying the start of an ozone process of a for a fixed period of time from the last ozone process for the safety of the consumers. The step of delaying the start time may range from may range from about 30 seconds to about 24 hours, depending on the device being treated and the level of cleaning, disinfection and/or sterilization required. In addition the step of sensing remaining ozone in a the medical devices being treated further increases the safety of the present treatment systems and methods for users, while also indicating to users that a medical device has been fully treated in accordance with user guidelines and required ozone exposure numbers. As such, the user interface may display a variety of ozone process information to a user, including but not limited to ozone cycle time, device being treated, ozone levels as detected by sensors, level of treatment required based on an assessment of bacterial, mold, dirt or other criteria on a device being treated, light or sound indicators, and consumable product indicators, for the convenience of users.
[0028] The present disclosure discloses, devices, systems and methods of using ozone gas in closed-loop systems to clean, disinfect and/or sterilize medical devices, medical device hoses and tubes and accessories. Examples of medical devices that may be cleaned, disinfected and/or sterilized in accordance with the embodiments described in the present disclosure include but are not limited to: surgical instruments, irrigation systems for sterile instruments in sterile tissues, endoscopes and endoscopic biopsy accessories, duodenoscopes, endotracheal tubes, bronchosopes, laryngosopes blades and other respiratory equipment, esophageal manometry probes, diaphragm fitting rings and gastrointestinal endoscopes, infusion pumps, ventilators, and continuous positive airway pressure devices (CPAP), prone to bacterial build-up because of humidified air and contact with a patients mouth. Many of the devices listed above include passageways that are difficult to clean, disinfect and sterilize, such as any of the endoscopes, probes, ventilators and CPAP devices and related hoses.
[0029] The present disclosure thus discloses unique cleaning, disinfecting and sterilizing devices with one or more receptacles and connector units for cleaning, disinfecting and/or sterilizing multiple medical devices, medical tubes and accessories. The devices, systems and methods described may include multiple connector units of different sizes and shapes, multiple ozone distribution lines from a device, wherein the devices may be of any size and shape, a timer, a sensor for sensing ozone in the closed-loop systems, a display for displaying cycle parameters and information, medical device cycle levels, cycle times, a controller for controlling release of ozone into the closed-loop systems, a locking mechanism for locking the device, an exhaust port, and a oxygen catalyst coupled to the exhaust port and uniquely designed connector units that connect to multiple medical devices.
[0030] It should be emphasized that the above-described embodiments of the present disclosure, particularly, any preferred embodiments, are merely possible examples of implementations, merely set forth for a clear understanding of the principles of the disclosure. Many variations and modifications may be made to the above-described embodiments of the disclosure without departing substantially from the spirit and principles of the disclosure. All such modifications and variations are intended to be included herein within the scope of this disclosure and the present disclosure and protected by the following claims.