Conduit connector for patient breathing device

JP2025071097A5Pending Publication Date: 2026-03-05FISHER & PAYKEL HEALTHCARE LTD
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Patent Information

Application Number
JP2025009377
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2011-08-10
Filing Date
2025-01-22
Publication Date
2026-03-05

AI Technical Summary

Technical Problem

Nasal cannulas used for providing humidified air or oxygen therapy face issues such as discomfort due to tangling or kinking of tubing, inaccurate airflow monitoring due to probe distance from the air prongs, and difficulty in quick attachment or detachment from gas sources, which can be critical in emergency situations.

Method used

A connector assembly that includes a sensor support to position the sensor probe closer to the patient's nostrils, a self-aligning connector design for easy and secure attachment and detachment, and a rotatable connection to facilitate adjustment and comfort.

Benefits of technology

The solution enhances patient comfort by reducing tubing-related discomfort, improves airflow monitoring accuracy by placing the sensor closer to the air source, and ensures quick and secure attachment/detachment for emergency situations.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a conduit connector that provides excellent comfort and / or safety.SOLUTION: A connector or connector assembly for attaching a nasal cannula to a gas delivery hose includes a sensor port for a sensor probe positioned near an end of a nasal cannula, which allowing the sensor probe to be put closer to a patient's nostrils than previous connector parts allowed. The connector can be configured to advantageously allow the nasal cannula to rotate relative to the gas delivery hose, thereby allowing a patient or healthcare provider to untangle or otherwise straighten the hose or the cannula. The connector assembly can be configured to automatically align locking protrusions on a first component with locking recesses on a second component, where insertion of the second component into the first component causes the second component to rotate relative to the first component, thereby aligning the locking protrusions with associated locking recesses.SELECTED DRAWING: Figure 1A
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Description

[Technical field]

[0001] This disclosure relates to the field of connectors for gas delivery hoses. [Background technology]

[0002] A nasal cannula is a device used to deliver supplemental oxygen, other gases, or airflow to a patient or person for medical or respiratory support. Generally, a cannula includes a plastic tube and a set of two prongs that are placed into the nostrils. Oxygen or other gases can flow through the prongs.

[0003] Nasal cannulas can be connected to an oxygen tank, a portable oxygen generator, a hospital wall connection via a flow meter, or other gas source. Nasal cannulas can deliver oxygen to a patient at a rate that depends in part on their size. For example, infant or neonatal nasal types can carry less oxygen and may have smaller prongs than adult types. Cannulas can be used to deliver oxygenated air, humidified air, or other gas mixtures.

[0004] It is therefore an object of the present invention to provide a connector and / or a connector for a gas delivery hose that goes at least some way towards addressing the aforementioned problems, or at least provides the public with a useful option.

[0005] Where this specification refers to patents, other external documents or other sources, this is generally for the purpose of providing a context for describing features of the present invention. Unless specifically stated otherwise, the reference to such external documents should not be construed as an admission that such documents, or such sources, are prior art in any jurisdiction or form part of the general consensus in the art.

[0006] Further aspects and advantages of the present invention will become apparent from the following description, which is given by way of example only. Summary of the Invention [Problem to be solved by the invention]

[0007] In some situations, nasal cannulas are used to provide humidified air or oxygen therapy. A sensor probe can be used to monitor the airflow received by the patient. However, the further the probe is from the prongs that provide air to the nostrils, the greater the potential discrepancy between the air sampled and the air the patient inhales. Thus, a conduit connector that places the sensor probe closer to the patient in the airstream can increase the accuracy of measurements taken.

[0008] Because nasal cannulas or other breathing devices may be connected to a patient for extended periods of time, the nasal cannula may become uncomfortable for the patient or may otherwise begin to perform less than optimally. For example, as a patient moves around a hospital bed, the nasal cannula tubing may become tangled or kinked, causing discomfort to the patient and restricting airflow through the cannula. Thus, a design that facilitates adjustment of the nasal cannula may provide better patient comfort and also improve performance.

[0009] At times, it may be necessary to remove or replace the nasal cannula or airflow source. If it is difficult or time-consuming to remove the nasal cannula from the airflow source, removing the nasal cannula may cause significant discomfort to the patient. Furthermore, in an emergency, a slow or difficult coupling mechanism may potentially jeopardize the patient's health. Thus, a conduit connector that provides a "quick connect" or "quick release" feature that facilitates the attachment and removal of the nasal cannula from the airflow source, as well as facilitating interchangeability of the components, may provide better comfort and / or safety. [Means for solving the problem]

[0010] To address the above problems, aspects of the present disclosure include a connector or connector assembly for attaching a nasal cannula with a gas delivery hose. In one embodiment, the connector assembly includes a sensor port for a sensor probe. The sensor port is located near an end of the nasal cannula, facing the patient. In one embodiment, the connector is configured to allow the sensor to be located closer to the patient's nares than conventional connector parts allow.

[0011] Aspects of the present disclosure also include a self-aligning connector assembly configured to automatically align locking projections on a first component with locking recesses on a second component. Upon insertion of the second component into the first component, the second component rotates relative to the first component, thereby aligning the locking projections with corresponding locking recesses. In one embodiment, the connector is configured to advantageously allow the nasal cannula to rotate relative to the gas delivery hose. By allowing rotation, the connector allows the patient or healthcare provider to unwind or otherwise straighten the hose or cannula, thereby improving patient comfort.

[0012] The term "comprising" as used herein means "consisting at least in part of." When interpreting each expression in this specification that contains the term "comprising," there may be other features present than those previously mentioned by the term. Related terms such as "comprise" and "comprises" shall be interpreted in the same manner.

[0013] The present invention may also broadly include the parts, elements and features referred to or indicated in the specification of this application, individually or collectively, as well as any or all combinations of any two or more of said parts, elements or features, and where a specific whole having a known equivalent in the art to which the invention pertains is referred to herein, such known equivalent is intended to be incorporated herein as if individually set forth.

[0014] It is understood that the invention includes the foregoing and that the structures described below are merely examples.

[0015] Throughout the drawings, reference characters may be reused to indicate correspondence between referenced elements. The drawings are provided to illustrate embodiments of the disclosure described herein and not to limit the scope thereof. [Brief description of the drawings]

[0016] [Figure 1A] 1 illustrates an exploded perspective view of a gas delivery conduit having a connector embodiment for attaching a first tube with a second tube, the connector having a source conduit connector, a terminal conduit connector, and a mating adapter. [Figure 1B] FIG. 1B illustrates a side view of the connector embodiment of FIG. 1A. [Figure 1C] 13A-13C show perspective views of another connector embodiment having a source conduit connector, a terminal conduit connector and another embodiment of a mating adapter. [Figure 2A] 1B shows a perspective view of the terminal hole side of the source conduit connector of FIG. 1A. [Figure 2B] 1D shows various views of the source conduit connector of FIG. 1C. [Figure 2C] 1D shows various views of the source conduit connector of FIG. 1C. [Figure 2D] 1D shows various views of the source conduit connector of FIG. 1C. [Figure 2E] 1D shows various views of the source conduit connector of FIG. 1C. [Figure 2F]1D shows various views of the source conduit connector of FIG. 1C. [Figure 2G] 1D shows various views of the source conduit connector of FIG. 1C. [Figure 3A] 1B shows perspective views of the connection adapter of FIG. 1A from the source hole side and the terminal hole side, respectively. [Figure 3B] 1B shows perspective views of the connection adapter of FIG. 1A from the source hole side and the terminal hole side, respectively. [Figure 3C] 1D shows various views of the coupling adapter of FIG. 1C. [Figure 3D] 1D shows various views of the coupling adapter of FIG. 1C. [Figure 3E] 1D shows various views of the coupling adapter of FIG. 1C. [Figure 3F] 1D shows various views of the coupling adapter of FIG. 1C. [Figure 3G] 1D shows various views of the coupling adapter of FIG. 1C. [Figure 4A] 1B shows a perspective view of the source hole side of the terminal conduit connector of FIG. 1A and a top view of the terminal conduit connector. [Figure 4B] 1B shows a perspective view of the source hole side of the terminal conduit connector of FIG. 1A and a top view of the terminal conduit connector. [Figure 4C] 1D shows various views of the terminal conduit connector of FIG. 1C. [Figure 4D] 1D shows various views of the terminal conduit connector of FIG. 1C. [Figure 4E] 1D shows various views of the terminal conduit connector of FIG. 1C. [Figure 4F] 1D shows various views of the terminal conduit connector of FIG. 1C. [Figure 4G] 1D shows various views of the terminal conduit connector of FIG. 1C. [Figure 5A] 1B shows a longitudinal cross-sectional view of the connector of FIG. 1A. [Figure 5B] 1B shows a longitudinal cross-sectional view of the connector of FIG. 1A. [Figure 5C] 1B shows a longitudinal cross-sectional view of the connector of FIG. 1A. [Figure 6]1C shows a cross section taken along the axis of FIG. 1B and illustrating engagement of the coupling adapter with the source conduit connector. [Figure 7] 1 illustrates another connector embodiment. [Figure 8] 1 illustrates another connector embodiment. [Figure 9] 1 illustrates another connector embodiment. [Figure 10] 1 illustrates another connector embodiment. [Figure 11A] 1 illustrates another connector embodiment. [Figure 11B] 1 illustrates another connector embodiment. [Figure 12] 1 illustrates another connector embodiment. [Figure 13] 1 illustrates another connector embodiment. [Figure 14] 1 illustrates another connector embodiment. [Figure 15] 1 illustrates another connector embodiment. [Figure 16] 1 illustrates another connector embodiment. [Figure 17] 1 illustrates another conduit connector embodiment. [Figure 18A] 13A-13C show various views of yet another conduit connector embodiment. [Figure 18B] 13A-13C show various views of yet another conduit connector embodiment. [Figure 18C] 13A-13C show various views of yet another conduit connector embodiment. [Figure 19A] 20A-20B show another connector adapter embodiment configured to mate with the source conduit connector embodiment of FIGS. 20A-20B. [Figure 19B] 20A-20B show another connector adapter embodiment configured to mate with the source conduit connector embodiment of FIGS. 20A-20B. [Figure 20A] 19A-19B depict another source conduit connector embodiment having an annular ring for attachment to the another connector adapter embodiment of FIGS. [Figure 20B]19A-19B depict another source conduit connector embodiment having an annular ring for attachment to the another connector adapter embodiment of FIGS. [Figure 21A] 1A-1D show various views of one embodiment of a nasal cannula connecting to an airflow source via various connector embodiments described in the present disclosure. [Figure 21B] 1A-1D show various views of one embodiment of a nasal cannula connecting to an airflow source via various connector embodiments described in the present disclosure. [Figure 21C] 1A-1D show various views of one embodiment of a nasal cannula connecting to an airflow source via various connector embodiments described in the present disclosure. [Figure 21D] 1A-1D show various views of one embodiment of a nasal cannula connecting to an airflow source via various connector embodiments described in the present disclosure. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0017] 1A and 1B show perspective and side views, respectively, of a gas delivery conduit 100 including one embodiment of a connector 105 for attaching a first tube 110 from a nasal cannula, face mask, intubation tube or other breathing device for a patient to a second tube 115 of a ventilator, humidifier, breathing circuit or other airflow device for providing gas to a patient. The connector may allow components of the gas delivery conduit 100 to be connected or disconnected to one another, thereby facilitating disconnection and reconnection of the breathing and airflow devices and potentially minimizing disturbance to the patient or the gas delivery system.

[0018] For example, the patient may receive humidified, oxygenated and / or pressurized gas through nasal cannula 110 connected to gas delivery tube 115, which is in turn connected to a humidifier or a ventilator. For ease of explanation, the following disclosure refers to an embodiment of a connector for connecting the nasal cannula with a gas delivery tube (e.g., for providing oxygen), but reference to such an embodiment is not intended to limit the disclosure and other embodiments are possible. For example, in other embodiments, gas is supplied to the patient by another patient interface, such as a nasal or full face mask, or provided using another airflow source.

[0019] In the embodiment shown, the connector 105 includes a terminal conduit connector 120 for receiving the nasal cannula 110, a source conduit connector 125 for receiving the gas delivery tube 115, and a coupling adapter 140 for coupling the conduit connectors. The source conduit connector 125 includes an optional sensor port 130 for receiving a sensor probe 135. In the embodiment shown, the terminal conduit connector 120 and the source conduit connector 125 are detachably coupled by the coupling adapter 140. The gas delivery tube 115 is configured to couple with the source conduit connector 125, and the nasal cannula 110 is configured to couple with the terminal conduit connector 120 to form a gas conduit 100 for providing oxygen or other gas to a patient. Generally, oxygen flows from the gas delivery tube 115 to the nasal cannula 110. For ease of explanation, the holes in the components of the gas conduit proximal to the gas delivery tube 115 will be referred to as source holes, while the holes proximal to the nasal cannula 110 will be referred to as terminal holes.

[0020] In the embodiment shown, the source bore 145 of the source conduit connector 125 couples with the gas delivery tube 115, for example, by fitting over and / or around the gas delivery tube 115 to form a seal. The source conduit connector 125 may be removably or permanently attached to the gas delivery tube 115. In one embodiment, the terminal bore 150 of the source conduit connector 125 includes a locking tab 151 for receiving the connection adapter 140 and / or an alignment tab 152. In one embodiment, the locking tab is configured to lock with a locking recess 154 formed on a finger 153 of the connection adapter 140, thereby forming a releasable seal. In one embodiment, if the locking tab does not align with the locking recess when inserted into the terminal bore 150, the alignment tab 152 is configured to rotate the connection adapter 140 within the terminal bore 150. The alignment tab rotates the connection adapter 140 until the locking tab and the locking recess are aligned. In one embodiment, recess 154 is a hole that extends into finger 153 and is configured to perform the same function as recess 154 .

[0021] In one embodiment, the locking tabs are configured to engage with the locking recesses 154 with an audible click to provide positive feedback that the connection is fully made. Such a click, in one embodiment, can be activated when the finger 153 passes over the locking tab to generate a click when the locking recesses 154 snap-fit ​​over the locking tab. An audible click can also be generated in other manners, such as when other components engage with one another.

[0022] In the embodiment shown, the source bore 155 of the terminal conduit connector is configured to receive the connection adapter 140 to form a rotatable connection. In one embodiment, a ridge formed in the terminal conduit connector is adapted to engage with a channel 160 formed in the periphery of the connection adapter 140. By allowing the ridge to rotate along the channel 160, the terminal conduit connector 120 and the connection adapter 140 can rotate relative to one another. In one embodiment, raised edges or collars along the terminal and source bores of the connection adapter 140 prevent or inhibit the terminal conduit connector 120 from separating from the connection adapter 140.

[0023] The terminal conduit connector 120 may include a terminal aperture configured to receive the cannula tube of the nasal cannula 110. The terminal aperture 165 may include two openings for receiving the dual conduit cannula tube. Each conduit may be coupled to a prong for insertion into the patient's nostril. The nasal cannula 110 may be removably or permanently attached to the terminal conduit connector 120.

[0024] 1B shows a side view of connector 105. Source conduit connector 125 is coupled to terminal conduit connector 120. Sensor probe 135 is coupled to connector 105 via sensor port 130. Axis 167 indicates the cross section taken through FIG.

[0025] 1C shows a perspective view of another connector embodiment having an alternative embodiment of source conduit connector 125, terminal conduit connector 120, and mating adapter 140 (hidden in this view), which shares many of the structures and features described above with respect to FIG. 1A, such as sensor port 130.

[0026] FIG. 2A shows a perspective view of the terminal hole 150 side of the source conduit connector 125 of FIG. 1A. In the embodiment shown, the source conduit connector 125 includes a generally cylindrical tube having the terminal hole 150 and the source hole 145 (FIG. 1A). The source conduit connector 125 can also include an optional sensor port 130 for receiving the sensor probe 135. In FIG. 2A, the sensor port 130 includes a generally cylindrical tube extending perpendicularly from the source conduit connector 125. In some embodiments, the tube is perpendicular to the body of the conduit connector 125. In some embodiments, the tube is substantially perpendicular, but may be angled from perpendicular by a few degrees (e.g., less than 5 degrees, 10 degrees, or 15 degrees). In some embodiments, the tube is angled more than 15 degrees. For example, one or more finger grooves 202 can be formed on the exterior surface of the source conduit connector 125 to provide a user with additional purchase or friction for connecting or disconnecting the connector 105 (FIG. 1A) components. For example, two finger grooves 202 can be located on either side of the source conduit connector 125 .

[0027] In the embodiment shown, the source conduit connector 125 includes a locking tab 151 for receiving the coupling adapter 140 (FIG. 1A) and an alignment tab 152. In FIG. 2A, two locking tabs 151 are formed on an interior surface of the source conduit connector 125 and are configured to lock with locking recesses formed on the coupling adapter 140. The locking tabs 151 can be formed opposite one another.

[0028] In FIG. 2A, the alignment tab 152 is formed by one continuous protrusion or ridge formed on the inner surface of the source conduit connector 125. In one embodiment, the one continuous protrusion or ridge transitions from a first distance toward the terminal aperture 150 of the source conduit connector 125 to a second distance away from the terminal aperture 150. The continuous protrusion or ridge can form a bowl or saddle shape with alternating valleys 215 and apexes 220. The apexes 220 are configured to guide the fingers of the coupling adapter 140 into the valleys 215, and the locking tab 151 can lock with a locking recess on the finger. For example, the apexes 220 can be sloped toward the valleys 215 such that when inserted into the source conduit connector 125, the slope of the apexes 220 guides the fingers toward the valleys 215.

[0029] In FIG. 2A, the source conduit connector 125 includes an optional sensor port 130 for receiving a sensor probe 135. In the embodiment of FIG. 2A shown, the sensor port 130 is located near or substantially adjacent to the terminal aperture 150. By placing the sensor port 130 near the aperture 150, the sensor probe 135 can sample the gas flow closer to the patient. Such sampling can provide a more accurate measurement of the condition of the gas flow received by the patient. For example, if the sensor probe 135 is located further away from the patient, there may be a greater difference between the sampled gas flow and the gas flow inhaled by the patient. Thus, a gas flow that appears to be within the patient's comfort zone (e.g., based on temperature or humidity) may cause discomfort to the patient because the conditions of the measured gas flow are different from the conditions of the inhaled gas flow. In one example, the air flow source 115 may include a heating element that warms the air, but the temperature of the air flow may drop rapidly as the air flow leaves the source 115. For this reason, in one embodiment, the sensor should be located as close to the patient as possible to obtain more accurate results. Similarly, condensation causes very rapid changes in humidity. Similarly, the closer the sensor can be placed to the patient, the more accurate the sensor readings will be. As will be apparent, similar benefits can be obtained without the optional sensor port 130 by placing the sensor probe 135 closer to the orifice 150 or the patient or nasal cannula 110. For example, this can be accomplished by using an integral sensor in place of the sensor port, as described below.

[0030] As shown in FIG. 2A, the sensor probe 135 is disposed in the gas flow in the gas delivery conduit 100 to sample, measure, and / or analyze the gas flow. The sensor probe 135 can include any type of sensor(s), such as, for example, a temperature sensor, a thermistor, a flow meter, an oxygen (O2) sensor, a carbon dioxide (CO2) sensor, a nitric oxide sensor, and / or a humidity sensor. The sensor probe 135 can be reusable or disposable, and can be detachable or integral with the conduit connector. The sensor probe 135 can be coupled to a monitoring system having one or more processors for analyzing the measurements, and can communicate with the monitoring system through a cable or wirelessly. The monitoring system can include a display or other output device (e.g., a speaker, an alarm, or a wireless transmitter) for displaying the measurements or generating an alarm. The sensor probe 135 and / or the monitoring system can include a storage device, such as, for example, an electrically erasable read-only memory (EEPROM), an erasable programmable read-only memory (EPROM), a flash memory, a non-volatile memory, and the like. The sensor probe 135 can include multiple conductors for transmitting signals to and from its components, including sensing component conductors and storage device conductors.

[0031] In some embodiments, the sensor port 130 is configured to accept different types of sensor probes 135, allowing the sensor probes 135 to be interchanged based on the current application. For example, a humidity sensor may be used during humidity therapy, while an oxygen sensor may be used during oxygen therapy.

[0032] In some embodiments, there may be only one locking tab 151 or there may be three or more locking tabs 151. In some embodiments, the alignment tab 152 may be formed by multiple protrusions or discontinuous ridges rather than one continuous protrusion. For example, two separated apexes 220 may be formed on opposite sides of the interior surface of the source conduit connector 125. In some embodiments, the source conduit connector 125 may include either the alignment tab 152 or the locking tab 151.

[0033] Figures 2B-2G show various views of the source conduit connector 125 of Figure 1C. This embodiment shares many of the structures and features described above with respect to the source conduit connector 125 of Figure 1A.

[0034] FIG. 2B shows a perspective view of source conduit connector 125 showing locking tab 151 and alignment tab 152 formed on the interior surface facing terminal aperture 150.

[0035] FIG. 2C shows a side perspective view of source conduit connector 125 showing source hole 145.

[0036] FIG. 2D shows a side view of source conduit connector 125 showing source hole 145, terminal hole 150, finger groove 202, and sensor port 130.

[0037] Figure 2E shows a cross-sectional view of source conduit connector 125 taken along the line shown in Figure 2D. Figure 2E shows source hole 145, terminal hole 150, and locking tab 151 and alignment tab 152 on the interior surface.

[0038] FIG. 2F shows a front view of the terminal hole 150 of the source conduit connector 125 showing the sensor port 130 and the locking tab 151 and alignment tab 152 on the interior surface.

[0039] 2G shows a sensor port front view of source conduit connector 125, showing the sensor port 130 opening into the body of source conduit connector 125. In FIG. 2G, sensor port 130 is shown spaced away from source port 145, substantially adjacent to and perpendicular to terminal port 150.

[0040] 3A and 3B show perspective views of the connection adapter 140 of FIG. 1A from the source bore 305 side and the terminal bore 310 side, respectively. In the embodiment shown, the connection adapter 140 includes a generally cylindrical tube having two locking fingers 153 extending from the source bore 305. The locking fingers 153 can be spaced apart to form an insertion hole 312 for the sensor probe 135 (FIG. 1A) to fit between the fingers 153. The insertion hole 312 can provide an opening through which a portion of the sensor probe 135 extends into the gas delivery conduit 100 (FIG. 1A) to sample airflow from within the gas delivery conduit 100. The insertion hole 312 can also allow the sensor probe 135 to be positioned closer to the nasal cannula 110 (FIG. 1A), for example, by allowing the connection adapter 140 to extend around or over the sensor probe 135 toward the airflow source 115 (FIG. 1A). In one embodiment, the insertion hole 312 allows the sensor probe 135 to be positioned closer to the patient while simultaneously allowing a portion of the connection adapter 140 to engage with the source conduit connector 125 (FIG. 1A). For example, without the insertion hole 312, the sensor probe 135 may have to be positioned further away from the nasal cannula 110 and beyond the end 314 of the connection adapter 140, which may eliminate, inhibit or reduce some of the above-mentioned potential advantages for positioning the sensor probe 135 closer to the patient.

[0041] In some embodiments, each locking finger 153 includes a locking recess 154 formed on an exterior surface of the locking finger 153. In one embodiment, the locking recess 154 is configured to lock with a locking tab of the source conduit connector 125. In some embodiments, the locking fingers 153 include a flexible or semi-rigid material such that sufficient longitudinal force can cause the locking recess 154 to pass over the locking tab 151 of the source conduit connector 125, thereby releasing the coupling adapter 140 from the source conduit connector 125. For example, the coupling adapter 140 can be pushed into the source conduit connector 125 (during assembly or coupling) or the adapter 140 can be pulled out (during separation) to engage or disengage the locking tab of the source conduit connector 125 with the locking recess 154 of the locking finger 153.

[0042] The connection adapter 140 can include a locking channel 160 formed along the periphery of its exterior surface. In FIG. 3A, the edges of the channel are bounded by collars 320, 325 at the source and terminal bores. A ridge, such as that on the terminal conduit connector 120 (FIG. 1A), can lock into the channel 160. For example, the ridge of the terminal conduit connector 120 can be engaged or disengaged from the locking channel 160 by pushing the connection adapter 140 into the terminal conduit connector 120 (during assembly or coupling) or by pulling the adapter 140 out (during disengagement). The collar can prevent or inhibit separation of the ridge due to longitudinal forces (e.g., forces along the axis of the conduit 100) while allowing the ridge to rotate along the locking channel 160. In some embodiments, the terminal collar 320 comprises a flexible or semi-rigid material such that sufficient longitudinal force can cause a ridge to pass over the collar 320 and release the coupling adapter 140 from the terminal conduit connector 120.

[0043] The connection adapter 140 can have one or more optional protrusions 330 formed longitudinally on its inner surface. The protrusions 330 can provide rigidity to the connection adapter and, in one embodiment, are equally spaced along the inner periphery of the connection adapter 140. In one embodiment, the protrusions 330 can be tapered to provide greater rigidity at one end compared to the other end. For example, the source hole 305 side of the connection adapter 140 may require greater flexibility for attachment and / or detachment to the source conduit connector 125, and the protrusions 330 can taper (in height or width) toward the source hole 305.

[0044] In some embodiments, the coupling adapter 140 can have one, two, three, four or more locking fingers 153 or protrusions 330. In some embodiments, other types of coupling mechanisms can be used, such as, for example, a screw-like mechanism, a pinion mechanism, a friction fit, a circlip, and / or an adhesive or other chemical connector.

[0045] In some embodiments, different types of connection adapters can be provided to connect different types of conduit connectors. For example, a ventilator conduit can have a different type of source conduit connector than a humidifier conduit. By exchanging the connection adapters, the same nasal cannula can be connected to either the ventilator conduit or the humidifier conduit. By providing interchangeable connection adapters, patient discomfort is minimized by eliminating or reducing the need to replace nasal cannulas attached to the patient since there is no need to replace the nasal cannula. Similarly, by exchanging adapters, various types of terminal conduit connectors can be connected to the same type of source conduit connector. For example, a face mask having a different terminal conduit connector type can be attached to the same humidifier by using a different connection adapter, thereby replacing the nasal cannula. Connector interchangeability can potentially speed up installation of the gas delivery conduit, which can be particularly beneficial in emergency situations.

[0046] Figures 3C-3G show various views of the connecting adapter 140 of Figure 1C. This embodiment shares many of the structures and features described above with respect to the connecting adapter 125 of Figure 1A.

[0047] 3C shows a top view of the coupling adapter 140 showing two locking fingers 153 extending from the body of the coupling adapter 140 and two locking recesses 154 formed on the exterior surfaces of the locking fingers 153. In some embodiments, a raised strip 350 forms a bottom boundary of the recesses 154 of each locking finger 153. Each raised strip 350 can provide additional support and / or rigidity to each locking recess 350, allowing for a more secure interlocking of the locking recesses with a corresponding locking tab.

[0048] 3D illustrates a side view of the coupling adapter 140 showing the locking finger 153 extending from the body of the coupling adapter 140, the locking recess 154 formed on the exterior surface of the locking finger, and the locking channel 160 formed along the periphery of the exterior surface of the adapter. In the embodiment of FIG. 3D, the locking finger 153 is wider from its end 314 to its base 340. By widening its base where the finger 153 interfaces with the body of the coupling adapter 140, the strength of the locking finger 153 is improved, making it more difficult to deform the locking finger 153 and to remove it when it engages the locking tab 151 of the source conduit connector 125. Additionally, the raised strip 350 can also improve the strength of the locking finger 153.

[0049] Figure 3E shows a perspective view of the terminal conduit connector 120 facing the bore of the mating adapter 140. Figure 3E shows the locking fingers 153, locking recesses 154, locking channels 160, and protrusions 330 formed longitudinally on the inner surface of the mating adapter.

[0050] Figure 3F shows a front elevational view of the bore of the mating adapter 140 facing the terminal conduit connector 120. Figure 3G shows a front elevational view of the bore of the mating adapter 140 facing the source conduit connector 125. A protrusion 330 formed on the inner surface of the adapter 130 is shown.

[0051] 4A and 4B show a perspective view of the source bore 155 side of the terminal conduit connector 120 and a top view of the terminal conduit connector 120 of FIG. 1A. FIG. 4A shows the terminal conduit connector 120 without the coupling adapter 140 inserted, while FIG. 4B shows the terminal conduit connector 120 with the coupling adapter 140. In the embodiment shown, the terminal conduit connector 120 includes ridges 405 spaced along the periphery of the interior surface of the terminal conduit connector 120. In one embodiment, the ridges 405 are projections or tabs formed longitudinally by surrounding cutouts or axially along the terminal conduit connector 120. The ridges 405 and the surrounding cutouts can reduce frictional engagement with the coupling adapter 140, thereby improving rotation. The ridges 405 can be tapered in width or height. Because each locking tab has a larger surface area for engaging with terminal collar 320 (FIG. 3A) of coupling adapter 140, tapering allows for less force to be applied to insert coupling adapter 140, but requires more force to remove coupling adapter 140. In one embodiment, locking grooves 410 are formed along the periphery of terminal conduit connector 120 and configured to engage terminal collar 320 of coupling adapter 140, thereby increasing the longitudinal force required to remove terminal conduit connector 120 from coupling adapter 140.

[0052] In one embodiment, the terminal conduit connector 120 includes a terminal hole 165 on the terminal conduit connector 120 configured to receive the cannula tube of the nasal cannula 110 (FIG. 1A). The terminal hole 165 can include two openings for receiving the dual conduit cannula tube, with each conduit connecting to a prong at the opposite end of the tube for insertion into the patient's nostril. In the embodiment shown, the openings can be optionally surrounded by angled surfaces configured to funnel airflow into the dual conduit cannula tube, thereby enhancing airflow. The terminal conduit connector 120 can also include one or more finger grooves 415 formed on an exterior surface of the terminal conduit connector 120 to provide the user with additional purchase or friction for connecting or disconnecting the connector 105 (FIG. 1A) components, for example. In FIG. 4A, multiple finger grooves 415 are spaced along the exterior periphery of the terminal conduit connector 120.

[0053] Other configurations of the terminal conduit connector 120 are possible. For example, in some embodiments, the locking tab 405 is one continuous ridge. In other embodiments, the ridge 405 is formed perpendicular or at an angle to the axis of the terminal conduit connector 120. Some embodiments do not include a locking groove 410. The aperture 165 can be a single opening. For example, the aperture 165 can be configured to receive a single conduit to a face mask.

[0054] Figures 4C-4G show various views of the terminal conduit connector 120 of Figure 1C. This embodiment shares many of the structures and features described above with respect to the terminal conduit connector 120 of Figure 1A.

[0055] 4C shows a side view of terminal conduit connector 120 showing terminal hole 165 for receiving a nasal cannula and source hole 155. A first portion of the body of terminal conduit connector 120 that receives coupling adapter 140 is at a first height. A second portion of the body of terminal conduit connector 120 that receives a nasal cannula is at a second, lower height.

[0056] 4D shows a top down view of terminal conduit connector 120 showing terminal hole 165 and source hole 155. A first portion of the body of terminal conduit connector 120 has a first width, while a second portion of the body has a second, narrower width.

[0057] 4E shows a front view of terminal bore 165. FIG. 4F shows a front view of source bore 155 showing ridges 405 spaced around the periphery of the inner surface of terminal conduit connector 120.

[0058] FIG. 5 shows a longitudinal cross-sectional view of the connector 105 embodiment of FIG. 1A. FIG. 5 shows the terminal collar 320 of the mating adapter 140 engaged with the locking groove 410 of the terminal conduit connector 120. A portion of the sensor probe 135 fits between the fingers 153 of the mating adapter. FIG. 5 shows the fingers 153 mating with the alignment tabs 152. In one embodiment, the source conduit connector 125 includes an inner cylinder 505 within an outer cylinder 510, forming an insertion groove 515 for receiving the delivery tube 115 (FIG. 1A). In one embodiment, the pressure of the inner and outer cylinders maintains a press fit with the delivery tube 115, keeping the delivery tube 115 connected to the source conduit connector 125.

[0059] 6 shows a cross section taken along axis 167 of FIG. 1B facing nasal cannula 110 (FIG. 1A) and illustrates the engagement of connection adapter 140 with source conduit connector 125. In the embodiment shown, source conduit connector 125 and terminal conduit connector 120 are attached by connection adapter 140. Locking tabs 151 formed on the inner surface of source conduit connector 125 engage recesses 154 on fingers 153 of connection adapter 140. The engagement prevents longitudinal movement of the adapter and limits accidental release of connector 105 (FIG. 1A). Alignment tabs 152 can guide fingers 153 into position for engagement.

[0060] 6, the sensor port 130 provides the sensor probe 135 with access to the airflow within the gas delivery conduit 100 (FIG. 1A). Airflow from the airflow source passes through the sensor probe 135 before exiting the terminal hole 165 of the terminal conduit connector 120.

[0061] As will be apparent, there are many possible embodiments of the connector 105. For example, in some embodiments, the connector 105 does not include the mating adapter 140 or another component. In some embodiments, elements such as tabs, protrusions, recesses, channels or grooves are located on different components. For example, the disclosure above describes a first element of the mating feature (e.g., a protrusion or tab) being located on a first component while a second element of the mating feature (e.g., a recess, channel or groove) is located on the second component, but in some embodiments, the location of the elements can be swapped with the first element on the second component and the second element on the first component. Some embodiments may not include certain elements. In one embodiment, the first connector component can be configured to mount on the second connector component while in another embodiment, the second connector component can be configured to mount on the first connector component.

[0062] In some embodiments, various types of connections can be used to attach the components of the connector 105. For example, adhesives or other chemicals may be used to permanently secure some components together. In other examples, various mechanical connection mechanisms such as snap fits, threads, friction fits, or circlips can be used. The components of the connector 105 can include various types of flexible, semi-rigid, or rigid materials. For example, the connection adapter 140 and the source conduit connector 125 can include a polypropylene material and the terminal conduit connector 120 can include a THERMOLAST material. Other materials such as plastics, thermoplastics, silicone, glass-filled nylon, metals, spring steel, polycarbonate, PVC, polyethylene, rubber (e.g., natural or vulcanized), polyurethane, and the like can be used. For example, in one embodiment, the connection adapter 140 includes ABS plastic, the source conduit connector 125 includes polypropylene, and / or the terminal conduit connector 120 includes a thermoplastic elastomer.

[0063] In some embodiments, some of the releasable coupling mechanisms can be stronger than others. In one embodiment, the connection formed by the coupling adapter 140 with the source conduit connector 125 is weaker than the connection formed by the coupling adapter 140 with the terminal conduit connector 120. Thus, pulling the conduit connectors 120, 125 apart can separate the coupling adapter 140 from the source conduit connector 125 while remaining coupled to the terminal conduit connector 120. This configuration can facilitate replacement of the patient interface by allowing another patient interface to be easily or quickly attached to the source conduit connector 125. Other configurations are possible, for example, the coupling adapter 140 can be configured to remain coupled to the source coupling conduit 125.

[0064] In some embodiments, the connections of the connector 105 are configured to allow for quick coupling or quick release of the connector 150 components. For example, the components can be configured to couple or release in one motion (e.g., when pushed in or pulled apart). The components can be configured to self-align when engaged, such that their coupling mechanisms automatically align. In another example, the connections of the connector 105 to the gas delivery tube 115 (FIG. 1A) and / or nasal cannula 110 can be stronger than to other connections (e.g., to the coupling adapter 140) such that longitudinal forces applied to the gas delivery conduit 100 will cause these other, weaker connections to be detached first. In some embodiments, the connections to the gas delivery tube 115 and / or nasal cannula 110 are permanent or semi-permanent to eliminate or reduce accidental detachment.

[0065] Other embodiments of the connector 105 are possible. In some embodiments, the terminal aperture 165 includes one opening, two openings, or more than two openings. One, two, or more than two finger grooves 415 (FIG. 4A) can be provided on the outside. In some embodiments, the gas delivery conduit 100 or a portion of the conduit can be attached to the patient by a lanyard (e.g., around the patient's neck), a clip, or other fastening mechanism. The seal formed by the components can be airtight or allow some air leakage. In some embodiments, the components of the connector 105 can be colored differently to indicate the size of the connector. For example, red can indicate an adult-sized connector, while blue can indicate an infant connector. In some embodiments, the gas delivery conduit 100 can include one or more spring tube sections, which can provide additional flexibility.

[0066] The components of the connector 105 can be formed in various sizes depending on their intended use. For example, a connector for a pediatric or infant gas delivery conduit 100 can be smaller than a connector for an adult gas delivery conduit 100. In some embodiments, the source conduit connector 125 has an outer diameter in the range of 5 mm to 30 mm, although in other embodiments, this diameter can be larger or smaller. In one embodiment, the outer diameter is about 15 mm. The other connector components 105 can be sized to match the source conduit connector 125. For example, the other components can be sized approximately the same as the source conduit connector 125 for engagement therewith.

[0067] FIG. 7 illustrates another connector embodiment 700 of the connector of FIG. 1A. In FIG. 7, a terminal conduit connector 705 includes dual ball and socket connections 710 for individually connecting the cannula tubes to the terminal conduit connector. The ball and socket connections 710 can operate independently of one another. This can allow the cannula tubes to be independently untwisted and untwisted, thereby facilitating adjustment of the nasal cannula. In addition, while longer cannula tubes generally provide a greater degree of adjustment of the nasal cannula, the ball and socket connections 710 provide greater freedom of movement, thereby allowing shorter lengths of cannula tubes to be used while potentially providing a similar degree of adjustment.

[0068] FIG. 8 illustrates yet another connector embodiment 800 of the connector of FIG. 1A. In FIG. 8, a terminal conduit connector 805 and a sensor probe 810 connect approximately perpendicular to a source conduit connector 815. The source conduit connector 815 connects to a swivel tube 820, which in turn connects to a gas delivery tube 825. Because the sensor probe, terminal conduit connector, and source conduit connector are rotatably attached to the gas delivery tube by the swivel tube 820, the connector can be placed flat on the patient's bed, potentially improving patient comfort or keeping the connector out of the way. In the embodiment shown, the connector 800 is shaped to form an approximately 90 degree angle, thereby redirecting the airflow over the sensor probe 810 and into the nasal cannula 830. This redirection of the airflow can advantageously allow the sensor probe 810 to detect a separation of the terminal conduit connector 805 by detecting a change in airflow. For example, the sensor probe 810 can detect a change in the direction, velocity or composition (e.g., humidity or temperature) of the airflow and can determine that the terminal conduit connector 805 is no longer attached for redirecting the airflow.

[0069] Figure 9 shows yet another connector embodiment 900 of the connector of Figure 1A. In Figure 9, a terminal conduit connector 905 can mate with a source conduit connector 910 either substantially vertically or substantially straight. The dual orientation of the terminal conduit connector 905 can provide greater flexibility in adjusting the nasal cannula 920.

[0070] The source conduit connector 910 may include a hole 930 through which the sensor probe 925 may extend partially into the terminal conduit connector 910, thereby allowing the sensor probe 925 to be closer to the entrance of the airflow into the cannula. In the embodiment shown, the hole 930 is notched to allow the sensor probe 925 to extend beyond the hole 930. This may allow the sensor probe 925 to gather more accurate measurements of temperature, humidity or other parameters of the gases inhaled by the patient.

[0071] FIG. 10 illustrates yet another connector embodiment 1000 of the connector of FIG. 1A. In FIG. 10, a terminal conduit connector 1005 couples to a mating adapter 1010. The mating adapter 1010 couples to a source conduit connector 1015. The mating adapter 1010 includes a collar 1020 having a larger diameter than the adjacent terminal conduit connector and the source conduit connector. Thus, when the connectors are assembled, a portion of the collar 1020 extends beyond the outer housings of the mated terminal conduit connector and source conduit connector and remains visible as a ring. The collar 1020 can be colored to indicate size information of the connector 1000. The collar 1020 can also provide a better frictional hold to the user, thereby allowing a shorter connector to provide a similar amount of frictional grip, facilitating installation and / or removal of the connector components.

[0072] 11A and 11B show yet another connector embodiment 1100 of the connector of FIG. 1A. In FIG. 11, a terminal conduit connector 1105 fits into a source conduit connector 1110, while a threaded cap 1115 fits over the terminal conduit connector 1105 and engages with a threaded end 1120 of the source conduit connector. The threaded cap 1115 engages with a collar of the terminal conduit connector 1125, keeping the terminal conduit connector pressed into the source conduit connector. Fins 1126 formed on the body of the terminal conduit connector 1105 can provide space between the outside of the terminal conduit connector 1105 and the inside of the source conduit connector 1110.

[0073] In one embodiment, the threaded cap 1115 engages with only some of the thread grooves on the threaded end 1120 of the source conduit connector. For example, if the threaded end 1120 has six thread grooves, the threaded cap 1115 is configured to engage with only three of the grooves, leaving the other three thread grooves free. Partial engagement of the threads can allow condensate that collects within the connector to exit along the free threads and along an outlet passage 1135, thereby preventing or inhibiting condensate from entering the cannula 1130. The outlet passage 1135, or drain channel, can be formed in part by a space 1137 between the outside of the terminal conduit connector 1105 and the inside of the source conduit connector 1110.

[0074] Figure 12 shows yet another connector embodiment 1200 of the connector of Figure 1A. In Figure 12, a terminal conduit connector 1205 couples to a mating adapter 1210. The mating adapter 1210 couples to a source conduit connector 1215. The mating adapter includes an end 1220 for coupling with the terminal conduit connector 1205, for example, by threads or a friction fit. A source bore 1225 of the mating adapter 1210 fits over the source conduit connector 1215.

[0075] Figure 13 shows yet another connector embodiment 1300 of the connector of Figure 1A. In Figure 13, a terminal conduit connector 1305 couples to a source conduit connector 1310. A locking tab 1315 formed on the mating end of the terminal conduit connector engages with another locking tab in the source conduit connector 1310. Rotating the terminal conduit connector 1305 relative to the source conduit connector 1310 can disengage the locking tab 1315, allowing the connectors 1300 to be separated.

[0076] Figure 14 illustrates yet another connector embodiment 1400 of the connector of Figure 1A. In Figure 14, a terminal conduit connector 1405 couples to a source conduit connector 1410. Locking threads 1415 formed on the mating end of the terminal conduit connector engage with the source conduit connector. Turning the terminal conduit connector 1405 relative to the source conduit connector 1410 can disengage the locking threads 1415, allowing the connectors 1400 to be separated.

[0077] In one embodiment, one side of the conduit connector 1410 can be configured to engage another component using a unique or proprietary coupling mechanism, while the other side of the conduit connector 1410 uses a generic or standard coupling mechanism. The generic coupling can allow for coupling to a variety of components manufactured by various manufacturers. On the other hand, the proprietary coupling only allows for coupling to components from a single or select set of manufacturers. Providing two different types of connectors can be beneficial in situations where one component requires greater precision than another, and mandating the use of a specific component allows for the use of components with known or predefined characteristics. On the other hand, the generic coupling can provide greater interchangeability. In one example embodiment, the generic coupling 1420 is attached using a friction fit, while the proprietary coupling 1425 is coupled with a locking thread 1415.

[0078] FIG 15 illustrates yet another connector embodiment 1500 of the connector of FIG IA. In FIG 15, a terminal conduit connector 1505 couples to a source conduit connector 1510. An edge of the source conduit connector 1510 can engage a locking groove 1512 on the terminal conduit connector 1505. An O-ring seal 1515 forms a seal between the terminal conduit connector and the source conduit connector. In the embodiment shown, a sensor port 1520 is formed on the source conduit connector away from the source conduit connector's connection with the terminal conduit connector.

[0079] FIG. 16 illustrates yet another connector embodiment 1600 of the connector of FIG. 1A. In FIG. 16, a terminal conduit connector 1605 couples with a connection adapter 1610. The connection adapter 1610 couples with a source conduit connector 1615. In the embodiment shown, the connection adapter 1610 includes three fingers 1620 for engaging with the source conduit connector 1615. The fingers 1620 can be spaced apart to form an insertion hole 1630 for fitting the sensor probe 1605 between two of the fingers 1620. The insertion hole 1630 allows the sensor probe 1605 to be positioned closer to the nasal cannula 1635. For example, without the insertion hole 1630, the sensor probe 1605 may have to be positioned further away from the nasal cannula 1635, beyond the end of the connection adapter 1610.

[0080] 17 shows an embodiment of a conduit connector 1700 with an integrated sensor probe 1705. The sensor probe 1705 is positioned to fit into an insertion hole formed by two fingers of a coupling adapter (e.g., coupling adapter 140 of FIG. 1). By fitting into the insertion hole, the sensor probe 1705 can be positioned closer to the nasal cannula. In the embodiment shown, the sensor probe 1705 is positioned approximately the same distance from the hole 1707 of the conduit connector 1700 as the locking tab 1720. When the fingers engage the locking tab 1720, the sensor probe 1705 fits between the fingers of the coupling adapter. In one embodiment, the conduit connector 1700 does not have a sensor port.

[0081] 18A-18C show various views of an embodiment of a conduit connector 1800 having a receiving portion for a detachable sensor probe. In the embodiment shown in FIG. 18A, the receiving portion includes channels 1805, 1810 for receiving the sensor probe. The channels 1805, 1810 can extend partially or entirely into the interior surface of the conduit connector 1800. The sensor probe can be plate-shaped, rectangular, oval, diamond-shaped, or any other shape configured to be received by the receiving portion. In one embodiment, the sensor probe includes alignment tabs configured to engage the channels 1805, 1810. The alignment tabs can be configured to position the sensor probe in a predetermined location within the conduit connector 1800, such as a location where sensor measurements can be more effectively obtained or between insertion holes formed by one or more locking fingers of the mating adapter.

[0082] In one embodiment, the receiving portion can include a catch, notch, tab, wall, or other structure for locking or securing the sensor probe in place once the predetermined position is reached. In some embodiments, the receiving portion can include other structure for receiving and / or securing the sensor probe in addition to or instead of the channels 1805, 1810. For example, the receiving portion can include a ridge configured to engage with a channel on the sensor probe. The conduit connector 1800 can also include one or more locking tabs 1820.

[0083] Figure 18B shows a rear perspective view and Figure 18C shows a cross-sectional view of the embodiment of Figure 18A. In the embodiment shown, an insertion groove for a second conduit, such as a hose or delivery tube, is formed by the space between the outer walls 1825, 1830 and the inner walls 1827, 1832 of the conduit connector 1800. In the embodiment shown, the end of the outer wall extends beyond the end 1822 of the inner wall. However, in other embodiments, the inner and outer walls may be the same length and the inner wall may extend beyond the outer wall.

[0084] 19A-19B show another connector adapter embodiment configured to mate with the source conduit connector embodiment of FIGS. 20A-20B.

[0085] FIG 19A shows a side view of the connection adapter facing one of the two locking fingers 153 and its locking recess 154. As shown in various embodiments of the present disclosure, a channel 160 formed on the body of the connection adapter provides an engagement surface for a corresponding terminal conduit connector. In FIG 19A, the locking recess 154 extends the entirety of the locking finger 153 and provides for engagement with an annular locking ring on the source conduit connector embodiment of FIGS 20A-20B.

[0086] FIG. 19B shows a perspective view of the coupling adapter of FIG. 19A showing the locking fingers 153 and their locking recesses 154.

[0087] 20A-20B show another source conduit connector 125 embodiment having an annular ring for attachment to the another connector adapter embodiment of FIGS. 19A-19B.

[0088] Figure 20A shows a perspective view of the source conduit connector facing the terminal bore 150. Formed in the inner surface of the source conduit connector is an annular locking ring 2005 formed by a raised strip that extends circumferentially within the body of the source conduit connector. The locking recess 154 of the connection adapter of Figures 19A and 19B is configured to engage the annular locking ring 2005 when the connection adapter is inserted into the source conduit connector.

[0089] Figure 20B shows a cross-sectional view taken along the section line indicated in Figure 20A. The cross-sectional view shows an annular locking ring 2005 formed on the inner surface of the source conduit connector.

[0090] 21A-D show various views of one embodiment of a nasal cannula 2100 that connects to an airflow source via various connector embodiments described in this disclosure. In some embodiments, the nasal cannula is for use with an infant.

[0091] Figure 21A shows a top perspective view of the patient-facing side of a nasal cannula 2100. The nasal cannula 2100 includes two prongs 2105a, 2105b that fit into the patient's nares. An airway tube 2110 extends from the prongs and connects to an air source (e.g., by connector 105 of Figure 1A).

[0092] Figure 21B shows a top perspective view of the exterior side of the nasal cannula 2100 facing away from the patient. Figure 21B shows two prongs 2105a, 2105b and two airway tubes 2110a, 2110b connected to the two prongs.

[0093] FIG. 21C shows a side view of the nasal cannula 2100 showing one of the prongs 2105 and one of the airway tubes 2110.

[0094] FIG. 21D shows a bottom view of the nasal cannula 2100 showing the two prongs 2105a, 2105b and the two airway tubes 2110a, 2110b connected to the two prongs.

[0095] In some embodiments, certain features may be combined with various components or omitted. For example, the coupling mechanism of the terminal conduit connector 120 may be implemented by the source conduit connector 125 and / or the coupling mechanism of the source conduit connector 125 may be implemented by the terminal conduit connector 120. In another example, the sensor port 130 may be located on the terminal conduit connector 120 rather than the source conduit connector 125. Some features may be implemented by different components (e.g., the terminal conduit connector 120, the source conduit connector 125, or the coupling adapter 140) rather than the components described as implementing the features in the disclosure above.

[0096] Conditional language used herein, inter alia, such as "can," "could," "might," "may," "eg," and the like, is generally intended to convey that certain embodiments include certain features, elements and / or conditions while other embodiments do not, unless otherwise specified or interpreted within the context in which it is used. Thus, such conditional language does not generally imply that features and / or elements are essential to any one or more embodiments.

[0097] Although the foregoing disclosure has been described in terms of certain preferred embodiments, other embodiments will become apparent to those skilled in the art from the disclosure herein. The various aspects and features of the disclosure described can be implemented separately, combined, or substituted for one another, and it is contemplated that various combinations and subcombinations of features and aspects may be implemented and still fall within the scope of the disclosure. Thus, the disclosure is not limited by the details of the preferred embodiments, but is instead defined by reference to the appended claims.

[0098] The forgoing description of the invention includes preferred forms thereof. Modifications may be made thereto without departing from the scope of the invention.

Claims

1. 1. A connector assembly for a gas delivery conduit for providing gas to a patient, the connector assembly including a mating adapter and a connector; The connecting adapter is A coupling adapter body; a channel formed on an exterior surface of the coupling adapter body; a collar circumferentially disposed on the connecting adapter body; one or more locking fingers configured for attachment to a second connector and extending longitudinally from one end of the coupling adapter body, each of the one or more locking fingers having a locking recess formed on an outer surface thereof, the locking recess configured to engage a locking tab formed on the second connector; Including, The connector comprises: an interior surface having at least one longitudinal ridge configured to engage with the channel of the coupling adapter; and a first opening capable of receiving the connecting adapter; a second opening connectable to the conduit; a locking groove formed around a periphery of the inner surface, the locking groove configured to engage the collar of the coupling adapter; Including, Connector assembly.

2. The connector assembly of claim 1 , wherein the locking groove extends around a periphery of the interior surface between the at least one longitudinal ridge and the second opening.

3. 2. The connector assembly of claim 1, wherein the connector includes an annular protrusion disposed about the first opening and extending outward from an edge of the first opening, the annular protrusion providing a sealing surface.

4. The connector assembly of claim 1 , wherein the at least one longitudinal ridge tapers in width or height toward the first opening.

5. The connector assembly of claim 1 , wherein the connector further includes one or more finger grooves formed on an exterior surface of the connector.

6. The connector assembly of claim 1 , wherein the second opening includes two openings, each capable of receiving a conduit that provides gas to a patient interface.

7. The connector assembly of claim 6 , wherein the two openings are disposed adjacent to each other.

8. 2. The connector assembly of claim 1, wherein the second opening is surrounded by an angled surface of the connector, the angled surface surrounding an inner end of the second opening and tapering downstream to funnel airflow into the conduit.

9. The connector assembly of claim 1 , wherein the connector is colored to indicate size information of the connector.

10. The connector assembly of claim 1 , wherein the first opening of the connector is configured to receive a flow of gas.

11. The connector assembly of claim 1 , wherein the first opening and the second opening are substantially coaxial.

12. The connector assembly of claim 1 , wherein the first opening has a larger diameter than the second opening.

13. A connector assembly as described in claim 1, further comprising the conduit, wherein the second opening of the connector receives the conduit.

14. 10. A patient interface for delivering gas to a patient, the patient interface comprising a conduit and the connector assembly of claim 1, the connector attached to an end of the conduit.

15. 15. A patient interface according to claim 14, comprising two conduits, and wherein the second opening of the connector comprises two openings, each attached to a respective conduit.

16. 16. A patient interface according to claim 15, wherein each conduit connects at a terminal end to a prong for insertion into a patient's nostril.

17. The connector assembly of claim 1 , wherein the mating adapter is rotatable relative to the connector when mated with the mating adapter.

18. The connector assembly of claim 1 , wherein the collar is disposed on an end of the mating adapter.

19. The connector assembly of claim 1 , wherein the one or more locking fingers are configured for removably attaching to the second connector.

20. 20. The connector assembly of claim 19, wherein the one or more locking fingers are configured to interact with one or more alignment tabs on the second connector such that the one or more locking recesses align with the one or more locking tabs on the second connector when the coupling adapter is coupled to the second connector.

21. A connector assembly as described in claim 1, wherein the channel is configured to rotatably engage with the at least one longitudinal ridge formed on the inner surface of the connector.

22. The connector assembly of claim 1 , wherein the mating adapter further includes one or more protrusions extending longitudinally on an inner surface of the mating adapter.

23. 23. The connector assembly of claim 22, wherein the projections are equally spaced along an inner periphery of the mating adapter.

24. The connector assembly of claim 1 , wherein the coupling adapter is coupled to a second connector, and the second connector is coupled to a gas delivery tube.

25. The connector assembly of claim 24, wherein a seal is formed between the connector and the second connector.