System and method for delivering therapeutic gas using an enhanced therapeutic gas (NO) flow meter to a patient requiring therapeutic gas and receiving breathing gas from a ventilator that varies at least pressure and / or flow

The nitric oxide delivery system with bidirectional flow sensors and control algorithms addresses turbulent mixing and erroneous flow measurements in high-frequency ventilators, achieving precise nitric oxide dosing in respiratory gas.

JP2026034675APending Publication Date: 2026-02-27MALLINCKRODT HOSPITAL PRODUCTS IP LTD
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Patent Information

Application Number
JP2025264931
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2015-04-30
Filing Date
2025-12-18
Publication Date
2026-02-27

AI Technical Summary

Technical Problem

Delivering therapeutic gas, such as nitric oxide, to patients receiving respiratory gas from high-frequency ventilators is challenging due to turbulent mixing and erroneous flow measurements, leading to inaccurate dosing and underdelivery.

Method used

The system employs a nitric oxide delivery system with bidirectional flow sensors and control algorithms to accurately measure and correct for flow distortions caused by high-frequency ventilators, ensuring precise dosing by turbulently mixing nitric oxide into the respiratory gas.

Benefits of technology

The system enhances the accuracy of nitric oxide delivery by correcting for flow distortions and turbulent mixing, preventing underdelivery and ensuring consistent therapeutic gas concentrations in patients using high-frequency ventilators.

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Abstract

To provide a nitric oxide supply system.SOLUTION: The present invention relates generally to systems and methods for delivering therapeutic gas to a patient in need thereof, wherein the patient receives breathing gas from a high frequency ventilator using at least an enhanced therapeutic gas (e.g., nitric oxide, NO, etc.) flow meter. At least some of these enhanced therapeutic gas flow measurement devices can be used to address several surprising phenomena that sometimes occur when therapeutic gas is turbulently mixed into breathing gas received by a patient from a breathing circuit associated with a high frequency ventilator. When using at least some of these enhanced therapeutic gas flow measurement devices, the administration of therapeutic gas that is turbulently mixed into the breathing gas received by the patient can be more accurate and / or under-delivery of therapeutic gas into the breathing gas can be avoided and / or reduced.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates generally to a system and method for delivering therapeutic gas to a patient in need of therapeutic gas and receiving respiratory gas from a ventilator that varies at least the pressure and / or flow rate, using an enhanced therapeutic gas (NO) flow meter. [Background technology]

[0002] Therapeutic gases can be delivered to patients in need thereof to provide medical benefits. One such therapeutic gas is nitric oxide (NO) gas, which, when airborne, functions to dilate blood vessels in the lungs, improving blood oxygenation and reducing pulmonary hypertension. For at least this reason, nitric oxide can be provided as a therapeutic gas in respiratory gases to patients with pulmonary hypertension.

[0003] Additionally, many patients receive breathing gas (e.g., inspired breathing gas) from a ventilator, which can vary at least the pressure and / or flow (e.g., high-frequency ventilators). Unlike traditional ventilators, high-frequency ventilators use a constant inflated pressure (referred to as airway pressure (MAP)) that oscillates and varies around MAP at very high speeds (e.g., up to 900 revolutions per minute). In other words, high-frequency ventilators maintain a constant pressure within the patient's breathing circuit, and this pressure oscillates at very high speeds. Beneficially, this can facilitate gas exchange across the blood vessels in the patient's lungs.

[0004] Although high-frequency ventilators are beneficial, patients receiving respiratory gas from a high-frequency ventilator receive additional benefits from therapeutic gas. To take advantage of these additional benefits, the therapeutic gas must be delivered into the respiratory gas the patient receives from the breathing circuit attached to the high-frequency ventilator. However, delivering therapeutic gas into the patient's respiratory gas delivered to the patient from the high-frequency ventilator can be difficult and / or present unexpected problems. These difficulties and / or unexpected problems may affect the delivery and / or accuracy of the therapeutic gas.

[0005] Therefore, there is a need to improve the accuracy of delivery and / or administration of therapeutic gas by overcoming difficulties and / or unexpected problems that may arise when delivering therapeutic gas to a patient receiving respiratory gas from a ventilator (e.g., a high frequency ventilator) that can vary at least the pressure and / or flow rate. [Prior art documents] [Patent documents]

[0006] [Patent Document 1] U.S. Patent No. 5,558,083 [Patent Document 2] U.S. Patent No. 14 / 672447 Summary of the Invention [Problem to be solved by the invention]

[0007] An embodiment of the present invention relates to a nitric oxide delivery system that delivers a therapeutic gas containing NO into the inspiratory limb of a breathing circuit, the breathing circuit being capable of being ventilated with a high-frequency ventilator. The nitric oxide delivery system can include an injection module that receives a flow rate of the therapeutic gas and injects the therapeutic gas into the delivery circuit. The injection module can include and / or communicate with a unidirectional NO flow sensor (e.g., into the injection module, from the nitric oxide delivery system to the injection module, etc.) that can measure forward NO flow and / or a bidirectional NO flow sensor that can measure forward and reverse NO flow. Using the flow sensors and / or information communicated from the flow sensors to the nitric oxide delivery system, the nitric oxide delivery system can more accurately deliver NO to the injection module and / or avoid and / or reduce underdelivery of the therapeutic gas into the respiratory gas.

[0008] In an exemplary embodiment, the NO flow sensor can be used to address at least the surprising erroneous flow phenomenon discovered by applicants.

[0009] In an exemplary embodiment, flow information can be obtained from a bidirectional flow sensor that can be used to detect the use of a ventilator that can vary at least pressure and / or flow (e.g., a high frequency ventilator) and / or can correct for distortions in the flow information generated by the ventilator.

[0010] In an exemplary embodiment, flow information can be obtained from a one-way flow sensor that can be used to detect the use of a ventilator that can vary at least pressure and / or flow (e.g., a high frequency ventilator) and / or can correct for distortions in the flow information generated by the ventilator. [Brief explanation of the drawings]

[0011] The features and advantages of the present invention may be more fully understood by reference to the following detailed description taken in conjunction with the accompanying drawings, in which: [Figure 1] 1 illustrates an exemplary nitric oxide delivery system, in accordance with an exemplary embodiment of the present invention. [Figure 2] 1 illustrates an exemplary nitric oxide delivery system having a check valve, according to an exemplary embodiment of the present invention. [Figure 3] 1 illustrates an exemplary nitric oxide delivery system using an exemplary ventilator with a free breathing valve, according to an exemplary embodiment of the present invention. [Figure 4A] 1 illustrates an exemplary injection module having a bidirectional NO flow sensor, according to an exemplary embodiment of the present invention. [Figure 4B] 1 illustrates an exemplary injection module having a bidirectional NO flow sensor, according to an exemplary embodiment of the present invention. [Figure 5A] 1 shows an exemplary graphical representation of information from a flow sensor, according to an exemplary embodiment of the present invention. [Figure 5B]1 shows an exemplary graphical representation of information from a flow sensor, according to an exemplary embodiment of the present invention. [Figure 5C] 1 shows an exemplary graphical representation of information from a flow sensor, according to an exemplary embodiment of the present invention. [Figure 6A] 10 illustrates an exemplary graphical representation of information from a flow sensor including negative flow information and / or negative flow rate, according to an exemplary embodiment of the present invention. [Figure 6B] 10 illustrates an exemplary graphical representation of information from a flow sensor including negative flow information and / or negative flow rate, according to an exemplary embodiment of the present invention. [Figure 6C] 10 illustrates an exemplary graphical representation of information from a flow sensor including negative flow information and / or negative flow rate, according to an exemplary embodiment of the present invention. Detailed Description of the Invention

[0012] The present invention generally relates to systems and methods for delivering therapeutic gas to a patient in need thereof and receiving respiratory gas from a ventilator, the ventilator being capable of varying at least pressure and / or flow rate (e.g., a high-frequency ventilator) and utilizing, among other things, enhanced therapeutic gas (e.g., nitric oxide, NO, etc.) flow meters. At least some of these enhanced therapeutic gas flow meters can be used to address several surprising phenomena that sometimes occur when a therapeutic gas is turbulently mixed into the respiratory gas received by a patient from a breathing circuit equipped with a ventilator (e.g., a high-frequency ventilator) capable of varying at least pressure and / or flow rate. Utilizing at least some of these enhanced therapeutic gas flow meters and / or the present invention, the dosage of the therapeutic gas turbulently mixed into the respiratory gas received by the patient from the ventilator can be more accurate and / or underdelivery of the therapeutic gas into the respiratory gas can be avoided and / or reduced.

[0013] As used herein, "proportional turbulent flow mixed," "turbulent flow mixing," "proportional metering mix," and the like refer to flow mixing, where the main flow is an unregulated (uncontrollable) flow relative to the turbulent flow, and the components introduced into the turbulent flow are controlled as part of the main flow, generally mixing with the main flow upstream (or alternatively downstream) of the flow meter. In various embodiments, the inspiratory flow is a "turbulent flow" because the flow rate is not specifically controlled or regulated, and nitric oxide is a mixing element delivered as part of the inspiratory flow through a delivery line.

[0014] As used herein, "spurious NO flow rate" and the like refers to the phenomenon of flow rate being erroneously measured by a flow sensor. Examples of spurious NO flow rate include, but are not limited to, a measurement of an NO flow rate by a flow sensor when NO is not flowing accurately, and a measurement of an NO flow rate that is significantly different from the actual NO flow rate.

[0015] The systems and methods of the present invention can deliver therapeutic gas from a delivery system to an injection module, which is then fluidly connected to a breathing circuit (including, but not limited to, a high frequency ventilator and / or any other applicable ventilator and / or ventilation technology) from which a patient receives respiratory gas. The systems and methods of the present invention also include at least one therapeutic gas flow sensor that measures the flow of therapeutic gas from the delivery system to the injection module and then through the breathing circuit and to the patient. Advantageously, the therapeutic gas flow sensor can measure flow in more than one direction (e.g., a bidirectional therapeutic gas flow sensor) and / or address some surprising phenomena that sometimes occur when turbulent flow of therapeutic gas mixes with respiratory gas in a breathing circuit with a ventilator (e.g., a high frequency ventilator) that can change at least the pressure and / or flow rate.

[0016] Additionally, the systems and methods of the present invention can use techniques (e.g., algorithms, user input, etc.) to determine whether to use a ventilator (e.g., a high frequency ventilator, etc.) that can vary at least pressure and / or flow to correct for at least some surprising phenomena, which sometimes occur when therapeutic gas is mixed with turbulent flow into the respiratory gas in a ventilated breathing circuit. These techniques can sometimes use information from at least a therapeutic gas flow sensor that can measure flow in one direction (e.g., a unidirectional flow sensor) and / or that can measure flow in more than one direction (e.g., a bidirectional flow sensor).

[0017] Additionally, the systems and methods of the present invention can employ techniques (e.g., algorithms, user input, etc.) to more effectively actuate the valve and / or compensate for forces that can affect valve actuation, such as, but not limited to, static friction, dynamic friction, and / or valve part interactions, to name a few. In at least some embodiments, this can result in increased accuracy of NO delivery and monitoring, and can avoid and / or reduce under-delivery of therapeutic gas into the respiratory gas.

[0018] Referring to FIG. 1, an exemplary nitric oxide delivery system 100 is illustratively shown for delivering therapeutic nitric oxide gas via an injection module to a patient receiving respiratory gas from a high-frequency ventilator. Any of the techniques of the present invention can be used in any applicable system for delivering therapeutic gas to a patient receiving respiratory gas from a breathing device (e.g., a ventilator, a high-frequency ventilator, a breathing mask, a nasal cannula, etc.). For example, the systems and methods of the present invention can use, modify, and / or incorporate delivery systems and / or other techniques from U.S. Pat. No. 5,558,083, entitled "Nitric Oxide Delivery System," the contents of which are incorporated by reference in their entirety.

[0019] Although the systems and methods of the present invention are sometimes illustrated for use with a high-frequency ventilator, the systems and methods of the present invention may be used with any applicable respiratory apparatus, including high-frequency ventilators, any applicable respiratory apparatus facing difficulties and / or problems, and / or any applicable respiratory apparatus equipped with a ventilator and / or ventilation technique capable of providing reverse inspiratory pressure and / or flow (e.g., bilevel positive airway pressure mask, any ventilation technique that varies pressure and / or flow, etc.). Thus, reference to a high-frequency ventilator is merely for simplicity and is not intended to be limiting. Furthermore, sometimes the inspiratory pressure and / or flow is not reversed, but rather varies a pressure and / or flow that may remain positive (e.g., a high-frequency sinusoidal pressure and / or flow). For simplicity, reference to creating a reverse inspiratory pressure and / or flow may sometimes result in a situation that varies a pressure and / or flow that may remain positive (e.g., a high-frequency sinusoidal pressure and / or flow). Therefore, referring to reverse intake pressure and / or flow is for simplicity and not limitation.

[0020] The systems and methods of the present invention can be used with any applicable therapeutic gas. References to therapeutic gas, therapeutic gas flow measurement, therapeutic gas delivery system, and the like are described in reference to nitric oxide gas (NO) for use in airborne nitric oxide gas therapy. It is understood that other therapeutic gases can also be used. Thus, references to nitric oxide, NO, and the like are for simplicity and not limitation.

[0021] The systems and methods of the present invention can be used to turbulently mix therapeutic gas into the patient's respiratory gas in the breathing circuit and / or elsewhere. By example, therapeutic gas can be turbulently mixed into the patient's respiratory gas at a location prior to the breathing circuit. By other example, in at least some instances, the patient's breathing circuit can include only one limb for both inspiration and expiration. For example, a BiPAP ventilator can have only one limb that combines the inspiratory and expiratory limbs. In accordance with this example, therapeutic gas can be turbulently mixed into the patient's respiratory gas in a limb that can function as both the inspiratory and expiratory limbs. For simplicity, the patient's breathing circuit is sometimes shown as having separate inspiratory and expiratory limbs. This is for simplicity's sake and not by way of limitation.

[0022] In an exemplary embodiment, a nitric oxide delivery system, such as nitric oxide delivery system 100, can be used to turbulently mix a therapeutic gas (e.g., nitric oxide, NO, etc.) into a patient's breathing gas in a breathing circuit (such as a high-frequency ventilator) as part of the patient's breathing gas (e.g., ppm, etc.) and / or as pulses (e.g., ml / breath, mg / kg / hr, etc.). To turbulently mix NO or pulsed NO (e.g., pulsed, etc.) into the patient's breathing gas, nitric oxide delivery system 100 can have and / or receive nitric oxide from a nitric oxide source 103 (e.g., a cylinder of stored NO, an NO generator, etc.), for example, via conduit 105. As an alternative to a cylinder of NO-containing gas, NO can be generated at the bedside by a suitable chemical reaction, such as the reaction of an NO-releasing agent, such as nitrogen dioxide, with a reducing agent, such as ascorbic acid. Additionally, the conduit 105 may be fluidly connected to an injection module 107, for example, via a therapeutic gas inlet 110, which may also be fluidly connected to the inspiratory limb of a breathing circuit with a high-frequency ventilator 117 attached.

[0023] As shown, the high frequency ventilator 117 can have an inspiratory outlet that delivers respiratory gas (e.g., forward flow 133) to a patient via the inspiratory limb 121 of the patient's breathing circuit, and an expiratory inlet that receives the patient's exhaled breath via the expiratory limb of the patient's breathing circuit. When the infusion module 107 is connected to the inspiratory limb 121 of the breathing circuit, nitric oxide can be delivered from the nitric oxide delivery system 100 (e.g., NO forward flow 137) to the infusion module 107 via conduit 105 and / or therapeutic gas inlet 110. This nitric oxide can then be delivered via the infusion module into the inspiratory limb 121 of the patient's breathing circuit with the high frequency ventilator 117 used to deliver respiratory gas to a patient 108.

[0024] Nitric oxide delivery system 100 may include one or more control valves 109 (e.g., proportional valves, bidirectional valves, etc.) to regulate the flow of nitric oxide through conduit 105 to injection module 107 and then to patient 108, which receives respiratory gas from the patient's breathing circuit. For example, when control valve 109 is open, nitric oxide may be delivered to patient 108 by flowing in a forward direction (e.g., NO forward flow 137) through conduit 105 to injection module 107 and then to patient 108. For other embodiments, when control valve 109 is closed, nitric oxide does not flow in the forward direction and is therefore not delivered to patient 108.

[0025] In at least some embodiments, the nitric oxide delivery system 100 can include one or more NO flow sensors 115 that can measure the flow of therapeutic gas through the control valve 109 and / or conduit 105 (e.g., NO forward flow 137), and then through the therapeutic gas inlet 110 to the infusion module 107 and then to the patient 108. Additionally, in at least some embodiments, the infusion module 107 can include one or more breathing circuit gas (BCG) flow sensors 119 that can measure at least the flow of the patient's breathing gas (e.g., forward flow 133) through the infusion module 107 and then to the patient 108. While shown within the infusion module 107, the BCG flow sensor 119 can be located anywhere within the expiratory limb 121, upstream of the infusion module 107, etc. Also, instead of receiving flow information from a BCG flow sensor 119, the nitric oxide delivery system 100 can receive flow information directly from the high frequency ventilator 117, which indicates the flow of respiratory gas from the high frequency ventilator 117.

[0026] In exemplary embodiments, the systems and methods of the present invention can be used, modified, and / or incorporated with therapeutic gas breathing systems and methods that include a bidirectional breathing circuit gas (BCG) flow sensor. By example, one or more of the breathing circuit gas (BCG) flow sensors 119 shown herein are bidirectional, and / or the systems and methods of the present invention can further include one or more bidirectional breathing circuit gas (BCG) flow sensors. For example, the systems and methods of the present invention can be used, modified, and / or incorporated with delivery systems and / or other teachings, such as U.S. Patent Application No. 14 / 672,447, filed March 30, 2015, entitled "System and Method for Delivering Therapeutic Gas to a Patient Using Enhanced Breathing Circuit Gas (BCG) Flow Measurement," the contents of which are incorporated herein by reference in their entirety.

[0027] In an exemplary embodiment, the nitric oxide gas flow rate is proportional to the respiratory gas flow rate (also known as proportional to the supply voltage) to provide a predetermined concentration of NO in the mixed respiratory and therapeutic gas. For example, nitric oxide gas delivery system 100 can ensure a predetermined concentration of NO in the mixed respiratory and therapeutic gas by using a known NO concentration in NO source 103; the amount of respiratory gas in the patient circuit using BCG flow sensor 119; and the amount of therapeutic gas flow in conduit 105 to injection module 107 using information from NO flow sensor 115.

[0028] To deliver at least therapeutic gas to a patient and / or to implement at least some of the teachings disclosed herein, the nitric oxide delivery system 100 can include a control system, which can include one or more CPUs 111. The CPU 111 can be connected to memory (not shown), which can be one or more readily available memories, such as random access memory (RAM), read-only memory (ROM), flash memory, compact disk, floppy disk, hard disk, or local or remote digital storage. Support circuits (not shown) can be connected to the CPU 111 and can support the CPU 111, sensors, valves, sampling systems, user input / displays, infusion modules, respiratory equipment, and the like, in a conventional manner. These circuits can include cache memory, power supplies, clock circuits, input / output electrical circuits, subsystems, power controllers, signal conditioners, and the like. The CPU 111 can communicate with the sensors, valves, sampling systems, delivery systems, user input / displays, infusion modules, respiratory equipment, and the like. In an exemplary embodiment, the memory can store a set of machine-executable instructions (or algorithms) that, when executed by the CPU 111, enable the delivery system to perform a method. For example, the delivery system can perform a method including measuring flow rate in the inspiratory limb of the patient's breathing circuit; delivering a therapeutic gas containing nitric oxide to the patient during an inspiratory flow rate; monitoring the inspiratory flow rate or changes in the inspiratory flow rate; and varying the amount (e.g., volume or mass) of therapeutic gas delivered at successive inspiratory flow rates. The machine-executed instructions can also include instructions for any of the other methods described herein.

[0029] Additionally, to at least accurately administer the therapeutic gas, the nitric oxide delivery system 100 can include a user input / display 113, which can be a display and keyboard and / or buttons or a touchscreen device. The user input / display 113 can receive predetermined settings from the user, such as the patient's prescription (mg / kg standard body weight, mg / kg / hr, mg / kg / breath, mL / breath, cylinder concentration, delivery concentration, duration, etc.), the patient's age, height, sex, weight, etc. The user input / display 113 can also receive user input related to an operational mode, such as for use with a high-frequency ventilator. For example, the user input / display 113 can include a button or other means for the user to indicate that the nitric oxide delivery system 100 is for use with a high-frequency ventilator. The user input / display 113 can, in at least some embodiments, be used to determine patient dosage and / or gas measurements, for example, using a gas sampling system 129 that can receive a sample of the gas delivered to the patient 108 via a sample line 131. The gas sampling system 129 can have many sensors, including but not limited to, nitric oxide gas sensors, nitrogen dioxide gas sensors, and oxygen gas sensors, which can be used to display relevant information (e.g., gas concentrations) on the user input / display 113.

[0030] 1-3, CPU 111 may be in communication with control valve 119, user input / display 113, NO flow sensor 115, BCG flow sensor 119, and / or gas sampling system 129. CPU 111 may perform any of the methods described herein through the use of appropriate algorithms.

[0031] While the above-described methods can be usefully used to deliver therapeutic gas to patients receiving respiratory gas from the breathing circuit of a high-frequency ventilated patient, the above-described methods fail to account for at least some surprising phenomena, which occur, for example, when NO is turbulently mixed into the patient's respiratory gas as a proportion of the patient's respiratory gas. Without knowledge of at least some of these phenomena, the precise NO concentration (e.g., the NO concentration in the patient's respiratory gas, parts per million (PPM) NO, etc.) may differ from a predetermined NO concentration (e.g., underdosing). This NO concentration is particularly important because it may result in a prescribed dose for the patient. Thus, accounting for at least some of these phenomena may allow for more accurate NO dosing and avoid and / or reduce underdosing of NO.

[0032] Extensive research has found that a surprising reduction in NO flow (the false NO flow phenomenon) can occur in at least some embodiments, resulting in a turbulent flow of NO mixed with a patient's respiratory gas in a high-frequency ventilated breathing circuit, causing an NO flow in the nitric oxide delivery line (e.g., conduit 105) and / or infusion module (e.g., therapeutic gas inlet 110) to be erroneously measured as flowing (even though NO is not flowing) by flow sensor 115. This can result in reduced accuracy of NO delivery and / or monitoring, for example, by NO delivery system 100, and this false NO flow can cause NO delivery system 100 to deliver less NO than intended (e.g., underdosing), leading the system to falsely believe that NO is being delivered.

[0033] These erroneous NO flow measurements can be caused by, for example, vibrations or pressure oscillations caused by rapidly actuating valves and / or valves (not shown) in the high-frequency ventilator 117, which are interpreted as flow by the flow sensor and then used by the NO delivery system 100 for NO delivery and / or monitoring. The flow is interpreted incorrectly by the flow sensor 115 because these vibrations or pressure oscillations briefly pressurize the NO gas contained in the conduit 105, and this pressure increase and / or decompression (sometimes shown as pressure for simplicity) when very small amounts of NO flow through the conduit 105 results in a visible flow (e.g., NO forward flow 137) on the NO flow sensor 115. This can result in a situation where the nitric oxide delivery system erroneously detects that NO forward flow 137 is occurring (e.g., in the conduit 105, at the injector module 107, through the therapeutic gas inlet, etc.) when in fact there is no forward flow or flow at all. Thus, at least as a result of this erroneous flow phenomenon, the accuracy of NO delivery and monitoring can be increased and under-delivery of therapeutic gas into the respiratory gas can be avoided and / or reduced.

[0034] 2, in an exemplary embodiment, at least when addressing erroneous NO flow rates, a check valve 202 (e.g., a pneumatic check valve) can be placed in fluid communication with the inspiratory limb 121. For example, a check valve can be placed in fluid communication with, but not in, the inspiratory limb 121. For other embodiments, the check valve 202 can be placed in the inspiratory limb 121 upstream of the infusion module 107. In use, the check valve 202 is opened to allow erroneous NO flow sources, oscillations, and / or pressure oscillations to be diverted before reaching the infusion module 107 and / or being measured by the flow sensor 115. While the use of check valves can address at least some of the issues associated with erroneous NO flow rates, these check valves also introduce many issues, including, but not limited to, delayed response flow rates from forward flow cracking pressure, contamination of surface seals and materials that affect seal performance due to static physical attraction, unit-to-unit repeatability due to part tolerances or material selection, surface finishes that affect seal performance, can be characterized as undamped spring-mass systems that are vulnerable to generating audible noise or forward flow induced vibration "noise," and / or can detract from flow control accuracy, repeatability, and control response time, to name a few.

[0035] Additionally, the check valve 202 can prevent the ventilator from breathing air, and the ventilator has a free-breathing valve 302, as shown in FIG. 3. The free-breathing valve 302 (sometimes called the anti-asphyxiation valve) opens to air, allowing the patient to breathe unconsciously using the ventilator. The free-breathing valve 302 is necessary for the ventilator to ensure that a patient attempting to breathe unconsciously has the ability to inhale air. By way of example, when a ventilator does not have this free-breathing valve 302, it can be considered a closed system, with the ventilator controlling the time that breathing air is delivered to the patient. Without this free-breathing valve, the user would not be able to inhale air if the patient were attempting to breathe unconsciously, and there would be no entry point for air to flow into the patient's breathing circuit. With this free-breathing valve, the free-breathing valve can be activated to allow the user to draw air from the surrounding environment after the patient attempts to breathe unconsciously. For ventilators equipped with a free-breathing valve, a check valve installed in the patient breathing circuit would allow obstruction from the free-breathing valve, defeating the purpose of this safety feature and not for use with this ventilator.

[0036] In an exemplary embodiment, check valve 202 and / or additional check valves can be installed in and / or fluidly connected to injection module 107, treatment gas inlet 110, and / or conduit 105 to at least reduce and / or prevent obstruction of free-breathing valve 302.

[0037] In exemplary embodiments, to address at least some of the above-described phenomena (e.g., erroneous NO flow rates) and / or to provide additional benefits, the NO flow rate can be measured upstream of the control valve. In this configuration (e.g., the NO flow sensor is upstream of the control valve), closing the control valve can substantially reduce and / or eliminate the NO flow sensor's exposure to at least some of the above-described phenomena. For example, to reduce and / or eliminate the NO flow sensor's exposure to at least some of the above-described phenomena, the NO flow sensor 115 can be installed upstream of the valve 109. In at least some examples, the NO flow sensor 115, whether upstream or downstream of the valve 109, can be used to determine whether the valve 109 is functioning properly and / or whether flow is leaking through the valve 109. For example, if a flow rate higher than expected is detected by the NO flow sensor 115, this can indicate a leak in the valve 109.

[0038] In exemplary embodiments, to address at least some of the above-mentioned phenomena (e.g., erroneous NO flow rates, etc.) and / or to provide additional benefits, the NO delivery conduit (e.g., conduit 105) can have a very small cross-sectional diameter. For example, the NO delivery conduit (e.g., conduit 105) can have an internal cross-sectional diameter of about 1 / 32 inch to about 1 / 4 inch. In other examples, the NO delivery conduit (e.g., conduit 105) can have an internal cross-sectional diameter of about 1 / 8 inch. The cross-section can be selected to significantly reduce the compressible volume in the NO delivery conduit, e.g., the vibration signal detected by a flow sensor can be significantly reduced and / or effectively eliminated. In at least some examples, the cross-section can be selected to significantly increase resistance to flow, such that pressure changes and / or vibrations with a high frequency ventilator are not sufficient to overcome the increased resistance to flow and / or the propagation of pressure changes and / or vibrations can be significantly reduced and / or eliminated, e.g., before reaching an NO flow sensor (e.g., an NO flow sensor with a delivery system). In at least some embodiments, the inner cross-sectional diameter of the NO supply conduit (e.g., conduit 105) can be the same cross-sectional diameter inside and outside of system 100, and / or the NO supply conduit (e.g., conduit 105) can be the same cross-sectional diameter downstream of at least one of the flow control valves.

[0039] 4A and 4B, an exemplary infusion module is illustratively shown, which can address at least some of the above-mentioned phenomena (e.g., erroneous NO flow rate, etc.) and / or provide additional benefits. The infusion module 400 has a first end 404 and a second end 406, which can be coupled to the inspiratory limb of a patient's breathing circuit. At the first end 404 and the second end 406, respectively, are first and second openings in the body of the infusion module 400, allowing fluid (e.g., respiratory gas) to flow through the infusion module. The infusion module 400 also has a communication port 408, which can communicate information (e.g., fluid and / or pneumatic communication, electrical and / or digital communication, etc.) between the infusion module (and any additional components) and the nitric oxide delivery system. The systems and methods of the present invention use this information, for example, to address at least some of the above-mentioned phenomena and / or provide additional benefits. Additionally, injection module 400 includes a therapeutic gas inlet 410 that can receive therapeutic gas from a nitric oxide delivery system and / or inject therapeutic gas into the respiratory gas passing through the injection module.

[0040] In an exemplary embodiment, the infusion module of the present invention can include and / or be fluidly coupled to one or more bidirectional NO flow sensors 402, e.g., to address at least some of the phenomena described above (e.g., erroneous NO flow rates) and / or to provide additional benefits. For example, the infusion module 400 can include and / or be fluidly coupled to one or more bidirectional nitric oxide (NO) flow sensors 412. The bidirectional NO flow sensor 412 can be located at and / or fluidly coupled to the therapeutic gas inlet 410 and / or can measure the flow rate through an NO delivery conduit (e.g., conduit 105 shown in FIG. 1 ) to the infusion module 400 and / or to the inspiratory limb of the patient's breathing circuit. Additionally, the bidirectional NO flow sensor 412 can be used as a feedback control oscillator for NO delivery and / or to monitor the flow rate and / or amount of NO gas delivered into the patient's breathing circuit. For example, the flow rate measured from the bidirectional NO flow sensor 412 can be compared to the flow rate measurement from flow sensor 115 to detect NO leaks. This may result in more accurate dosing and / or reduced risk of leakage of nitric oxide into the surrounding environment.

[0041] Although shown in at least some embodiments as being located at the treatment gas inlet 410, the bidirectional NO flow sensor 412 can be located anywhere in fluid communication with the NO supply to the injection module. For example, the bidirectional NO flow sensor 412 can be located anywhere in fluid communication with the nitric oxide delivery system and / or the NO supply conduit (e.g., conduit 105 shown in FIG. 1). In other embodiments, the bidirectional NO flow sensor 412 can replace or be used in conjunction with the NO flow sensor 115 (shown in FIG. 13).

[0042] In at least some embodiments, two or more bi-directional NO flow sensors can be located at and / or fluidly coupled to the therapeutic gas inlet 410. For example, one or more bi-directional NO flow sensors can be located at and / or fluidly coupled to the therapeutic gas inlet 410. The two or more bi-directional NO flow sensors can, for example, measure the flow rate of NO delivered through the injection module 400 over a very wide range of flow rates.

[0043] In an exemplary embodiment, the bidirectional NO flow sensor 412 can be any sensor capable of measuring flow in both the forward and reverse directions. For example, the bidirectional flow sensor 119 can be a thermal mass flow meter (sometimes called a thermal dispersion flow meter); a pressure-based flow meter; an optical flow meter; an electromagnetic, ultrasonic, and / or Coriolis flow meter; a laser Doppler flow meter; and / or any flow meter that provides a response time of less than about 2 milliseconds and has a range of no more than + / -10 SLPM. Exemplary limits for reverse flow can be -10, -9, -8, -7, -6, -5, -4, -3, -2.5, -2, -1.5, -1, -0.75, -0.5, -0.4, -0.3, -0.2, or -0.1 SLPM. Similarly, exemplary limits for forward flow rate can be 10, 9, 8, 7, 6, 5, 4, 3, 2.5, 2, 1.5, 1, 0.75, 0.5, 0.4, 0.3, 0.2, or 0.1 SPLM. In at least some embodiments, bidirectional flow sensor 119 can be a pressure-based flow meter (e.g., a flow meter of a different pressure sensor type, etc.), and / or fluid and / or pneumatic communication can be provided via communication port 408.

[0044] In an exemplary embodiment, bidirectional NO flow sensor 412 can be fluidly coupled to a nitric oxide delivery system, for example, via communication port 408. This allows flow information to be communicated to the nitric oxide delivery system and used by the nitric oxide delivery system for NO delivery and / or monitoring. When using this bidirectional flow information, the nitric oxide delivery system can more accurately deliver and / or monitor NO.

[0045] In exemplary embodiments, the systems and methods of the present invention can use techniques (e.g., algorithms, user input, etc.) to determine whether high-frequency ventilation is enabled. Furthermore, in exemplary embodiments, when high-frequency ventilation is enabled, the systems and methods of the present invention can use techniques (e.g., algorithms, user input, etc.) to correct for at least some surprising phenomena (e.g., erroneous NO flow rates) and / or to affect and / or provide additional benefits that sometimes occur when therapeutic gas is mixed turbulently into the respiratory gas in a high-frequency ventilated breathing circuit. These techniques sometimes use information from at least a therapeutic gas flow sensor, such as NO flow sensor 115 (e.g., capable of measuring flow in one direction), NO flow sensor 412 (e.g., capable of measuring flow in more than one direction), and / or any flow sensor in fluid communication with the infusion module, therapeutic gas inlet, and / or NO conduit.

[0046] The systems and methods of the present invention can determine whether a therapeutic gas (e.g., NO) is delivered into a ventilated breathing circuit using any suitable technique, including, but not limited to, user input (e.g., user input information into a nitric oxide delivery system), detection (e.g., a detection algorithm by the nitric oxide delivery system), signal recovery, and / or any combination and / or subdivision thereof, direct communication with the ventilator, to name a few. For example, the nitric oxide delivery system can provide user input that NO is to be delivered into a high-frequency ventilated breathing circuit. In other embodiments, the nitric oxide delivery system can detect NO in a high-frequency ventilated breathing circuit, for example, using detection and / or signal recovery techniques.

[0047] In exemplary embodiments, given the use of a high-frequency ventilator, the systems and methods of the present invention can correct at least some surprising phenomena (e.g., erroneous NO flow phenomena), provide a ventilator effect, and / or provide additional benefits using any appropriate technique, including, but not limited to, filtering, using reduction techniques, any combination and / or subdivision thereof, any process capable of correcting information generated by the high-frequency ventilator with NO flow information, changing the NO delivery control algorithm to make it less responsive to high-frequency oscillations, electrical filtering, digital filtering, an NO flow sensor located upstream of the flow control valve, using a very small diameter NO injector, and / or pneumatic filtering, to name a few. By way of example, the systems and methods of the present invention can consider the high-frequency ventilator-generated information as noise and can remove this noise from the NO flow information (e.g., from the NO flow sensor) using any appropriate technique, including, but not limited to, linear filters, nonlinear filters, statistical signal processing, noise gating, and / or any combination and / or subdivision thereof, to name a few.

[0048] For ease of understanding, at least some exemplary detection and / or signal recovery and / or exemplary compensation techniques are disclosed herein. It is understood that other techniques may also be used. Furthermore, it is understood that the techniques disclosed herein are for ease of understanding and are not limiting.

[0049] By way of example, to determine whether NO is being delivered into a ventilated breathing circuit, systems and methods of the present invention can identify pressure and / or flow information indicative of the use of a high-frequency ventilator system. In at least some examples, flow information from a pressure and / or NO flow sensor, such as flow sensor 115 (shown in FIG. 13 ) and / or a bidirectional NO flow sensor (shown in FIGS. 4A and 4B ), can be analyzed (e.g., by a nitric oxide delivery system) to determine whether a high-frequency ventilator is being used. For example, information from the NO flow sensor can be analyzed against expected information from the NO flow sensor, and / or actual NO flow information can be identified from high-frequency ventilator-generated flow information that deviates from the actual NO flow information. By way of example, information from the NO flow sensor can be analyzed against expected flow information, indicating unexpected high-frequency forward and / or reverse flow and / or pressure, unexpected high-frequency forward flow and / or pressure, unexpected high-frequency zero and / or forward and / or reverse flow, to name a few.

[0050] 5A and 5B, exemplary graphical representations of information from an NO flow sensor are shown to demonstrate at least one exemplary technique for determining whether a high-frequency ventilator is being used. It should be understood that the information from the NO flow sensor may be in the form of current, voltage, and / or any other form of information indicative of flow rate and / or pressure. For simplicity, the illustrated flow rates are exemplary. This is for simplicity's sake and is not intended to be limiting.

[0051] Referring to FIG. 5A, plot 502 shows exemplary expected information from an NO flow sensor for a given flow rate of 10 ml / min, such as when delivering NO into a breathing circuit without a high-frequency ventilator. As shown, plot 502 can be considered as approximately a straight line, and plot 502 shows expected information from an NO flow sensor for a constant flow rate (e.g., a constant flow rate of 10 ml / min). Of course, when the flow rate is not constant, the plot will respond accordingly. For example, a constant flow rate may be provided to one portion of a patient's breathing circuit and then varied for another portion of the patient's breathing circuit. For ease of understanding, a constant flow rate is shown. This is for simplicity and is not limiting.

[0052] 5B, plot 504 illustrates an exemplary high frequency ventilator expected information from an NO flow sensor for an exemplary flow rate of 0 ml / min. As shown, plot 504 can be thought of as being nonlinear (e.g., sinusoidal, etc.), and plot 504 illustrates information from the NO flow sensor for oscillations or pressure oscillations, which are generated at least in part by, for example, a high frequency ventilator.

[0053] Referring to FIG. 5C, plot 506 shows exemplary actual information from an NO flow sensor for a flow rate of 10 ml / min, as distorted by vibrations or pressure oscillations. Sometimes, plot 506 can be considered distorted due to a combination of exemplary expected information from the NO flow sensor for a given flow rate of 10 ml / min (e.g., plot 502 in FIG. 5A) and exemplary information from the NO flow sensor showing vibrations or pressure oscillations generated by a high-frequency ventilator. These distortions can lead the nitric oxide delivery system to believe the flow is being delivered at a rate different from the predetermined constant flow rate of 10 ml / min (even though these distortions represent an incorrect NO flow rate and not the actual NO flow rate).

[0054] Problematically, in response to this erroneous flow information, the NO delivery system adjusts the flow of gas into the breathing circuit to attempt to deliver at a predetermined flow rate. Because this new flow rate rate is based on a distortion and not an actual flow rate rate, this adjusted flow rate rate can cause the actual delivery of NO into the breathing circuit at a rate that is not the predetermined flow rate rate.

[0055] In addition to the problems described above, the NO delivery system attempts to regulate the flow of gas to the breathing circuit by actuating (e.g., opening, closing, partially opening, partially closing, etc.) a delivery valve (such as valve 109) to attempt to deliver a predetermined flow rate. This valve actuation causes interactions of valve components that, in at least some embodiments, can cause at least a delay in delivery. In some embodiments, when attempting to adjust (but not necessarily adjust) the flow rate, the valve is closed and reopened to restore static and / or dynamic friction forces. These forces are not constant (e.g., more force is required to restore static friction than dynamic friction), which can cause delays in valve actuation and / or NO delivery. In exemplary embodiments, using the techniques disclosed herein, the length of time the system attempts to adjust the NO flow rate is reduced and / or eliminated, resulting in fewer occurrences of the problems described above. Furthermore, in at least some embodiments, this can result in increased accuracy of NO delivery and monitoring and / or avoidance and / or reduction of underdelivery of therapeutic gas within the respiratory gas.

[0056] In exemplary embodiments, when addressing at least the above-mentioned problems, the systems and methods of the present invention can more effectively use techniques (e.g., algorithms, user input, etc.) to accurately valve and / or compensate for forces affecting valve actuation, including, but not limited to, static friction, dynamic friction, and / or valve component interactions, to name a few. For example, the systems and methods of the present invention sometimes identify, factor, and / or compensate for the amount of force required to restore various forces (e.g., static friction, dynamic friction, etc.).

[0057] 5A and 5C, in accordance with the above-described embodiment, to detect the use of a high-frequency ventilator, the system and method of the present invention can analyze actual information from an NO flow sensor against expected information from the NO flow sensor for a given flow rate. For example, when delivering NO at 10 ml / min, the nitric oxide delivery system analyzes the actual information from the NO flow sensor (e.g., as shown in plot 506 of FIG. 5C) against expected information from the NO flow sensor (e.g., as shown in plot 502 of FIG. 5A) to identify actual deviations. The nitric oxide delivery system can then determine that NO is being delivered into a high-frequency ventilated breathing circuit. The actual deviations can be identified, and because flow oscillations of less than 80 oscillations per minute are expected, the typical ventilator breathing rate is less than about 80 breaths per minute, but the high-frequency ventilated oscillations are hundreds of magnitude.

[0058] In accordance with the above-described embodiments, when the use of a high-frequency ventilator is detected, the systems and methods of the present invention can correct at least information generated by the high-frequency ventilator. For example, the nitric oxide delivery system can filter information indicative of high-frequency ventilator-generated oscillations or pressure oscillations from information from the NO flow rate. Filtering this high-frequency ventilator-generated information allows the nitric oxide delivery system to deliver the correct NO dosage to the patient.

[0059] In addition to the above-described variations, at least the above-described erroneous NO flow phenomena are sometimes observed at very low flow rates (e.g., less than 100 ml / min). Furthermore, at least the above-described phenomena appear to distort flow information to a sufficient degree that zero and / or negative flow rates occur. Problematically, very low flow rates are advantageous and / or necessary to deliver a predetermined dose of NO to a patient. Failure to detect and / or correct at least the above-described phenomena can sometimes result in a patient receiving a dose that is not the intended therapeutic dose and sometimes has adverse effects.

[0060] In exemplary embodiments, smaller variations may require the use of information from unidirectional and / or bidirectional flow sensors to correct, and / or larger variations may require the use of information from bidirectional flow sensors and / or additional techniques. Referring back to FIG. 5C , plot 506 shows variations for a predetermined flow rate of 10 ml / min, which is between 5 ml / min and 15 ml / min. In this example, detection and / or correction of erroneous NO flow rates is achieved with unidirectional and / or bidirectional flow sensors, e.g., flow rates do not fall below 0 ml / min. However, in exemplary embodiments, detection and / or correction of variations where the predetermined flow rate falls below 0 ml / min may be more complex and / or require a bidirectional flow sensor.

[0061] For example, referring to FIG. 6A, plot 606 shows a predetermined flow rate of 10 ml / min showing a variation of 15 ml / min (e.g., plot 606 varies between 25 ml / min and 5 ml / min), where the predetermined flow rate varies below 0 ml / min between points 608, 610. The negative area of ​​this plot 606 between points 608, 610 can be considered to indicate an erroneous NO flow rate in the reverse direction. Considering this flow rate is in the reverse direction, using bidirectional flow sensor information, plot 606 would appear as shown in FIG. 6A, but using unidirectional flow sensor information, plot 606 would appear as shown in FIG. 6B (e.g., no flow, 0 ml / min flow rate, etc.) and / or as shown in FIG. 6C (e.g., equal or opposite positive flow rates, positive valve to negative valve).

[0062] In an exemplary embodiment, the bi-directional flow sensor and / or information from the bi-directional flow sensor is used to detect and / or correct variations indicative of very low flow rates and / or flow rates below 0 ml / min. and / or used to correct information from the NO flow sensor that indicates that the high frequency ventilator is generating oscillations or pressure oscillations using any suitable technique, such as, but not limited to, any of the techniques disclosed herein.

[0063] Referring to Figures 6B-6C, in an exemplary embodiment, the unidirectional flow sensor and / or information from the unidirectional flow sensor can be used to detect and / or correct for variations indicative of very low flow rates and / or flow rates below 0 ml / min using any suitable technique, including, but not limited to, interpolation, curve fitting, and / or regression analysis, to name a few.

[0064] For example, to detect high frequency ventilator use using information from a unidirectional flow sensor and / or a unidirectional flow sensor, the systems and methods of the present invention analyze the actual information from the NO flow sensor against the expected information from the NO flow sensor for a given flow rate, and consider any variation above the expected information from the NO flow sensor. Using this technique, the systems and methods of the present invention detect high frequency ventilator use by considering any positive value above the expected information from the NO flow sensor using any suitable technique, such as, but not limited to, any of the techniques disclosed herein.

[0065] When detecting the use of a high-frequency ventilator using information from a unidirectional flow sensor and / or a unidirectional flow sensor according to the above-described embodiments, the systems and methods of the present invention can correct information indicative of high-frequency ventilator-generated oscillations or pressure oscillations using any appropriate technique, such as, but not limited to, any of the techniques disclosed herein. For example, for the region between points 608 and 610 of plot 606 (shown in FIG. 6B ), the systems and methods of the present invention can add missing plot information and correct for distortions using any appropriate technique, such as, but not limited to, any of the techniques disclosed herein. For other embodiments, for the region between points 608 and 610 of plot 606 (shown in FIG. 6C ), the systems and methods of the present invention can invert the values ​​(e.g., consider positive values ​​as negative values) and correct for distortions (e.g., apparent distortions and / or reversed distortions) using any appropriate technique, such as, but not limited to, any of the techniques disclosed herein.

[0066] Those skilled in the art will recognize that numerous adaptations and modifications may be readily made to form the therapeutic gas delivery system for delivering the pharmaceutical gas of the present invention, thereby improving the method and system for introducing a predetermined amount of pharmaceutical gas into a patient, all of which are within the scope of the present invention as defined in the following claims. Accordingly, the present invention is limited only by the following claims and their equivalents.

[0067] Throughout this specification, the terms "one embodiment," "an embodiment," "one or more embodiments," "exemplary embodiment," "exemplary embodiments," and / or "embodiments" refer to particular features, structures, materials, or characteristics described in connection with an embodiment having at least one embodiment of the invention. Thus, the appearances of phrases such as "in one or more embodiments," "in particular embodiments," and / or "in one embodiment" in various places throughout this specification do not necessarily refer to the same embodiment of the invention. Furthermore, particular features, structures, materials, or characteristics may be combined in any suitable manner in one or more embodiments.

[0068] It should be understood that any of the steps described may be rearranged, separated, and / or combined without departing from the scope of the present invention. For simplicity, steps are sometimes presented sequentially. This is merely for simplicity and is not intended to be limiting.

[0069] Furthermore, it should be understood that any elements and / or embodiments of the invention described may be rearranged, separated, and / or combined without departing from the scope of the invention. For simplicity, elements are sometimes described separately. This is merely for simplicity and is not intended to be limiting.

[0070] Although the present invention has been described in connection with particular embodiments, it is to be understood that these embodiments are merely illustrative of the principles and applications of the present invention. It will be apparent to those skilled in the art that various modifications and variations can be made to the method and apparatus of the present invention without departing from the scope of the invention. It is therefore intended that the present invention cover such modifications and variations provided they come within the scope of the appended claims and their equivalents.

Claims

1. 1. A nitric oxide delivery system for delivering therapeutic gas into the respiratory gas in the inspiratory limb of a breathing circuit of a patient fitted with a high frequency ventilator or ventilator technology that provides countercurrents and / or oscillations in inspiratory pressure or flow, comprising: The nitric oxide delivery system comprises: a nitric oxide gas source operable to provide nitric oxide gas; at least one control valve for providing the flow of nitric oxide gas; An injection module, the injection module comprising: an injector body having a first opening and a second opening configured to couple the injector module to an inspiratory limb of a breathing circuit thereby allowing breathing gases of a patient in the breathing circuit to flow through the first opening and the second opening; a therapeutic gas inlet in the injector body, the therapeutic gas inlet configured to receive the flow of nitric oxide gas and allow the nitric oxide gas to be infused into the injector module and then into a patient's breathing gas in the inspiratory limb of the breathing circuit; a conduit operable to provide a flow of nitric oxide gas from the nitric oxide gas source to the therapeutic gas inlet; at least one bidirectional NO flow sensor in fluid communication with the therapeutic gas inlet, the at least one bidirectional NO flow sensor capable of measuring forward and reverse flow through the therapeutic gas inlet; a second NO flow sensor in fluid communication with the therapeutic gas inlet; an injection module comprising: a control system in communication with the at least one bidirectional NO flow sensor to receive bidirectional flow information from the at least one bidirectional NO flow sensor, the bidirectional flow information including at least forward flow information and reverse flow information; Equipped with the control system is in communication with the second NO flow sensor; The control system receives second flow information from the second NO flow sensor and detects a leak when the bidirectional flow information and the second flow information do not match.

2. 10. The nitric oxide delivery system of claim 1, wherein the nitric oxide gas source is a cylinder that stores NO or an NO generator.

3. 3. The nitric oxide delivery system of claim 2, wherein the NO generator is operable to generate the nitric oxide gas by reaction of an NO-releasing agent with a reducing agent.

4. 4. The nitric oxide delivery system of claim 3, wherein the NO-releasing agent is nitrogen dioxide and the reducing agent is ascorbic acid.

5. 2. The nitric oxide delivery system of claim 1, wherein the control system is operable to use the flow rate information to ensure that a desired dose of NO is delivered into the infusion module and then into the patient's respiratory gas in the inspiratory limb of the breathing circuit.

6. 10. The nitric oxide delivery system of claim 1, wherein the control system is operable to use the flow rate information to ensure that a desired dose of NO is not under-delivered and / or under-dosed.

7. 10. The nitric oxide delivery system of claim 1, further comprising a check valve, the check valve being one or more of: (i) in fluid communication with the therapeutic gas inlet of the injection module; and (ii) integral with the injection module.

8. 10. The nitric oxide delivery system of claim 1, wherein the at least one bidirectional NO flow sensor is a thermal mass flow meter (thermal dispersion flow meter).

9. 10. The nitric oxide delivery system of claim 1, wherein the inspiratory limb is also the expiratory limb of the breathing circuit.

10. 10. The nitric oxide delivery system of claim 1, wherein the NO flow sensor is downstream of the control valve in the nitric oxide delivery system.

11. 10. The nitric oxide delivery system of claim 1, wherein the control valve is upstream of the NO flow sensor in the nitric oxide delivery system.

12. 10. The nitric oxide delivery system of claim 1, wherein the conduit has one or more of: (i) an inner cross-sectional diameter of about 1 / 32 inch to about 1 / 4 inch; and (ii) an inner portion inside the nitric oxide delivery system and an outer portion outside the nitric oxide delivery system, the inner portion of the conduit having a cross-sectional diameter substantially the same as the cross-sectional diameter of the outer portion of the conduit.

13. 10. The nitric oxide delivery system of claim 1, wherein the flow rate of the nitric oxide gas is increased when a leak is detected.

Citation Information

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