A61M16/0084

Endotracheal tube to bag valve device connecting assembly
11577038 · 2023-02-14 ·

An endotracheal tube to bag valve device connecting assembly for quick access to an endotracheal tube for suctioning includes a first tube and a second tube that are coupled to a hinge so that the first tube is positioned to be swiveled relative to the second tube to align the first tube with the second tube, wherein the first tube and the second tube define a pipe. A first end of the pipe is configured to selectively couple to a patient valve of a bag valve device. A second end of the pipe is configured to selectively couple to an endotracheal tube. The pipe is configured to allow flow of gas from the bag valve device to the endotracheal tube. The first tube is positioned to be swiveled on the hinge so that the second tube is configured to insert a suction tube into the endotracheal tube to clear an airway.

AUTOMATING VENTILATION USING AN AIRBAG
20230040211 · 2023-02-09 ·

Apparatus is disclosed for ventilation using an airbag, which may also be operable manually. The apparatus comprises: means providing or penetrable to form an aperture in the airbag; retractable means provided separately from the airbag, for extending in the airbag; fixing means for fixing, by an operator, an end of the retractable means to the airbag via the aperture; actuation means, for repeatedly retracting the retractable means at least partially through the aperture in the airbag to collapse the airbag, and for enabling expansion of the airbag to an expanded state; and connecting means for connecting the actuation means to the airbag and for preventing environment egress of gas from within the airbag between the aperture and the actuation means.

Volume control device for manually operated resuscitator and ventilation apparatus and method of use

A resuscitation bag (bag valve mask resuscitator or BVM or BVMR) or other similar ventilation device (for example: anesthesia bag) includes a structure that allows a selectable, and repeatable volume be delivered to patients. The reservoir of the BVMR is formed from elastic, gastight material in the form of an elongated hollow body, with an essentially circular cross section. A range of motion control (ROMC) structure controls, or selectively limits the range of motion or collapse of the elastic bag to limit or control the volume expelled from the bag to the patient.

Manual resuscitation bag with improved PEP exhaust valve

The invention concerns a manual resuscitation bag having a first PEP exhaust valve (4) arranged in a first conduit element (3) and fluidly communicating with the ambient atmosphere for venting gas to the atmosphere when the gas pressure, into the first conduit element (3), exceeds a given pressure threshold. The first PEP exhaust valve (4) has a valve body (5) and a calibration mechanism (6, 12; 7-10) for setting a desired pressure threshold. The calibration mechanism (6, 12; 7-10) is a rotatable member (6), actuatable by a user, arranged on the valve body (5) and cooperating with a pressure adjusting device (7-10) arranged into the valve body (5), and a support member (12) comprising several markings (11) corresponding to several settable pressure values, arranged between the rotatable member (6) and the valve body (5).

Resuscitation management system based on radiofrequency identification for manual resuscitators
11565061 · 2023-01-31 ·

A resuscitation management system for a manual resuscitator may include a radio frequency identification (RFID) tag that may be configured to be mounted on a first side of a bag of the manual resuscitator. The RFID tag may be configured to transmit information indicative of the presence of the RFID tag. The system may further include an RFID reader that may be configured to be mounted on an opposite second side of the bag. The RFID reader may be configured to generate an output signal corresponding to the presence of the RFID tag responsive to receiving the information transmitted by the RFID tag. The RFID reader may be configured to receive the information transmitted by the RFID tag responsive to the RFID tag being at a distance from the RFID reader smaller than a predetermined threshold.

Apparatus and method for oxygen delivery to a patient during manual ventilation
11559651 · 2023-01-24 · ·

A system for detecting manual ventilation and selectively delivering a high flow of oxygen. The system comprises a source of compressed oxygen coupled to a first lumen of a nasal cannula, with an oxygen flow control valve coupled to a processor to control the flow of oxygen to the nasal cannula. A second lumen of the nasal cannula is in connection with a pressure sensor and the pressure sensor in connection with the processor. The processor may receive the pressure values and be programmed to determine when manual ventilation has occurred, and send a signal to the oxygen flow control valve to send a high flow of oxygen in response to manual ventilation.

PRESSURE SAFETY DEVICE FOR BAG VALVE MASK

A pressure safety device is used with a bag valve mask (BVM) for preventing over-pressurization. The BVM includes a bag assembly having a bag connector for detachably mating to a mask connector on a patient mask. The pressure safety device has a housing with a bag port, a mask fitting, and a flow path from the bag port to the mask fitting. The bag port detachably connects to the bag connector on the BVM, and the mask fitting detachably connects to the mask connector on the BVM. The pressure safety device includes an automatic flow reduction valve located on the flow path in the housing and impedes flow when pressure on a bag connector side of the valve exceeds a maximum threshold value.

FILTRATION ENCLOSURE FOR VENTILATION BAGS
20230015547 · 2023-01-19 ·

The filtration enclosure for ventilation bags is a manually operated respirator. The filtration enclosure for ventilation bags is adapted for use with a patient. The filtration enclosure for ventilation bags is a breathing assistance device that maintains a positive pressure within the lungs of the patient. The filtration enclosure for ventilation bags incorporates a bag valve mask respirator and a containment structure. The containment structure forms a protection space that encloses the bag valve mask respirator such that the bag valve mask respirator can operate while within the containment space. The containment structure is formed as a gas permeable structure. The containment structure forms a filter that filters microorganisms from the gas that flows through the boundary surface formed by the containment structure.

FEEDBACK PROVIDING FACIAL MASKS

A feedback providing facial mask is provided. The mask includes a facial adaptive component including a deformable member embedded in an interior region of the facial adaptive component and circuits, each of the circuits being operable in an open-circuit state or a closed-circuit state. The mask also includes a battery, light elements coupled to the battery and positioned within the deformable member, and sensors positioned at a plurality of locations within the deformable member. The sensors are connected to one of the light elements, wherein each of the circuits include the battery, one of the light elements, and at least one of the plurality of sensors, and wherein one or more of the circuits change from operating in the open-circuit state to the closed-circuit state in response o the one or more of the sensors contacting skin on an object that is external to the mask.

Ventilation apparatus

A method of ventilating a patient controls an actuator, in accordance with a prescribed value for a respiratory parameter, to compress an inflatable bag to cause air to flow out of an output valve of the bag. The respiratory parameter may include tidal volume, pressure, volume limit, peak pressure, I:E ratio, inspiratory time, and/or breathing rate of the air flowing through the output valve. The method also senses the pressure flowing through the output valve, and sends a pressure signal to the controller. Additionally, the method senses the flow rate through the output valve, and sends a flow rate signal to the controller. The method also adjusts the compression of the actuator as a function of the flow rate signal and/or the pressure signal to adjust the output tidal volume, pressure, volume limit, peak pressure, I:E ratio, inspiratory time, and/or breathing rate to be in accordance with the prescribed value.