Apparatus for measuring properties of gases supplied to a patient

Information

  • Patent Grant
  • 11911564
  • Patent Number
    11,911,564
  • Date Filed
    Monday, April 26, 2021
    3 years ago
  • Date Issued
    Tuesday, February 27, 2024
    8 months ago
Abstract
The gases temperature supplied to a patient when the patient is undergoing treatment such as oxygen therapy or positive pressure treatment for conditions such as Obstructive Sleep Apnea (OSA) or Chronic Obstructive Pulmonary Disease (COPD) is often measured for safety and to enable controlling of the humidity delivered to the patient. The invention disclosed is related to measurement of properties, particularly temperature (thermistor), of gases flowing through a heated tube, supplying gases to a patient, which utilises the heating wire within the tube.
Description
INCORPORATION BY REFERENCE TO ANY PRIORITY APPLICATIONS

Any and all applications for which a foreign or domestic priority claim is identified in the Application Data Sheet as filed with the present application are hereby incorporated by reference under 37 CFR 1.57.


BACKGROUND
Field

This invention relates to an apparatus for measuring properties, such as temperature and humidity, of gases being supplied to a patient. Humidifiers are commonly controlled by measuring the temperature of gas at two points, adjacent to the output of the humidifier and proximal to the patient. This invention predominantly relates to the measurement of temperature of gas supplied to a patient at a point proximal to the patient.


Description of the Related Art

The gases temperature supplied to a patient when the patient is undergoing treatment such as oxygen therapy or positive pressure treatment for conditions such as Obstructive Sleep Apnea (OSA) or Chronic Obstructive Pulmonary Disease (COPD) is often measured for safety and to enable controlling of the humidity delivered to the patient. Measurement of temperature near the patient is commonly performed using a probe inserted into the breathing tube, such as that of Fisher & Paykel Healthcare Limited, U.S. Pat. Nos. 6,272,933 and 6,584,972. Such a temperature probe is connected to the humidifier through a cable that runs external to the breathing circuit This approach has some drawbacks. In particular, the user must correctly install the temperature probe. If the probe is not correctly installed then the humidification system may malfunction which may increase risk to the patient. Existing end of breathing tube sensors require sensor wires to be run down the outside of the breathing tube. This lowers reliability of the sensors due to the vulnerability of these wires. Alternatively, if these wires are run down the inside of the breathing tube there would be an increase of the resistance to airflow and the hygiene of the breathing circuit would be lowered.


SUMMARY

It is an object of the present invention to provide a method of measuring properties of gases supplied to a patient that goes some way to overcoming the abovementioned disadvantages in the prior art or which will at least provide the industry with a useful choice.


Accordingly in a first aspect the present invention consists in an apparatus for measuring properties of gases being supplied to a patient comprising:


a gases supply,


at least one delivery conduit including a heater wire for heating said conduit,


wherein said heater wire is utilised in an electrical circuit to determine said properties of said gases.


Preferably said electrical circuit is connected in series with said heater wire and provides a measurement or enables a calculation of an indication of at least one of temperature, humidity, pressure and composition of said gases.


Preferably said electrical circuit is mounted and sealed on a printed circuit board that at least partially extends into the gases supplied to said patient through said at least one delivery conduit.


Preferably said electrical circuit is at least partially moulded into the wall of said delivery conduit.


Preferably said electrical circuit includes a sensing means with known properties at ambient temperature such that said sensing means can be matched with said at least one delivery conduit.


Preferably said sensing means is a temperature sensor.


Preferably said electrical circuit includes at least one measuring means in series with said heater wire.


Preferably said at least measuring means is a temperature measuring means.


Preferably said temperature measuring means includes a thermistor and diode in parallel and a reference resistor.


Preferably said thermistor and said diode are located at the end of said delivery conduit near to said patient and said reference resistor is included in said gases supply means.


Preferably said gases supply means includes a device to supply gas flow, such as a blower, and a humidifier to humidify said gases from said blower.


Preferably said gases supply means is a humidifier.


Preferably said electrical circuit includes a gases property measuring means.


Preferably said gases property measuring means includes at least one of a sensor, band pass filter or thermistor and at least one reference resistor.


Preferably said at least one of a sensor, band pass filter or thermistor are located at the end of said delivery conduit near to said patient and said at least one reference resistor and at least one band pass filter is included in said gases supply means.


The invention consists in the foregoing and also envisages constructions of which the following gives examples.





BRIEF DESCRIPTION OF THE DRAWINGS

Preferred forms of the present invention will now be described with reference to the accompanying drawings.



FIG. 1 is an illustration of a respiratory humidifier system that may be used with the method of the present invention of measuring temperature of gases supplied to a patient.



FIG. 2 is a circuit diagram of the electronics enabling the measurement of the temperature of gases to a patient, where the circuit is utilised when the system of the present invention is utilising DC heating and measuring voltages.



FIG. 3 is a circuit diagram of the electronics enabling the measurement of the temperature of gases to a patient, where the circuit is utilised when the system of the present invention is utilising DC or AC voltages for the heating and signal voltages.



FIG. 4 is a cut away of a conduit including a circuit of the present invention on a printed circuit board and residing with the conduit in the area of gases flow.





DETAILED DESCRIPTION

The present invention seeks to measure various properties, for example temperature or humidity, at the end of a gas delivery tube or conduit using sensors mounted on a wire, such as a wire used for heating the gases flow through the tube or conduit, where the wire resides within the delivery tube or conduit. A heated tube with a heating wire such as that described in Fisher & Paykel Healthcare Limited U.S. Pat. No. 6,078,730 or any other similar tube and heating wire could be utilised with the present invention.


Referring to FIG. 1 a ventilation and humidifying system as might be used with the present invention is shown. A patient 13 is receiving humidified and pressurised gases through a nasal cannula 12 connected to a humidified gases transportation pathway or inspiratory conduit 3 that in turn is connected to a humidifier 8 (including humidification chamber 5) supplied with gases from a blower 15 or other appropriate gases supply means.


The inspiratory conduit 3 is connected to the outlet 4 of the humidification chamber 5 that contains a volume of water 6. The humidification chamber 5 is preferably formed from a plastics material and may have a highly heat conductive base (for example an aluminium base) that is in direct contact with a heater plate 7 of humidifier 8. The humidifier 8 is provided with control means or an electronic controller 9 that may comprise a microprocessor based controller executing computer software commands stored in associated memory. Gases flowing through the inspiratory conduit 3 are passed to the patient by way of the nasal cannula 12, but may also be passed to the patient by way of other patient interfaces such as a nasal or full face mask.


The controller 9 receives input from sources such as user input means or dial 10 through which a user of the device may, for example, set a predetermined required value (preset value) of humidity or temperature of the gases supplied to patient 13. In response to the user set humidity or temperature value input via dial 10 and other possible inputs such as internal sensors that sense gases flow or temperature, or by parameters calculated in the controller, controller 9 determines when (or to what level) to energise heater plate 7 to heat the water 6 within humidification chamber 5. As the volume of water 6 within humidification chamber 5 is heated, water vapour begins to fill the volume of the chamber above the surface of the water and is passed out of the humidification chamber 5 outlet 4 with the flow of gases (for example air) provided from a gases supply means or blower 15 which enters the humidification chamber 5 through inlet 16.


The blower 15 may be provided with a variable speed pump or fan 2 which draws air or other gases through the blower inlet 17. The speed of the variable speed pump or fan 2 maybe controlled by a further control means or electronic controller 18 which responds either to inputs from controller 9 or to user-set predetermined required values (preset values) of pressure or fan speed, via dial 19. Alternatively, the function of this controller 18 can be combined with the other controller 9.


A heating element or wire 11 is preferably provided within, around and throughout the conduit or tubing 3 to help prevent condensation of the humidified gases within the conduit. Such condensation is due to the temperature of the walls of the conduit being close to the ambient temperature, (being the temperature of the surrounding atmosphere) which is usually lower than the temperature of the humidified gases within the conduit. The heater element effectively replaces the energy lost from the gases through conduction and convection during transit through the conduit. Thus the conduit heater element ensures the gases delivered are at an optimal temperature and humidity.


Such a heater wire is commonly driven either with direct current (DC) or alternating current (AC) and in both cases the heating voltage is usually switched on and off to control the power applied to the heating element. In the present invention the heating element 11, which is most preferably a wire, is used along with an electronic circuit to determine properties of the gases supplied to the patient. The circuit (20 or 40 in FIGS. 2 and 3) is preferably connected in series with the heater wire 11. The circuit may be on a printed circuit board, or wired within a housing that may be a plastic moulding in the gases flow, or a circuit board that is at least partially moulded within the wall of the conduit or tubing 3. The properties that may be measured include temperature, pressure, gas composition and humidity. Two embodiments of the present invention are described below, one that operates using only a DC heating voltage and the other that can operate with a DC or AC heating voltage.


DC Heating Voltage



FIG. 2 shows a circuit 20 that may be utilised for carrying out the method of measuring temperature of the present invention. When a DC heating voltage 25 is applied to the heater wire the diode 22 conducts and current flows through the heater wire 21, 28 and the heater wire functions as normal and provides heating to the delivery tube 3. When the heating voltage 25 is switched off using switch 29, a measurement voltage 26, which has opposite polarity to the heating voltage 25 is applied to the heater wire. In this case, the current in the heater wire 21, 28 does not flow through the diode 22 but flows through the thermistor 23 and through a reference resistor 24. The voltage across the reference resistor 24 can then be measured at the output 27 and the temperature of the gases determined. The voltage measurement 27 across the reference resistor, 24, is converted to a temperature using a look up table or an equation to calculate a value for temperature. This is similar to a commonly used technique where the thermistor 23 forms a potential divider with the reference resistor 24.


More generally, the thermistor may be replaced by an impedance (for example, a resistor and a capacitive sensor) for pressure or humidity measurement. Either the impedance can be measured by measuring the voltage across the reference resistor 24 or the rise-time could be determined by looking at the voltage across the reference resistor 24 in time.


Part of the circuit 20 would be included in the delivery conduit 3 and in particular the diode 22 and thermistor 23 (in parallel with one another) are preferably placed in series with the heater wire 21, 28 at a point in the heater wire at or near the end 30 (nearest the user 13, see FIGS. 1, 2 and 4) of the delivery tube 3, for example they may be interconnected on a printed circuit board, overmoulded with plastic for sealing and mounted in the gases stream through the delivery conduit as shown in FIG. 4. Furthermore, the circuit may be formed by interconnected parts in a housing, for example, a plastic housing, that protrudes from the plastic wall of the delivery tube into the gases flow through the conduit, in order to measure that gases properties. All other parts of the circuit 20 including the reference resistor 24 and the switching circuitry 29 would be included in the control circuitry of the humidifier 8.


The thermistor's value can be chosen to have different resistance curves with known properties at ambient temperature. The choice of a particular thermistor value for use with the circuit allows identification by the control system of the present invention and matching of that thermistor value with a specific conduit or tubing 3. Such that different thermistor values can be matched with a particular and appropriate conduit types and upon connection of the conduit to a humidifier or blower device, the control system can identify that thermistor and apply the appropriate control strategy to the heating of the conduit.


AC or DC Heating Voltage


The circuit shown in FIG. 2 is intended to be used when a DC heating voltage is used in conjunction with the heater wire, delivery conduit and system as shown in FIG. 1. An alternative embodiment of a circuit 40 that would provide measurement of the gases properties, such as temperature and is suitable for AC and DC voltages, is shown in FIG. 3. A number of voltage signals 51, 52, 53, which are at different frequencies, are added together at an adder 50. These signals include at least one heating signal 51 and at least one measuring signal 53. The combination of these signals passes down the heater wire 44, creating currents (heating and measuring) in the heater wire 44. A number of parallel paths are established 41, 43, 45 each containing a filter (for example, as shown in FIG. 3, one low pass filter 41 and three band pass filters 43, 45, 48) that each pass a different frequency range. These parallel paths (that is, filters, thermistors and/or sensors) are preferably located at the end 30 of the delivery tube 3, in a similar manner as described in relation to FIG. 2. The parallel paths allow the heating current to be passed through a different path to the measurement currents. It also allows multiple measurement signals to be passed through the heater wire so that different properties of the gases (e.g. temperature, pressure, humidity, composition) may be measured.


The heating and measurement currents return through the heater wire 46 and can be filtered through a number of measurement filters 47, 49, 57 in parallel that pass frequency bands that correspond to the filters, 41, 43, 45 located at the end 30 of the tube 3. The heating current takes a different path than the measurement currents. The measurement currents each take a different path depending on their frequency and this allows each measurement current to be measured by passing it through a reference resistor 48, 54 or similar. Again a look up table or equation may be used to convert the voltage across the reference resistor 48, 54 to, for example, a temperature. In the preferred embodiment of the present invention the measurement filters 47, 49, 57 would be included in the humidifier 8 control circuitry.


In a further embodiment one or more of the sensing elements 55, 56 at the end 30 of the delivery tube 3 could be replaced by a fixed impedance to allow identification of the tube so that different control algorithms can be used for different conduits or tubes.



FIG. 4 shows a cutaway view of a conduit 3 with a printed circuit board 60 housing the parts to one of the circuits of the present invention described above with reference to FIG. 2 or 3. The circuit board 60 is connected to the heating wires 21, 28 and as such is positioned within the conduit 3. In this manner, the thermistor 23 included on the board 60 is exposed to the gases flowing through the conduit 3 and can provide measurements of the properties of the gases.


The circuits and method of the present invention can be applied to a number of applications of these technologies for humidification and breathing circuit products. For example, the measurement of the temperature or humidity at the end of the delivery tube (or in a patient interface, for example, nasal cannula or mask) can be used to better control the humidifier, such that a more accurate temperature of gases can be supplied to the patient, providing optimal patient comfort and therapy. Additionally, other gases properties may be measured, such as the gases pressure or gas composition near the patient.


The apparatus of the present invention eliminates the need for external wires for sensing gases properties, as is required by the prior art. Furthermore the apparatus of the present invention only uses two pins or contacts (as opposed to four pins as used in current heated tube implementations). This means the system of the present invention is likely to be more reliable as the contacts/pins are likely to be less prone to breakage. The utilisation of the heater wire for measuring gases properties may also reduce the cost of the breathing tube 3 and associated parts, especially if the breathing tube is to be disposable.

Claims
  • 1. An apparatus for measuring properties of gases supplied to a patient, the apparatus comprising: a gases supply for providing a flow of gases; anda delivery conduit configured to convey the flow of gases to the patient, the delivery conduit comprising:a first end configured to be in fluid communication with the gases supply;a second end opposite the first end, wherein gases are conveyed to the patient through the second end from the first end;a heater wire configured to heat the delivery conduit, the heater wire extending along the delivery conduit; anda humidity sensor positioned in the delivery conduit to be within the flow of gases, the humidity sensor proximate to the second end relative to the first end of the delivery conduit, the humidity sensor configured to measure humidity of gases flowing through the delivery conduit and provide a humidity measurement;a controller configured to receive the humidity measurement and control heating of the heater wire based on the humidity measurement, the controller configured to apply power to the heater wire to control humidity of gases flowing through the delivery conduit; anda circuit board positioned at or near a middle of a lumen formed by a wall of the delivery conduit, the circuit board comprising the humidity sensor, the flow of gases conveyed in the lumen of the delivery conduit.
  • 2. The apparatus of claim 1, wherein the controller is further configured to determine a level of power to apply to the heater wire based on a set humidity value.
  • 3. The apparatus of claim 2, wherein the set humidity value is set by the patient.
  • 4. The apparatus of claim 1, wherein the controller is further configured to apply power to the heater wire to prevent condensation of gases flowing through delivery conduit.
  • 5. The apparatus of claim 1, wherein the humidity sensor is arranged in series with the heater wire.
  • 6. The apparatus of claim 1, wherein the circuit board is connected to the heater wire.
  • 7. The apparatus of claim 1, further comprising a humidifier configured to humidify the flow of gases, the humidifier in fluid communication with the delivery conduit for conveying humidified flow of gases to the patient, wherein the gases supply is configured to supply the flow of gases to the humidifier.
  • 8. The apparatus of claim 1, wherein the delivery conduit further comprises a housing extending into the delivery conduit, wherein the humidity sensor is disposed at least partially within the housing.
  • 9. The apparatus of claim 1, wherein the delivery conduit further comprises a temperature sensor positioned in the delivery conduit to be within the flow of gases, the temperature sensor proximate to the second end relative to the first end of the delivery conduit, the temperature sensor configured to measure temperatures of gases flowing to the patient through the second end of the delivery conduit and provide a temperature measurement.
  • 10. The apparatus of claim 9, wherein the controller is further configured to receive the temperature measurement and control heating of the heater wire based on the temperature measurement, the controller configured to apply power to the heater wire to control temperature of gases flowing through the delivery conduit.
  • 11. The apparatus of claim 9, wherein the temperature sensor comprises a thermistor.
  • 12. The apparatus of claim 11, wherein the thermistor comprises a known resistance value at ambient temperature.
  • 13. The apparatus of claim 9, wherein the delivery conduit further comprises a diode in parallel electrical arrangement with the temperature sensor.
  • 14. The apparatus of claim 9, wherein the temperature sensor comprises a resistor or a capacitive sensor.
  • 15. The apparatus of claim 1, wherein the humidity sensor comprises a resistor or a capacitive sensor.
  • 16. The apparatus of claim 1, wherein the humidity sensor is configured to provide a measurement signal based on the humidity measurement, wherein the measurement signal is provided to the controller through the heater wire.
  • 17. The apparatus of claim 1, wherein the delivery conduit is configured to be removably connected to the gases supply.
  • 18. A delivery conduit for supplying gases, the delivery conduit comprising: a first end configured to be in fluid communication with a gases supply;a second end opposite the first end, wherein gases are conveyed through the second end from the first end;a heater wire configured to heat the delivery conduit, the heater wire extending along the delivery conduit;a humidity sensor positioned in the delivery conduit to be within a flow of gases conveyed through the second end from the first end, the humidity sensor proximate to the second end relative to the first end, the humidity sensor configured to measure humidity of gases flowing through the delivery conduit and provide a humidity measurement; anda circuit board positioned at or near a middle of a lumen formed by a wall of the delivery conduit, the circuit board comprising the humidity sensor, the flow of gases conveyed in the lumen of the delivery conduit.
  • 19. The delivery conduit of claim 18, wherein the humidity sensor is arranged in series with the heater wire.
  • 20. The delivery conduit of claim 18, wherein the circuit board is connected to the heater wire.
  • 21. The delivery conduit of claim 18, further comprising a housing extending into the delivery conduit, wherein the humidity sensor is disposed at least partially within the housing.
  • 22. The delivery conduit of claim 18, further comprising a temperature sensor positioned in the delivery conduit to be within the flow of gases, the temperature sensor proximate to the second end relative to the first end of the delivery conduit, the temperature sensor configured to measure temperatures of gases flowing to the patient through the second end of the delivery conduit and provide a temperature measurement.
  • 23. The delivery conduit of claim 22, wherein the temperature sensor comprises a thermistor.
  • 24. The delivery conduit of claim 23, wherein the thermistor comprises a known resistance value at ambient temperature, wherein the known resistance value provides an identification of the delivery conduit to allow for identification of the delivery conduit from a plurality of different types of conduits.
  • 25. The delivery conduit of claim 22, further comprising a diode in parallel electrical arrangement with the temperature sensor.
  • 26. The delivery conduit of claim 22, wherein the temperature sensor comprises a resistor or a capacitive sensor.
  • 27. The delivery conduit of claim 18, wherein the humidity sensor comprises a resistor or a capacitive sensor.
Priority Claims (1)
Number Date Country Kind
534853 Aug 2004 NZ national
US Referenced Citations (251)
Number Name Date Kind
485127 Lynch Oct 1892 A
3243753 Kohler Mar 1966 A
3582968 Buiting Jun 1971 A
3584193 Badertscher Jun 1971 A
3638926 Melville et al. Feb 1972 A
3695267 Hirtz et al. Oct 1972 A
3766914 Jacobs Oct 1973 A
3823217 Kampe Jul 1974 A
3903883 Pecina et al. Sep 1975 A
3913379 Rusz et al. Oct 1975 A
3914349 Stipanuk Oct 1975 A
4013122 Long Mar 1977 A
4013742 Lang Mar 1977 A
4038980 Fodor Aug 1977 A
4050823 Frankenberger Sep 1977 A
4051205 Grant Sep 1977 A
4060576 Grant Nov 1977 A
4110419 Miller Aug 1978 A
4152379 Suhr May 1979 A
4162370 Dunn et al. Jul 1979 A
4172105 Miller et al. Oct 1979 A
D253409 Voelkert Nov 1979 S
4177376 Horsma et al. Dec 1979 A
4203027 O'Hare et al. May 1980 A
4459473 Kamath Jul 1984 A
4500480 Cambio. , Jr. Feb 1985 A
4529867 Velnosky et al. Jul 1985 A
4532088 Miller Jul 1985 A
4543474 Horsma et al. Sep 1985 A
4560498 Horsma et al. Dec 1985 A
4574188 Midgley et al. Mar 1986 A
4621632 Bartels et al. Nov 1986 A
4639055 Keane Jan 1987 A
4640804 Mizoguchi Feb 1987 A
4676237 Wood et al. Jun 1987 A
4682010 Drapeau et al. Jul 1987 A
4684786 Mann et al. Aug 1987 A
4686354 Makin Aug 1987 A
4695955 Faisandier Sep 1987 A
4708831 Elsworth et al. Nov 1987 A
4710887 Ho Dec 1987 A
4715998 Clow Dec 1987 A
4722334 Blackmer et al. Feb 1988 A
4736090 De Broeck et al. Apr 1988 A
4753758 Miller Jun 1988 A
4780247 Yasuda Oct 1988 A
4787117 Westergren Nov 1988 A
4791966 Eilentropp Dec 1988 A
4807616 Adahan Feb 1989 A
4808793 Hurko Feb 1989 A
4826444 Genoa et al. May 1989 A
4829781 Hitzier May 1989 A
4829998 Jackson May 1989 A
4911157 Miller Mar 1990 A
4911357 Kitamura Mar 1990 A
4921642 LaTorraca May 1990 A
4941469 Adahan Jul 1990 A
4955372 Blackmer et al. Sep 1990 A
D313969 Lacroix Jan 1991 S
5031612 Clementi Jul 1991 A
5062145 Zwaan et al. Oct 1991 A
5092326 Winn et al. Mar 1992 A
5101820 Christopher Apr 1992 A
5121746 Sikora Jun 1992 A
5148801 Douwens et al. Sep 1992 A
5164652 Johnson et al. Nov 1992 A
5203343 Axe et al. Apr 1993 A
5224923 Moffett et al. Jul 1993 A
5230331 Rusz et al. Jul 1993 A
5231979 Rose et al. Aug 1993 A
5336156 Miller et al. Aug 1994 A
5346128 Wacker Sep 1994 A
5347211 Jakubowski Sep 1994 A
5367604 Murray Nov 1994 A
5387117 Moyher, Jr. et al. Feb 1995 A
5388443 Manaka Feb 1995 A
5392770 Clawson et al. Feb 1995 A
5404729 Matsuoka et al. Apr 1995 A
5428752 Goren Jun 1995 A
D362718 Deily et al. Sep 1995 S
5449234 Gipp et al. Sep 1995 A
5454061 Carlson Sep 1995 A
5482031 Lambert Jan 1996 A
5492676 Katatani et al. Feb 1996 A
5516466 Schlesch et al. May 1996 A
5529060 Salmon et al. Jun 1996 A
5537996 McPhee Jul 1996 A
5537997 Mechlenburg et al. Jul 1996 A
5551419 Froehlich Sep 1996 A
5558084 Daniell et al. Sep 1996 A
5564415 Dobson et al. Oct 1996 A
5588423 Smith Dec 1996 A
5600752 Lopatinsky Feb 1997 A
5637006 Almeras Jun 1997 A
5640951 Huddart et al. Jun 1997 A
5658159 Gardner et al. Aug 1997 A
5662101 Ogden et al. Sep 1997 A
5673687 Dobson et al. Oct 1997 A
5705555 Guilfoy et al. Jan 1998 A
5755715 Stern et al. May 1998 A
5759149 Goldberg et al. Jun 1998 A
5769071 Turnbull Jun 1998 A
5778872 Fukunaga et al. Jul 1998 A
5906201 Nilson May 1999 A
5916493 Miller Jun 1999 A
5943473 Levine Aug 1999 A
5980289 Engle Nov 1999 A
5988164 Paluch Nov 1999 A
5991507 Bencsits Nov 1999 A
6024694 Goldberg et al. Feb 2000 A
6038457 Barkat Mar 2000 A
6050260 Daniell et al. Apr 2000 A
6078730 Huddart et al. Jun 2000 A
6090313 Zhao Jul 2000 A
6095505 Miller Aug 2000 A
6109782 Fukura et al. Aug 2000 A
6125847 Lin Oct 2000 A
6158431 Poole Dec 2000 A
6167883 Beran et al. Jan 2001 B1
6189870 Withall Feb 2001 B1
6238598 Chen May 2001 B1
6240921 Brydon et al. Jun 2001 B1
6256454 Dykes Jul 2001 B1
6272933 Gradon et al. Aug 2001 B1
6311958 Stanek Nov 2001 B1
6349722 Gradon et al. Feb 2002 B1
6360741 Trushel Mar 2002 B2
6367472 Koch Apr 2002 B1
6384755 Hayden May 2002 B1
6394084 Nitta May 2002 B1
6397841 Kenyon et al. Jun 2002 B1
6397846 Skog et al. Jun 2002 B1
6398197 Dickinson et al. Jun 2002 B1
6412488 Barnett et al. Jul 2002 B1
6435180 Hewson et al. Aug 2002 B1
6440512 Thomas et al. Aug 2002 B1
6463925 Nuckols et al. Oct 2002 B2
6464520 Saba Oct 2002 B2
6474335 Lammers Nov 2002 B1
6536432 Truschel Mar 2003 B2
D472970 Lund Apr 2003 S
6543412 Amou et al. Apr 2003 B2
6564011 Janoff et al. May 2003 B1
6584972 McPhee Jul 2003 B2
6594366 Adams Jul 2003 B1
6668828 Figley et al. Dec 2003 B1
6694974 George-Gradon et al. Feb 2004 B1
6705478 Engle Mar 2004 B1
6718974 Moberg Apr 2004 B1
6773138 Coushaine Aug 2004 B2
6796308 Gunatatnam et al. Sep 2004 B2
6816669 Zimmer et al. Nov 2004 B2
6851425 Jaffre et al. Feb 2005 B2
6918389 Seakins et al. Jul 2005 B2
6953354 Edirisuriya et al. Oct 2005 B2
7096864 Mayer et al. Aug 2006 B1
7111624 Thudor et al. Sep 2006 B2
7120354 Mackie et al. Oct 2006 B2
7131842 Hollingsworth et al. Nov 2006 B2
7140367 White et al. Nov 2006 B2
7146979 Seakins et al. Dec 2006 B2
7327949 Cheng et al. Feb 2008 B1
7364140 Lipscombe et al. Apr 2008 B2
7453043 Park et al. Nov 2008 B2
7468116 Smith et al. Dec 2008 B2
7588029 Smith et al. Sep 2009 B2
7588186 Steffen et al. Sep 2009 B2
D619964 Coushaine et al. Jul 2010 S
7766050 Patel Aug 2010 B2
D627296 Vogt et al. Nov 2010 S
D628288 Row et al. Nov 2010 S
7827990 Melidis et al. Nov 2010 B1
D634015 King et al. Mar 2011 S
7933780 De La Huerga Apr 2011 B2
7938114 Matthews et al. May 2011 B2
7987847 Wickham Aug 2011 B2
8063343 McGhin et al. Nov 2011 B2
D650741 Sun et al. Dec 2011 S
8069854 Colla et al. Dec 2011 B2
8091547 Thudor et al. Jan 2012 B2
8122882 McGhin et al. Feb 2012 B2
D660960 Grönberg May 2012 S
8186345 Payton et al. May 2012 B2
8235041 Seakins et al. Aug 2012 B2
8245710 Makinson et al. Aug 2012 B2
8316848 Kowk et al. Nov 2012 B2
8453641 Payton et al. Jun 2013 B2
D689436 Sun et al. Sep 2013 S
8550072 Thudor et al. Oct 2013 B2
8550084 Ng et al. Oct 2013 B2
9265902 Payton et al. Feb 2016 B2
9302066 Bertinetti et al. Apr 2016 B2
9555210 Seakins et al. Jan 2017 B2
9750917 Seakins et al. Sep 2017 B2
9814856 Payton et al. Nov 2017 B2
10398861 O'Donnell et al. Sep 2019 B2
10525225 Seakins et al. Jan 2020 B2
10537698 Payton et al. Jan 2020 B2
10596341 Bertinetti et al. Mar 2020 B2
10596345 Leonard Mar 2020 B2
10625035 Fleming et al. Apr 2020 B2
10709865 Payton et al. Jul 2020 B2
10751490 Martin et al. Aug 2020 B2
11007340 Payton et al. May 2021 B2
11458273 Payton et al. Oct 2022 B2
11617844 O'Donnell et al. Apr 2023 B2
11679224 Payton et al. Jun 2023 B2
20010004894 Bourdon Jun 2001 A1
20010017134 Bahr Aug 2001 A1
20020020416 Namey Feb 2002 A1
20020038392 De La Huerga Mar 2002 A1
20020083947 Seakins Jul 2002 A1
20020186966 Zimmer et al. Dec 2002 A1
20030079748 Seakins May 2003 A1
20030111079 Matthews et al. Jun 2003 A1
20030154977 White et al. Aug 2003 A1
20040074495 Wickham et al. Apr 2004 A1
20040118406 Lithgow et al. Jun 2004 A1
20040149284 Smith et al. Aug 2004 A1
20040163648 Burton Aug 2004 A1
20040182392 Gerder et al. Sep 2004 A1
20050053908 Satheesh et al. Mar 2005 A1
20050076906 Johnson Apr 2005 A1
20050152733 Patel Jul 2005 A1
20050155604 Ging et al. Jul 2005 A1
20060086357 Soliman et al. Apr 2006 A1
20060278221 Schermeier et al. Dec 2006 A1
20070044804 Matual et al. Mar 2007 A1
20070221224 Pittman et al. Sep 2007 A1
20080251071 Armitsread et al. Oct 2008 A1
20080295837 McCormick et al. Dec 2008 A1
20090035733 Meitar et al. Feb 2009 A1
20090110379 McGhin et al. Apr 2009 A1
20090199850 Colla et al. Aug 2009 A1
20090293875 Kwok et al. Dec 2009 A1
20090320840 Klasek et al. Dec 2009 A1
20100010477 Augustine et al. Jan 2010 A1
20100190143 Gal et al. Jul 2010 A1
20100291528 Huerta Nov 2010 A1
20110167013 Pogue et al. Jul 2011 A1
20120125333 Bedford et al. May 2012 A1
20120247470 Ho et al. Oct 2012 A1
20130312750 Farrugla et al. Nov 2013 A1
20140283831 Foote et al. Sep 2014 A1
20140311487 Buechi et al. Oct 2014 A1
20170095635 Huby Apr 2017 A1
20180056024 Harrington et al. Mar 2018 A1
20180326167 Tang et al. Nov 2018 A1
20190336711 O'Donnell et al. Nov 2019 A1
20200078549 Harrington et al. Mar 2020 A1
20230201496 O'Donnell et al. Jun 2023 A1
Foreign Referenced Citations (85)
Number Date Country
7197898 Dec 1998 AU
1370085 Sep 2002 CN
3311811 Oct 1984 DE
3629353 Jan 1988 DE
4020522 Jan 1992 DE
4034611 May 1992 DE
4102223 Jul 1992 DE
9409231.1 Dec 1994 DE
19647548 May 1998 DE
19725875 Dec 1998 DE
19958296 Sep 2001 DE
20202906 Feb 2002 DE
10312881 May 2004 DE
202006007397 Sep 2007 DE
102007003454 Jul 2008 DE
102007003455 Aug 2008 DE
0258928 Sep 1988 EP
0356000 Feb 1990 EP
0481459 Apr 1992 EP
0556561 Aug 1993 EP
0616166 Sep 1994 EP
0672430 Sep 1995 EP
0885623 Dec 1998 EP
0661071 Feb 2000 EP
1127583 Aug 2001 EP
1138341 Oct 2001 EP
1166814 Jan 2002 EP
1145678 Apr 2002 EP
1579884 Sep 2005 EP
1778330 May 2007 EP
2852425 Aug 2017 EP
2910271 Jun 2019 EP
3311871 Apr 2020 EP
1167551 Oct 1969 GB
1294808 Nov 1972 GB
1448473 Sep 1976 GB
2056611 Mar 1981 GB
2173274 Oct 1986 GB
2 277 689 Nov 1994 GB
S53-043943 Apr 1978 JP
S61-294479 Dec 1986 JP
S62-26076 Feb 1987 JP
H02-193680 Jul 1990 JP
H02-118555 Sep 1990 JP
H04-200477 Jul 1992 JP
05-317428 Dec 1993 JP
H07-16955 Mar 1995 JP
H07-204273 Aug 1995 JP
08-061731 Mar 1996 JP
H08-317428 Nov 1996 JP
09-234247 Sep 1997 JP
H09-276408 Oct 1997 JP
H10-028737 Feb 1998 JP
H10-506544 Jun 1998 JP
H11-057009 Mar 1999 JP
2000-024109 Jan 2000 JP
2000-167055 Jun 2000 JP
2001-129091 May 2001 JP
2002-272849 Sep 2002 JP
2002-291655 Oct 2002 JP
2003-516825 May 2003 JP
3475261 Dec 2003 JP
379270 Apr 1973 SU
WO 9221163 Nov 1992 WO
WO 96000528 Jan 1996 WO
WO 9718001 May 1997 WO
WO 9804311 Feb 1998 WO
WO 9826826 Jun 1998 WO
WO 0110489 Feb 2001 WO
WO 0143804 Jun 2001 WO
WO 0232486 Apr 2002 WO
WO 02066106 Aug 2002 WO
WO 03018096 Mar 2003 WO
WO 2004011072 Feb 2004 WO
WO 2004105848 Dec 2004 WO
WO 2005021076 Mar 2005 WO
WO 2006019323 Feb 2006 WO
WO 2006092001 Sep 2006 WO
WO 2006133494 Dec 2006 WO
WO 2008055308 May 2008 WO
WO 2012012835 Feb 2012 WO
WO 2012020314 Feb 2012 WO
WO 2013176557 Nov 2013 WO
WO 2014077706 May 2014 WO
WO 2015038013 Mar 2015 WO
Non-Patent Literature Citations (48)
Entry
Letter transmitting Examiner's Report in Canadian Application No. 2576409, dated Mar. 31, 2011, in 2 pages.
Examiner's Report in Canadian Application No. 2576409, dated Nov. 1, 2012, by Dan Rempel, in 2 pages.
Examination Search Report for Canadian Patent Application No. 2,850,679, dated Nov. 25, 2016 in 3 pages.
Office Action issued in Canadian Patent Application No. 2,850,679, dated Dec. 11, 2017, in 3 pages.
Office Action issued in Canadian Patent Application No. 2,850,679, dated Mar. 6, 2019, in 4 pages.
Office Action issued in Canadian Patent Application No. 2,871,850 dated Mar. 12, 2020, in 4 pages.
Chinese Examination Report of CN Application No. 200580028386.6, cover letters dated Jul. 19, 2011 and Aug. 12, 2011, with English translation of pertinent portions of examination report.
Chinese Examination Report of CN Application No. 200580028386.6, with English translation of pertinent portion, dated Apr. 12, 2012, in 8 pages.
Office Action issued in Chinese Patent Application No. 201310020628.3, dated Oct. 19, 2015, in 3 pages.
Reexamination Translation for related Chinese Patent Application No. 201310020628.3, Apr. 12, 2017 in 6 pages.
European Search Report issued in European Patent Application No. 03012599.1, dated Oct. 20, 2003, in 5 pages.
Supplemental European Search Report issued in European Patent Application No. EP 03797756.8, dated Feb. 18, 2013, in 6 pages.
Supplementary Partial European Search Report for EP Application No. 05776618.0, dated May 29, 2017 in 10 pages.
Examination Report issued in European Patent Application No. 05776618.0, dated Dec. 19, 2018, in 7 pages.
Examination Report issued in European Patent Application No. 05776618.0, dated Jul. 24, 2019, in 7 pages.
Examination Report issued in Japanese Patent Application No. 2011-266229, dated Feb. 7, 2013, in 2 pages.
JP Examination Report; JP2012-020278; dated Feb. 3, 2015, 4 pages.
JP Examination Report; JP2013-168353; dated Jun. 24, 2014; 6 pages.
JP Examination Report; JP2013-168354; dated Jun. 24, 2014; 5 pages.
Office Action dated Aug. 2, 2016 issued in Japanese Application No. 2015-212046, along with its English translation, in 20 pages.
English Translation of Notice of Reasons for Rejection for related Japanese Patent Application No. 2015-212046, dated Aug. 1, 2017 in 4 pages.
International Search Report received in PCT Application No. PCT/NZ2005/000219, dated Sep. 28, 2005.
Extended European Search Report for PCT/NZ2005/000219 dated Jun. 7, 2017 in 10 pages.
International Search Report received in PCT Application No. PCT/NZ2013/000088, dated Aug. 9, 2013.
Written Opinion of the ISA received in PCT Application No. PCT/NZ2013/000088, dated Aug. 9, 2014.
Patent Owner's Complaint for Fisher & Paykel Healthcare Ltd. v. ResMed Corp., Case No. 3:16-cv-02068-GPC-WVG (S.D. Cal.) dated Aug. 16, 2016, in 29 pages.
Petitioners' Complaint for ResMed Inc., et al. v. Fisher & Paykel Healthcare Corp. Ltd., et al., Case No. 3:16-cv-02072-JAH-MDD (S.D. Cal.) dated Aug. 16, 2016, in 65 pages.
Petitioners' Notice of Voluntary Dismissal Without Prejudice for ResMed Inc., et al. v. Fisher & Paykel Healthcare Corp. Ltd., et al., Case No. 3:16-cv-02072-JAH-MDD (S.D. Cal.) dated Aug. 18, 2016, in 3 pages.
Patent Owner's Complaint for Fisher & Paykel Healthcare Ltd. v. ResMed Corp., Case No. 2:16-cv-06099-R-AJW (C.D. Cal.) dated Aug. 15, 2016, in 29 pages.
Patent Owner's Notice of Voluntary Dismissal Without Prejudice for Fisher & PaykelHealthcare Ltd. v. ResMed Corp., Case No. 2:16-cv-06099-R-AJW (C.D. Cal.) dated Aug. 16, 2016, in 2 pages.
Second Declaration of Andrew Bath, ResMed Inc., ResMed Corp, and ResMed Limited v. Fisher & Paykel Healthcare Limited, Case No. IPR2016-01724, dated Aug. 24, 2017, in 40 pages.
Second Declaration of Andrew Bath, ResMed Inc., ResMed Corp, and ResMed Limited v. Fisher & Paykel Healthcare Limited, Case No. IPR2016-01735, dated Aug. 24, 2017, in 37 pages.
Bobrow, Leonard S., Elementary Linear Circuit Analysis, Second Edition, ISBN: 0-03-007298-0, CBD College Publishing, 1987, pp. 168-169, 222-223, 236-237, 266-267, 350-351 in 7 pages.
Effect of Polyethylene on Morphology and Dielectric Breakdown in EVA Blends from http://ieeexplore.ieee.org; One (1) page; Issued date Jul. 8-13, 2007, paper appears in Solid Dielectrics, 2007 ICSD '07. IEEE International Conference.
Fisher & Paykel Healthcare, Annual Report 2003, accessed from https://www.fphcare.co.nz/files/documents/investorannouncements/annual-interim-reports -_- en/ar2003_full/.
Fisher & Paykel Healthcare, FY04 Full Year Overview & Update, May 24, 2004, dated on https://www.fphcare.com/investor/presentations/presentations-2004/, accessed from https://www.fphcare.com/CMSPages/GetFile.aspx?guid=50c66a57-cb04-4e4d-b220-92e371d07292.
Fisher & Paykel Healthcare, Full Year Analyst Briefing, Jun. 5, 2002, dated on https://www.fphcare.com/investor/presentations/presentations-2002/, accessed from https://www.fphcare.com/CMSPages/GetFile.aspx?guid=ef7b02d1-cc43-4d62-a1f7-494be1bbb2dc.
Fisher & Paykel Healthcare, MR810 Respiratory Humidifier Technical Manual Revision C, 2004, Fisher & Paykel Healthcare Ltd, Auckland, New Zealand, 43 pages.
Fisher & Paykel Healthcare, MR850 Respiratory Humidifier Instruction Sheet, Rev. G, Feb. 2004 (“MR850 Instruction Sheet”).
Frenzel, Louise E. Jr., Crash Course in Electronics Technology, Second Edition, ISBN: 0-7506-9710-5, 1996, pp. 1-6.
Horowitz et al., The Art of Electronics, Cambridge University Press 1980, 1989, ISBN: 0-521-37095-7, pp. 48-52, 116, in 6 pages.
IEEE 100 The Authoritive Dictionary of IEEE Standards Terms, Seventh Edition, The Definition of Resistor, The Institute of Electrical and Electronics Engineers, Inc., p. 972, dated Dec. 2000, in 3 pages.
Khandpurk, Dr. R.S., Printed Circuit Boards, Design, Fabrication, Assembly and Testing, ISBN: 0-07-146420-4, Glossary, McGraw-Hill 2006, in 5 pages.
Phillips, Geoff, Newnes Electronics Toolkit, ISBN: 075060929 X, 1993, p. 25, in 4 pages.
Potter, “Measuring Temperature with Thermistors—a Tutorial” Thermistors—National Instruments Application Note 065, National Instruments Corporation, Nov. 1996, pp. 1-8.
Printout from www.astm.org/Standards/D1351.htm of Astm D1351—08 Standard Specification for Thermoplastic Polyethylene Insulation for Electrical Wire and Cable; Two (2) pages; Copyright 1996-2010 (051CP1DV1).
Shiva, Sajjan G., “Hardware Technologies” Introduction to Logic Design, Second Edition, ISBN: 0-8247-0082-1, 1998, p. 495, in 4 pages.
Vishay BCcomponents, 2322 640 3/4/6, “NTC Thermistors, Accuracy Line” from www.vishay.com, Oct. 10, 2003 in 19 pages.
Related Publications (1)
Number Date Country
20220040435 A1 Feb 2022 US
Continuations (4)
Number Date Country
Parent 16714311 Dec 2019 US
Child 17240155 US
Parent 15010321 Jan 2016 US
Child 16714311 US
Parent 13908952 Jun 2013 US
Child 15010321 US
Parent 11572822 US
Child 13908952 US