CA2789613A1 - Surgical humidifier control - Google Patents
Surgical humidifier control Download PDFInfo
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- CA2789613A1 CA2789613A1 CA2789613A CA2789613A CA2789613A1 CA 2789613 A1 CA2789613 A1 CA 2789613A1 CA 2789613 A CA2789613 A CA 2789613A CA 2789613 A CA2789613 A CA 2789613A CA 2789613 A1 CA2789613 A1 CA 2789613A1
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61M—DEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
- A61M13/00—Insufflators for therapeutic or disinfectant purposes, i.e. devices for blowing a gas, powder or vapour into the body
- A61M13/003—Blowing gases other than for carrying powders, e.g. for inflating, dilating or rinsing
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61M—DEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
- A61M16/00—Devices for influencing the respiratory system of patients by gas treatment, e.g. ventilators; Tracheal tubes
- A61M16/08—Bellows; Connecting tubes ; Water traps; Patient circuits
- A61M16/0816—Joints or connectors
- A61M16/0841—Joints or connectors for sampling
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61M—DEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
- A61M16/00—Devices for influencing the respiratory system of patients by gas treatment, e.g. ventilators; Tracheal tubes
- A61M16/10—Preparation of respiratory gases or vapours
- A61M16/1075—Preparation of respiratory gases or vapours by influencing the temperature
- A61M16/109—Preparation of respiratory gases or vapours by influencing the temperature the humidifying liquid or the beneficial agent
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61M—DEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
- A61M16/00—Devices for influencing the respiratory system of patients by gas treatment, e.g. ventilators; Tracheal tubes
- A61M16/10—Preparation of respiratory gases or vapours
- A61M16/1075—Preparation of respiratory gases or vapours by influencing the temperature
- A61M16/1095—Preparation of respiratory gases or vapours by influencing the temperature in the connecting tubes
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61M—DEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
- A61M16/00—Devices for influencing the respiratory system of patients by gas treatment, e.g. ventilators; Tracheal tubes
- A61M16/10—Preparation of respiratory gases or vapours
- A61M16/14—Preparation of respiratory gases or vapours by mixing different fluids, one of them being in a liquid phase
- A61M16/16—Devices to humidify the respiration air
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61M—DEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
- A61M16/00—Devices for influencing the respiratory system of patients by gas treatment, e.g. ventilators; Tracheal tubes
- A61M16/0003—Accessories therefor, e.g. sensors, vibrators, negative pressure
- A61M2016/003—Accessories therefor, e.g. sensors, vibrators, negative pressure with a flowmeter
- A61M2016/0033—Accessories therefor, e.g. sensors, vibrators, negative pressure with a flowmeter electrical
- A61M2016/0039—Accessories therefor, e.g. sensors, vibrators, negative pressure with a flowmeter electrical in the inspiratory circuit
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61M—DEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
- A61M2202/00—Special media to be introduced, removed or treated
- A61M2202/02—Gases
- A61M2202/0225—Carbon oxides, e.g. Carbon dioxide
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61M—DEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
- A61M2205/00—General characteristics of the apparatus
- A61M2205/33—Controlling, regulating or measuring
- A61M2205/3368—Temperature
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61M—DEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
- A61M2205/00—General characteristics of the apparatus
- A61M2205/50—General characteristics of the apparatus with microprocessors or computers
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61M—DEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
- A61M2205/00—General characteristics of the apparatus
- A61M2205/75—General characteristics of the apparatus with filters
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- Health & Medical Sciences (AREA)
- Engineering & Computer Science (AREA)
- Anesthesiology (AREA)
- Biomedical Technology (AREA)
- Heart & Thoracic Surgery (AREA)
- Hematology (AREA)
- Life Sciences & Earth Sciences (AREA)
- Animal Behavior & Ethology (AREA)
- General Health & Medical Sciences (AREA)
- Public Health (AREA)
- Veterinary Medicine (AREA)
- Accommodation For Nursing Or Treatment Tables (AREA)
- Air Humidification (AREA)
Abstract
Description
BACKGROUND
Field [0001] This disclosure relates generally to heating and humidifying gases, and more particularly to heating and humidifying insufflation gases for use in surgery.
Description of Related Art [0002]
Insufflation gases can be used in surgery for a variety of purposes. In open surgery, gas can be insuffiated into a body cavity for de-airing, as in cardiac surgery. In laparoscopic surgery, the abdominal wall can be distended using gas to provide room for instrument insertion and tissue dissection. The insufflation gas can be inert or non-toxic, such as air or carbon dioxide (CO2). Medical grade CO2 can be supplied in cylinders and delivered to a patient at room temperature (e.g., between about 19 and 21 degrees Celsius), with a relative humidity approaching 0%.
This gas is colder and drier than the environment inside the patient (e.g., about 37 degrees Celsius and a relative humidity of about 100%, respectively). Temperature and humidity of an insufflation gas can be adjusted to more closely approximate the environment inside the patient prior to delivery. Heating and humidifying the insufflation gas can decrease cellular damage or desiccation, limit adhesion formation, or reduce other deleterious effects.
SUMMARY
The humidifier can be configured to receive a temperature measurement from the chamber outlet temperature sensor, to receive a flow rate reading from the flow probe, to determine a chamber outlet temperature set point in response to the received flow rate reading, and to adjust the amount of electrical power to the heater plate based on a difference between the chamber outlet temperature set point and the temperature measurement.
BRIEF DESCRIPTION OF THE DRAWINGS
DETAILED DESCRIPTION
An effect of this continuous flow of cold, dry gas on the lining of the abdominal cavity can be significant, causing structural changes that may contribute to post-operative pain and scarring (e.g., adhesions).
The temperature of the gas can be maintained as it travels along a heated tube to an outlet port for delivery to the patient. The humidification system can monitor the temperature and flow rate of the gas at a chamber outlet, and control an amount of electrical power delivered to the heater plate to provide a gas having a desired temperature and humidity. Thus, surgical gas from a gas source (e.g., an insufflator, a gas bottle, or the like) can be humidified and heated and delivered to the patient, enabling the patient's peritoneum or other targeted area to remain moist and warm.
Example Surgical Humidification System [0029]
FIG. 1 illustrates an example surgical humidification system 100 for delivering temperature- and humidity-controlled gas to a patient 102, the surgical humidification system 100 having a humidifier 104 incorporating a humidifier control system 106. The humidifier 104 is connected to an insufflator 108 through an insufflator conduit 110. The humidifier 104 delivers humidified gas to the patient 102 through a patient conduit 112. The conduits 110, 112 can be made of flexible plastic tubing.
For example, the humidifier control system 106 can receive temperature information from the heater plate sensor 126 which it can use as an input to a control module used to control the power or temperature set point of the heater plate 122. The humidifier control system 106 can be provided with inputs of temperature and/or flow rates of the gases. For example, the chamber outlet temperature sensor 128 can be provided to indicate to the humidifier control system 106 the temperature of the humidified gas as it leaves the outlet 118 of the humidification chamber 116. The temperature of the gases exiting the chamber can be measured using any suitable temperature sensor 128, such as a wire-based temperature sensor. The chamber outlet flow probe 130 can be provided to indicate to the humidifier control system 106 the flow rate of the humidified gas. The flow rate of the gases through the chamber 116 can be measured using any suitable flow probe 130, such as a hot wire anemometer. In some embodiments, the temperature sensor 128 and flow probe 130 are in the same sensor housing. The temperature sensor 128 and flow probe 130 can be connected to the humidifier 104 via connector 132. Additional sensors may be incorporated into the surgical humidification system 100, for example, for sensing parameters at the patient end of the patient conduit 112.
Gases leaving the outlet 118 of the humidification chamber 116 can have a high relative humidity (e.g., about 100%). As the gases travel along the patient conduit 112 there is a chance that water vapor may condense on the conduit wall, reducing the water content of the gases. To reduce condensation of the gases within the conduit, the conduit heating wire 134 can be provided within, throughout, and/or around the patient conduit 112. Power can be supplied to the conduit heating wire 134 from the humidifier 104 and can be controlled through the humidifier control system 106. In some embodiments, the heating wire 134 is configured to maintain the temperature of the gas flowing through the patient conduit 112. In some embodiments, the conduit heating wire 134 can be configured to provide additional heating of the gas to elevate the gases temperature to maintain the humidity generated by the heated water bath in the humidifier 104.
Example Humidifier Control System [0035] FIG. 2 illustrates a block diagram of an example humidifier control system 106. The humidifier control system 106 can include hardware, software, and/or firmware components used to control the humidifier 104. The humidifier control system 106 can be configured to receive information from various sensors or systems, determine a mode of operation based at least in part on the received information, determine a heater plate set point based at least in part on the received information, and control the heater plate 122 to achieve a defined temperature and/or power output.
The humidifier control system 106 can include a control module 205, a heater plate feedback module 210, a chamber temperature feedback module 215, a controller 220, and data storage 225.
Components of the humidifier control system 106 can communicate with one another, with external systems, and with other components of the humidifier 104 over communication bus 230.
For example, the control module 205 can determine that the humidifier is in a high flow state in an open surgery setting when a flow rate exceeds a defined threshold for a defined duration. If the flow rate exceeds the flow rate threshold for the defined duration, the control module 205 can use the chamber temperature feedback module 215 with an input chamber set point to control the heater plate 122. As another example, if the flow rate is below a threshold, the control module 205 can determine to use the heater plate feedback module 210 with a heater plate temperature setting to control the heater plate 122. As another example, if the flow rate is determined to be above a threshold, the control module 205 can use the chamber temperature feedback module 215 to control the heater plate setting, wherein the control module 205 provides the chamber temperature feedback module 215 with a chamber set point corresponding to the flow rate. The received information used by the control module 205 can be used without any additional processing or the information can be processed prior to use. For example, the received information can represent instantaneous values or time-averaged values. The received information can be converted into different units, such as from a received voltage to a corresponding temperature.
For example, the temperature of the gases exiting the chamber 116 can drop if the flow rate of the gases entering and flowing through the chamber 116 increases. The increased flow rate can cause a larger volume of insufflation gas to pass through the chamber 116. The larger volume of gases can use more energy from the water vapor, hence leading to a temperature drop as the gases exit. A larger flow rate of gases can use a larger amount of water vapor for the gases to be humidified to a suitable level.
The humidifier control system 106 can be configured to compensate for the increased gas flow by increasing the power to the heater base in order to cause more water in the chamber 116 to evaporate such that the gases are humidified to a suitable level. The feedback modules 210 and 215 can be configured to avoid adding an undesirable amount of heat to the chamber 116 through the use of control loop feedback mechanisms, as described herein. This can reduce temperature overshoots which can be undesirable.
Variable Flow Rates [0044] FIG. 3 illustrates a flow chart of an example method 300 for controlling a humidifier to provide for a consistent output by accounting for changes in flow rate.
The humidifier 104 can adjust heater plate settings to account for changes in the flow rate which can cause inefficiencies in the humidification process. For example, at flow ranges typical in a laparoscopic procedure (e.g., between about 0 and 15 liters per minute (Lpm)), the efficiency of the humidifier 104 can vary across the flow range. In some embodiments, for a given water temperature inside the chamber 116, the output temperature and humidity of the gas will decrease as flow rate increases. The method 300 can be used to provide a consistent output humidity and/or temperature by controlling the heater plate such that an amount of power delivered to the heater plate 122 is based at least in part on the flow rate of the gas. For ease of description, the steps in the method 300 are described as being performed by the humidifier control system 106. However, any step or combination of steps in the method 300 can be performed by any component of the humidifier control system 106, any combination of components of the humidifier control system 106, or any component or combination of components of the humidifier 104 or surgical humidification system 100.
In some embodiments, the chamber temperature set point is an output of a discrete-valued function of the flow rate. In some embodiments, the chamber temperature set point is a function of the flow rate and other variables. By determining the chamber temperature set point based at least in part on the flow rate reading, the humidifier 104 can be configured to experience a slowed response to rapidly changing flows where fluctuations in flow result in little or no fluctuations in power output to the heater plate 122.
Temperature overshoots may happen in a case where the flow rate temporarily increases and the humidifier control system 106 responds to the increase by increasing the heater plate power. The humidifier 104 can be configured to reduce or eliminate temperature overshoots when a flow rate subsequently reduces by limiting an amount of added power at higher flows. Avoiding temperature overshoots can be desirable because cooling the water in the humidifier 104 can be difficult and/or time intensive.
As described above, the humidifier control system 106 can use a control loop feedback mechanism to determine a chamber temperature set point. The control loop feedback mechanism can accept as input the chamber temperature set point, the chamber temperature reading, and the heater plate power and output a new heater plate power setting based at least in part on a difference between the chamber temperature set point and the chamber temperature reading. The control loop feedback mechanism can incorporate current measurements in addition to previous measurements to improve or optimize control of the temperature and/or humidity of the gas.
Low Flow Rates [0050] FIG. 4 illustrates a flow chart of an example method 400 of controlling a humidifier 104 when a flow rate of the insufflation gas is relatively low (e.g., less than or equal to about 3 Lpm, less than or equal to about 2 Lpm, less than or equal to about 1 Lpm, or less than or equal to about 0.5 Lpm). The method 400 can compensate for difficulties in acquiring accurate temperature information in the chamber outlet 118 of the humidifier 104 arising from relatively small amounts of gas passing over the chamber outlet temperature sensor 128. The method 400 can use other sensors in addition to the chamber outlet temperature sensor 128 to control the humidifier 104 at relatively low flows or at flows where the chamber outlet temperature sensor 128 may provide temperature information that is less accurate than desired.
The humidifier control system 106 can determine a normal mode when the flow rate reading exceeds the defined threshold.
For example, if the heater plate temperature reading is less than the heater plate set point, power can be applied to the heater plate 122. If the heater plate temperature is greater than or equal to the heater plate set point, power can be removed from the heater plate 122. In some embodiments, the heater plate temperature set point can be at least about 36 degrees and/or less than or equal to about 60 degrees, at least about 36 degrees and/or less than or equal to about 50 degrees, at least about 36.5 degrees and/or less than or equal to about 40 degrees, or about 37 degrees.
Pre-Heat Mode [0056] FIG. 5 illustrates a flow chart of an example method 500 of controlling a humidifier in a pre-heat mode. In some surgical procedures, there can be a relatively long delay between a time at which the humidifier 104 is set up and a time that gas flow to the patient 102 commences. If the humidifier 104 is left off until gas flow starts, the humidifier 104 can output a low temperature until the humidifier 104 warms up.
If the humidifier 104 is left on until gas flow starts, the humidifier 104 can output a gas having an elevated temperature due at least in part to the chamber output temperature sensor 128 being unable to read the gas flow temperature when there is no gas flow.
The humidifier control system 106 can use the method 500 to determine a heater plate set point to power the heater plate 122 when the humidifier 104 is turned on, thereby enabling the humidifier to stay warm and ready for gas flow to start. For ease of description, the steps in the method 500 are described as being performed by the humidifier control system 106. However, any step or combination of steps in the method 500 can be performed by any component of the humidifier control system 106, any combination of components of the humidifier control system 106, or any component or combination of components of the humidifier 104 or surgical humidification system 100.
When the humidifier 104 is switched on in this partially set up state, the humidifier control system 106 can detect this and automatically enter the pre-heat mode. In the pre-heat mode, the humidifier control system 106 uses the heater plate temperature instead of the chamber outlet temperature to control power to the heater plate 122 to achieve a heater plate temperature set point. As such, the pre-heat mode allows the heater plate to receive power and to be switched on prior to commencement of the open or laparoscopic procedure to allow time for the chamber to warm up. Once the procedure is ready to commence, set up of the surgical humidification system 100 can be completed (e.g., connecting the patient conduit 112 from the patient 102 to the outlet port 118 and/or connecting the insuffiator conduit 110 from the insufflator 108 to the inlet port 114).
The humidifier control system can automatically detect the completed set up at which point the humidifier control system 106 can switch out of pre-heat mode and enter a normal run mode. In some embodiments, warm-up time is reduced to less than 10 minutes for both open and laparoscopic procedures when utilizing the pre-heat mode for about 5 minutes.
The pre-heat mode can be where the chamber 116 is coupled to the humidifier body 124 and the chamber contains a defined amount of water. The pre-heat mode can be where the chamber 116 is at least partially filled with water and is coupled to the humidifier body 124 and the insufflator conduit 110, the patient conduit 112, or both are disconnected from the chamber 116. In some embodiments, the pre-heat mode can be selected by a user using a user interface element.
Procedure Mode of Use [0061] FIG. 6 illustrates a flow chart of an example method 600 of controlling a humidifier to adjust control properties according to a mode of use. The humidifier 104 can be used in laparoscopic procedures, endoscopic procedures, open surgery, and the like. Open surgery can use a relatively high, constant flow rate (e.g., greater than about 15 Lpm) compared to laparoscopic surgery flow rates (e.g., varying between about 0 and =
15 Lpm). Differing control modes can be used for the different procedures due at least in part to this difference in consistency and magnitude of flow rates. The humidifier control system 106 can use the method 600 to detect which mode of use is being employed and change control algorithms accordingly. The humidifier control system 106 can detect an open surgery mode of use when the flow rate reading exceeds a defined threshold for a defined duration. The defined threshold and duration can be selected such that it is improbable that a laparoscopic procedure would use a flow rate exceeding the defined threshold for the defined duration.
In some embodiments, the high flow threshold is at least about 7 Lpm, at least about 10 Lpm, at least about 12 Lpm, at least about 15 Lpm, or at least about 20 Lpm. The timer can continue to run as long as the flow remains above the high flow threshold. If the flow reduces below the high flow threshold, the timer can be reset. The timer can restart if the flow rate reading once again exceeds the high flow threshold.
To reduce or avoid temperature overshoots that may occur after high flow periods during laparoscopic surgery, the chamber temperature set point can be reduced compared to the chamber temperature set point for open surgery. As a result, short periods of high flow in laparoscopic surgery may not result in the humidifier control system =
=
providing undesirable power to the heater plate that may result in temperature overshoots when the flow reduces again. However, for open surgery the humidifier control system 106 can be configured to automatically provide a desirable quantity of power to the heater plate 122 to sustain a desired temperature and/or humidity for the high flow rates used. In some embodiments, the chamber temperature set point is set to a value of at least about 36 degrees and/or less than or equal to about 60 degrees, at least about 36 degrees and/or less than or equal to about 50 degrees, at least about 36.5 degrees and/or less than or equal to about 40 degrees, at least about 36.5 degrees and/or less than or equal to about 37.5 degrees, or about 37 degrees. If after switching to the high flow mode the flow rate readings drop below the high flow threshold, the humidifier control system switches to a normal mode of operation and the timer can be reset. The normal mode of operation can be similar to the modes of operation described herein with reference to FIGs. 3 and 4.
Example of a Control System and Method [0067] FIGs. 7A-C illustrate a flow chart of an example method 700 for controlling a humidifier 104. The example method 700 incorporates elements from the example control methods described herein with reference to FIGs. 3-6. The example a method 700 illustrated in the flow charts in FIGs. 7A-C represents an example embodiment of a method 700 to be implemented in the humidifier control system 106 to control the humidifier 104.
In some embodiments, the humidifier control system 106 can determine an amount of power to apply to the heater plate 122 based at least in part on a difference between the set point and the measurement, where the amount of power is proportional to the difference (represented by the "(P)" in block 710). In some embodiments, the humidifier control system 106 determines the amount of power using a PID
controller.
In block 714, the humidifier control system 106 detects whether the humidifier remains in a pre-heat mode. If so, the humidifier control system 106 returns to block 706 to measure the heater plate temperature. If the humidifier control system detects that the humidifier 104 is in an on mode in block 702, it moves to block 716 to detect if the humidifier 104 warrants a warm-up mode.
FIG. 7B illustrates a second portion of the method 700 for controlling the humidifier 104. In block 720, the humidifier control system 106 detects flow rate readings from the flow probe 130. Based at least in part on the flow probe readings, the humidifier control system 106 enters a defined control state. In a first control state, identified in FIG. 7B as the "Zero Flow State," the humidifier control system 106 resets a timer in block 722, the timer corresponding to a high flow mode timer described with reference to FIG. 6. In block 724, the humidifier control system sets a heater plate temperature set point and in block 726 it measures a heater plate temperature.
In block 728 the humidifier control system 106 compares the heater plate temperature set point to the heater plate temperature measurement. If the measurement is less than the set point, the humidifier control system 106 applies power to the heater plate 122 in block 730. In some embodiments, the amount of power applied to the heater plate 122 is determined using a PID feedback controller (identified as "PID" in block 730).
If the measurement is greater than or equal to the set point, the humidifier control system 106 removes power from the heater plate 122 in block 732. The humidifier control system 106 then returns to block 720 to detect the flow rate.
the humidifier control system 106 resets a timer in block 734, the timer corresponding to a high flow mode timer described with reference to FIG. 6. In block 736, the humidifier control system sets a chamber outlet temperature set point (ChTs) and in block 738 it measures a chamber outlet temperature (ChTm). In block 740 the humidifier control system 106 compares the chamber outlet temperature set point to the chamber outlet temperature measurement. If the measurement is less than the set point, the humidifier control system 106 applies power to the heater plate 122 in block 742. In some embodiments, the amount of power applied to the heater plate 122 is determined using a PID feedback controller (identified as "PID" in block 742). If the measurement is greater than or equal to the set point, the humidifier control system 106 removes power from the heater plate 122 in block 744. The humidifier control system 106 then returns to block 720 to detect the flow rate.
the humidifier control system 106 follows the same sequence of events described for the "Low Flow State," except the chamber outlet temperature set point may be different, as described herein with reference to Table 1. Furthermore, as described herein, the "Med Flow State" and the "Low Flow State" can differ with regard to the conditions for entering the control states, as described herein with reference to FIG. 8.
illustrates flow charts for a fourth and fifth control state. The fourth control state is identified as "High 1 Flow State" in FIG. 7C. If the humidifier control system 106 enters the fourth control state in response to the flow rate readings, it checks whether the high flow timer has started in block 758. If the timer has already started, the humidifier control system 106 reads the timer in block 760. If the timer has not already started (e.g., it has been previously reset in other control states), the timer is started in block 762. The timer starts when a flow rate reading exceeds the high flow threshold, as described herein with reference to FIG. 6. If the timer is read and it has a value less than the duration threshold, the humidifier control system moves to block 764 to set a chamber outlet temperature set point. If the timer is greater than or equal to the duration threshold, the humidifier control system 106 changes control states in block 766, from "High 1 Flow State" to "High 2 Flow State." The "High 2 Flow State"
can correspond to a control state used in conjunction with open surgery, where flow rates are relatively constant and exceed the high flow threshold for times longer than the high flow duration. Upon changing the control state, the humidifier control system moves to block 764 to set a chamber outlet temperature set point. The chamber outlet temperature set points can be different for the different states, as described herein with reference to Table 1. Once the chamber outlet temperature set point is set, the humidifier control system 106 controls the heater plate 122 according to the methods described in the second and third control states corresponding to the "Low Flow State"
and the "Med Flow State" described with reference to FIG. 76. The humidifier control system 106 then returns to block 720 to receive a flow rate reading.
If the flow rate drops below flow F6 while in the "High 1 Flow State" 808 or if the control module 205 is in the "High 1 Flow State" 808 for a time that exceeds time LT, the control module 205 moves to the "Zero Flow State" 802 or the "High 2 Flow State" 810, respectively. In some embodiments, the flow F6 can be about 4.5 Lpm. In some embodiments, the time ti can be about 3 minutes. If the flow rate drops below flow F7 while in the "High 2 Flow State" 810, the control module 205 moves to the "Zero Flow State" 802. In some embodiments, the flow F7 can be about 7 Lpm.
802.
As described herein, the heater plate feedback module 210 uses a heater plate temperature set point and a heater plate temperature reading to control power to the heater plate 122. In some embodiments, the control module 205 controls the humidifier 104 through the chamber temperature feedback module 215 when in any state besides the "Zero Flow State" 802. As described herein, the chamber temperature feedback module 215 uses a chamber outlet temperature set point and a chamber outlet temperature reading to control power to the heater plate 122.
When the humidifier control system 106 is in the "Low Flow State," the "Med Flow State," the "High 1 Flow State," or the "High 2 Flow State" the humidifier control system 106 can use PID feedback control to achieve a chamber set point corresponding to a temperature Ti, T2, T3, or T4, respectively. In some embodiments, the chamber outlet temperature set points Ti, T2, T3, and T4 are about 37 degrees, about 35 degrees, about 33 degrees, and about 37 degrees, respectively. The "High 2 Flow State"
can be used in conjunction with open surgery and the other control states can be used in conjunction with laparoscopic procedures, for example.
Table 1 Chamber Heater Plate Therapy Setpoint Zero Flow State No set point Fixed heater plate temperature Laparoscopic TO
Low Flow State Temperature Ti PID feedback controlled heater Med Flow State Temperature T2 plate to achieve set point High 1 Flow State Temperature T3 High 2 Flow State Temperature T4 Open surgery [0077] Examples of humidifier control systems and associated components and methods have been described with reference to the figures. The figures show various systems and modules and connections between them. The various modules and systems can be combined in various configurations and connections between the various modules and systems can represent physical or logical links. The representations in the figures have been presented to clearly illustrate principles controlling a surgical humidifier, and details regarding divisions of modules or systems have been provided for ease of description rather than attempting to delineate separate physical embodiments.
The examples and figures are intended to illustrate and not to limit the scope of the inventions described herein. For example, the principles herein may be applied to a surgical humidifier as well as other types of humidification systems, including respiratory humidifiers. The principles herein may be applied in laparoscopic surgery or open surgery as well as in other scenarios, such as endoscopic procedures and/or other minimally invasive surgical procedures.
processor, a Power PC processor, AMDC) processor, or an ALPHA processor. In addition, the controller 220 can be any conventional special purpose microprocessor such as a digital signal processor. The various illustrative logical blocks, modules, and circuits described in connection with the embodiments disclosed herein can be implemented or performed with a general purpose processor, a digital signal processor (DSP), an application specific integrated circuit (ASIC), a field programmable gate array (FPGA), or other programmable logic device, discrete gate or transistor logic, discrete hardware components, or any combination thereof designed to perform the functions described herein. A general purpose processor, such as controller 220, can be a conventional microprocessor, but the controller 220 can also be any conventional processor, controller, microcontroller, or state machine. Controller 220 can also be implemented as a combination of computing devices, e.g., a combination of a DSP and a microprocessor, a plurality of microprocessors, one or more microprocessors in conjunction with a DSP
core, or any other such configuration.
Data storage can also refer to fast semiconductor storage (chips), for example, Random Access Memory (RAM) or various forms of Read Only Memory (ROM), which are directly connected to the communication bus or one or more processors of the humidifier control system 106. Other types of memory include bubble memory and core memory. Data storage can be physical hardware configured to store information in a non-transitory medium.
however, the order of description should not be construed to imply that these operations are order dependent. Additionally, the structures described herein can be embodied as integrated components or as separate components. For purposes of comparing various embodiments, certain aspects and advantages of these embodiments are described. Not necessarily all such aspects or advantages are achieved by any particular embodiment.
Thus, for example, various embodiments can be carried out in a manner that achieves or optimizes one advantage or group of advantages as taught herein without necessarily achieving other aspects or advantages as can also be taught or suggested herein.
"could," "might," "may," "e.g.," and the like, unless specifically stated otherwise, or otherwise understood within the context as used, is generally intended to convey that certain embodiments include, while other embodiments do not include, certain features, elements and/or states. Thus, such conditional language is not generally intended to imply that features, elements and/or states are in any way required for one or more embodiments. As used herein, the terms "comprises," "comprising," "includes,"
"including," "has," "having" or any other variation thereof, are intended to cover a non-exclusive inclusion. For example, a process, method, article, or apparatus that comprises a list of elements is not necessarily limited to only those elements but may include other elements not expressly listed or inherent to such process, method, article, or apparatus.
Also, the term "or" is used in its inclusive sense (and not in its exclusive sense) so that when used, for example, to connect a list of elements, the term "or" means one, some, or all of the elements in the list. Conjunctive language such as the phrase "at least one of X, Y and Z," unless specifically stated otherwise, is otherwise understood with the context as used in general to convey that an item, term, etc. may be either X, Y or Z.
Thus, such conjunctive language is not generally intended to imply that certain embodiments require at least one of X, at least one of Y and at least one of Z
each to be present.
Software instructions may be embedded in firmware, such as an erasable programmable read-only memory (EPROM). It will be further appreciated that hardware modules may comprise connected logic units, such as gates and flip-flops, and/or may be comprised of programmable units, such as programmable gate arrays, application specific integrated circuits, and/or processors. The modules described herein can be implemented as software modules, but also may be represented in hardware and/or firmware.
Moreover, although in some embodiments a module may be separately compiled, in other embodiments a module may represent a subset of instructions of a separately compiled program, and may not have an interface available to other logical program units.
Claims (27)
receiving a flow rate reading from a flow sensor configured to sense a flow rate of an insufflation gas exiting a chamber of the surgical humidifier;
determining a power requirement corresponding to the received flow rate reading, wherein the power requirement is one of a plurality of set points which correspond to ranges of flow rates;
providing electrical energy to a heater plate in the surgical humidifier according to the power requirement.
receiving a flow rate reading from a flow probe configured to sense a flow rate of an insufflation gas exiting a chamber of the surgical humidifier;
selecting a low flow mode based on the flow rate reading wherein the low flow mode is selected when the received flow rate reading is less than a low flow threshold;
providing electrical energy to a heater plate in the surgical humidifier to achieve a defined temperature set point corresponding to the low flow mode.
detecting a pre-heat mode;
determining a heater plate temperature set point;
receiving a heater plate temperature reading from a heater plate sensor;
and providing electrical energy to a heater plate in the surgical humidifier to achieve the heater plate temperature set point.
sensing a chamber connected to the surgical humidifier, the chamber having an inlet port; and sensing the inlet port disconnected from an insufflator conduit.
sensing a chamber connected to the surgical humidifier, the chamber having an outlet port; and sensing the inlet port disconnected from a patient conduit.
receiving a flow rate reading from a flow probe configured to sense a flow rate of an insufflation gas exiting a chamber of the surgical humidifier;
starting a timer when the flow rate reading exceeds a flow rate threshold;
switching to a high flow mode when the flow rate exceeds the flow rate threshold for a defined duration; and providing electrical energy to a heater plate in the surgical humidifier to achieve a chamber outlet temperature set point corresponding to the high flow mode.
a humidifier body;
a chamber configured to removably engageable with the humidifier body and hold a volume of water, the chamber comprising:
an inlet port configured to receive an insufflation gas from an insufflator conduit; and an outlet port configured to direct a humidified insufflation gas to a patient conduit;
a chamber outlet temperature sensor configured to measure a temperature of the humidified insufflation gas;
a flow probe configured to measure a flow rate of the humidified insufflation gas;
a heater plate coupled to the humidifier body and configured to deliver heat to the chamber; and a humidifier control system electrically coupled to the heater plate, the humidifier control system being configured to control an amount of electrical power to the heater plate;
wherein the humidifier control system is configured to receive a temperature measurement from the chamber outlet temperature sensor, to receive a flow rate reading from the flow probe, to determine a chamber outlet temperature set point in response to the received flow rate reading, and to adjust the amount of electrical power to the heater plate based on a difference between the chamber outlet temperature set point and the temperature measurement.
Priority Applications (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CA2789613A CA2789613C (en) | 2012-09-12 | 2012-09-12 | Surgical humidifier control |
| CA3126584A CA3126584A1 (en) | 2012-09-12 | 2012-09-12 | Surgical humidifier control |
Applications Claiming Priority (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CA2789613A CA2789613C (en) | 2012-09-12 | 2012-09-12 | Surgical humidifier control |
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| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| CA3126584A Division CA3126584A1 (en) | 2012-09-12 | 2012-09-12 | Surgical humidifier control |
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| CA2789613A1 true CA2789613A1 (en) | 2014-03-12 |
| CA2789613C CA2789613C (en) | 2023-03-28 |
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| CA2789613A Active CA2789613C (en) | 2012-09-12 | 2012-09-12 | Surgical humidifier control |
| CA3126584A Pending CA3126584A1 (en) | 2012-09-12 | 2012-09-12 | Surgical humidifier control |
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| Application Number | Title | Priority Date | Filing Date |
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| CA3126584A Pending CA3126584A1 (en) | 2012-09-12 | 2012-09-12 | Surgical humidifier control |
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| WO2015160268A1 (en) | 2014-04-16 | 2015-10-22 | Fisher & Paykel Healthcare Limited | Methods and systems for delivering gas to a patient |
| CN114569845A (en) * | 2016-09-16 | 2022-06-03 | 菲舍尔和佩克尔保健有限公司 | Thermistor flow sensor with multiple temperature points |
| CN117128589A (en) * | 2023-10-26 | 2023-11-28 | 深圳市华图测控系统有限公司 | Low-power consumption control method and system of intelligent humidifier system |
-
2012
- 2012-09-12 CA CA2789613A patent/CA2789613C/en active Active
- 2012-09-12 CA CA3126584A patent/CA3126584A1/en active Pending
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Also Published As
| Publication number | Publication date |
|---|---|
| CA2789613C (en) | 2023-03-28 |
| CA3126584A1 (en) | 2014-03-12 |
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