SYSTEM AND METHOD FOR DETERMINING CALORIMETRIC PERFORMANCE AND REQUIREMENTS
20180192912 ยท 2018-07-12
Inventors
Cpc classification
G16H20/30
PHYSICS
A61B5/097
HUMAN NECESSITIES
A61B5/091
HUMAN NECESSITIES
A61B5/0004
HUMAN NECESSITIES
G16H50/20
PHYSICS
G16H20/40
PHYSICS
A61B5/083
HUMAN NECESSITIES
G01F1/00
PHYSICS
A61B5/222
HUMAN NECESSITIES
International classification
A61B5/083
HUMAN NECESSITIES
A61B5/00
HUMAN NECESSITIES
Abstract
A calorimetric performance monitoring system includes an analyzer that is fluidly connected to an in-stream respiration flow sensor. The system includes a controller that is configured to determine a flow rate of respiration flow and at least a portion of a composition of the respiration flow on a breath-by-breath basis and temporally associate the respiration flow value and the determined portion(s) of the composition of the respiration flow and segregate non-steady state respiration performance data from steady state respiration performance data and determine a calorimetric performance from the steady state respiration performance data.
Claims
1. A calorimetric performance monitoring system, the system comprising: an analyzer configured to be fluidly connected to a flow sensor that is constructed to be disposed in a respiration flow path; and a controller associated with the analyzer and configured to determine a respiration flow volume and a composition of at least a portion of the respiration flow, the controller being further configured to segregate acquired data between steady state respiration performance data and non-steady state respiration performance data and determine a value associated with a calorimetric performance of a subject associated with the flow sensor and based on the steady state respiration performance data.
2. The system of claim 1 wherein the controller is further configured to allow a user to set at least one threshold associated with determining segregation between the steady state and non-steady state respiration performance data.
3. The system of claim 2 wherein the controller is further configured to allow a user to set a second threshold such that the first and second thresholds must each be satisfied for respiration performance data to qualify as steady state performance data associated with determining the value associated with the calorimetric performance.
4. The system of claim 1 wherein the controller is configured to exclude non-steady state respiration performance data associated with each breath cycle during determination of the value associated with the calorimetric performance.
5. The system of claim 1 wherein the controller is further configured to generate an alignment signal that is communicated to the flow sensor and a portion of which is therefrom returned to the analyzer and the controller utilizes the alignment signal to temporally align acquired respiration flow data and composition data in response to information associated with the alignment signal.
6. The system of claim 1 wherein the flow sensor includes a first and a second port that are connected to the analyzer and associated with determining a flow through the sensor and a third port that communicates a sample of the flow to the analyzer.
7. A method of forming a calorimetric performance monitoring system comprising: providing a flow sensor that is constructed to be disposed in a respiration flow stream and which includes at least a first, a second, and a third port formed through a sidewall of the flow sensor; providing an analyzer constructed to be fluidly connected to the first port, the second port, and the third port of the flow sensor; and providing a controller configured to control operation of the analyzer and determine a flow value through the flow sensor from information associated with the first and the second ports of the flow sensor and determine a flow composition value associated with a respiration flow stream from a sample of the respiration flow stream communicated to the analyzer via the third port, the controller being further configured to cause the analyzer to generate an alignment signal that is communicated to the flow sensor via one of the first, the second, and the third ports and temporally align the flow value and the composition value from information returned to the analyzer attributable to the alignment signal.
8. The method of claim 7 wherein the controller is further configured to segregate acquired flow data and composition data between steady state respiration performance data and non-steady state respiration performance data and determine a value associated with a calorimetric performance based on the steady state respiration performance data.
9. The method of claim 8 wherein the controller is further configured to characterize the flow data and composition data that includes a contribution attributable to the alignment signal as non-steady state respiration performance data.
10. The method of claim 8 further comprising providing a display configured to generate a visual output of the value associated with the calorimetric performance.
11. The method of claim 10 furthering comprising providing a wireless communication between the analyzer and the display.
12. The method of claim 8 further comprising configuring the display to concurrently output the value associated with the caloric performance, the flow value, and the flow composition value wherein each of the value associated with the caloric performance, the flow value, and the flow composition value a respiration flow stream are temporally aligned with one another relative to a discrete portion of the respiration flow stream.
13. A method of determining calorimetric performance from respiration performance data, the method comprising: determining a flow and at least a portion of a composition of a respiration flow stream; and determining a calorimetric performance from data associated with the determined flow and at least a portion of the composition of the respiration flow that includes removing at least a portion of non-steady state respiration performance data from the determination of the calorimetric performance.
14. The method of claim 13 further comprising segregating the determined flow and the determined portion of the composition of the respiration flow into steady state respiration performance data and the non-steady state respiration performance data.
15. The method of claim 13 further comprising communicating a sample of the respiration flow stream from an in-stream flow sensor and an analyzer.
16. The method of claim 15 further comprising communicating an alignment signal from the analyzer to the flow sensor and acquiring data with the analyzer that is attributable to the alignment signal and aligning the determined flow and the determined composition in a timewise manner as a function of operation of the alignment signal.
17. The method of claim 13 further comprising displaying a value associated with the determined calorimetric performance concurrently with the determined flow and composition associated with the respiration flow stream wherein at least one of the values associated with the calorimetric performance and the determined flow and determined composition have been shifted in a time domain to be aligned with one another.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0013] The drawings illustrate one preferred embodiment presently contemplated for carrying out the invention.
[0014]
[0015]
[0016]
[0017]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
[0018] As shown in
[0019] Analyzer 32, having acquired the data or signals from tubes 42 and heart rate monitor 50, generates time aligned and composition corrected respiration information and outputs the information at display 36 as explained further below. Analyzer 32 includes optional user inputs 52 that allow a user to selectively configure the operation of analyzer 32 and the output of display 36 such that analyzer 32 and display 36 generate and output the desired information, respectively. As disclosed further below, it is further appreciated that display 36 can be constructed as a touch screen and/or personally portable display such that a user or technician can manipulate the display results thereof and operation of analyzer 32 by touching selected areas of the display without utilization of auxiliary input devices such as a keyboard 54 and/or a mouse 56.
[0020] Supported by an understanding associated with the operation of system 30 disclosed in the patent documents cited above, and as described further with respect to
[0021] Referring to
[0022] First input 57 and second input 59 extend through housing 58 and are constructed to removably engage the tubes 42 connected to sensor 34 or container 61 as shown in
[0023]
[0024] As disclosed therein, each of the respiration cycle concentration values are temporally aligned along the data trend. The carbon dioxide concentration and the oxygen concentration values are generally produced as mirror images of one another such that quick viewing and interpretation of the breath data can be achieved. It is further appreciated that the oxygen concentration data is acquired by scaling the respiration data by a factor such that it correlates to the carbon dioxide concentration value. Alternatively, it is understood that analyzer 32 may be configured to monitor the oxygen content deficiency and that this value may then be inverted to generally mimic the carbon dioxide concentration value. Both configurations provide a carbon dioxide and oxygen concentration displayed value that is readily assessable.
[0025] Analyzer 32 and controller 60 associated therewith are configured to indirectly determine a calorimetric value from information associated with the respiration performance acquired from sensor 32 to determine a person's nutritional performance or need from the respiration flow and concentration information acquired and/or determined by analyzer 32. The determined volumetric carbon dioxide 506 (VCO2) and volumetric oxygen 504 (VO2), are used to calculate a Respiratory Exchange Ratio (RER) and calorimetric performance value 600 as Energy Expenditure (EE).
[0026] The Respiratory Exchange Ratio is the ratio of volumetric carbon dioxide 506 divided by volumetric oxygen 504. The respiratory quotient (RQ) 610 is this same ratio of volumetric carbon dioxide 506 divided by volumetric oxygen 504 but adjusted to reflect its occurrence at a cellular level. Respiratory Exchange Ratio will generally equal the respiratory quotient when the subject is at steady state, such as when at rest or during prolonged, continuous constant activity. These Respiratory Exchange Ratio and respiratory quotients are not the same when respiration is in a dynamic or non-steady state condition such that, determining a calorimetric value from information associated with the respiration performance information associated with sensor 32 must first determine and segregate the steady state respiration performance data and the non-steady state respiration performance data. Understandably, the non-steady state respiration performance data cannot be wholly ignored as the same is necessary to assess the overall respiration performance information. Accordingly, to determine the calorimetric performance of the user associated with sensor 32 requires selective segregation of the non-steady state and steady state respiration performance data.
[0027] Resting Energy Expenditure (REE), and equivalently Resting Metabolic Rate (RMR) is the measured Energy Expenditure when a subject in a resting state. The values associated with the Resting Energy Expenditure and respiratory quotient are used for nutritional assessment or the determination of a subject's calorimetric performance or need. Determination of these values when the subject is not in a resting state detracts from the accuracy associated with the determination of the Resting Energy Expenditure and Resting Metabolic Rate and thereby detracts from the accuracy associated with the subject's calorimetric requirements and/or performance.
[0028] System 32 includes accommodation of a Coefficient of Variation (CV) 612 associated with determining stability of the respiration performance. Typically, clinicians rely on the Coefficient of Variation (CV) of the data to be low, typically less than between 5% to 10%, for some period of time. Both CV level and time requirements depend typically on institutional guidelines as determined by industry (professional journals, academic) guidance. The value associated with CV 612 is adjustable 614, 616 to accommodate different institutional requirements and/or operator preferences.
[0029] System 32 and the controller 60 associated therewith automatically collects and segregates respiration performance data for use in determining a subject's calorimetric performance and/or requirement. The operator (or institution) may configure the software associated with operation of controller 60 to search for respiration performance stability based on multiple criteria such as the coefficient of variation associated with each of carbon dioxide and oxygen volumes and/or concentrations, an adjustable ventilator leak accommodation 618, 620, 622, 624 (ratio of expired divided by inspired tidal volume), etc. System 32 simplifies the collection process associated with suitable steady state performance data. That is, system 32 determines whether a suitable degree of respiration performance stability is attained and whether a required sample time duration is reached in a manner that shortens the overall collection time associated with acquiring sufficient data to determine a calorimetric performance or need associated with the subject.
[0030] As shown in the lower graphic portion of
[0031] In another aspect of the invention, as shown in
[0032] Therefore, one aspect of the present application includes a calorimetric performance monitoring system having an analyzer that is configured to be fluidly connected to a flow sensor that is constructed to be disposed in a respiration flow path. A controller is associated with the analyzer and configured to determine a respiration flow volume and a composition of at least a portion of the respiration flow. The controller is further configured to segregate acquired respiration flow data between steady state respiration performance data and non-steady state respiration performance data and determine a value associated with a calorimetric performance of a subject associated with the flow sensor based on the steady state respiration performance data.
[0033] Another aspect of the present application that is usable or combinable with one or more of the above features or aspects discloses a method of forming a calorimetric performance monitoring system. The method includes providing a flow sensor that is constructed to be disposed in a respiration flow stream and which includes at least a first, a second, and a third port formed through a sidewall of the flow sensor. An analyzer is provided that is constructed to be fluidly connected to the first port, the second port, and the third port of the flow sensor. The method includes providing a controller that is configured to control operation of the analyzer and determine a flow value through the flow sensor from information associated with the first and the second ports of the flow sensor and determine a flow composition value associated with a respiration flow stream from a sample of the respiration flow stream communicated to the analyzer via the third port. The controller is further configured to cause the analyzer to generate an alignment signal that is communicated to the flow sensor via one of the first, the second, and the third ports and temporally align the flow value and the composition value from information returned to the analyzer attributable to the alignment signal and determine a calorimetric performance associated with the source of the respiration flow stream.
[0034] Another aspect of the present application that is combinable or useable with one or more of the above aspects discloses a method of determining calorimetric performance from respiration performance data. The method includes determining a flow and at least a portion of a composition of a respiration flow stream and determining a calorimetric performance from data associated with the determined flow and at least a portion of the composition of the respiration flow that includes removing at least a portion of non-steady state respiration performance data from the determination of the calorimetric performance.
[0035] It is to be understood that specific details described above are not to be interpreted as limiting the scope of the invention, but are provided merely as a basis for teaching one skilled in the art to variously practice the present invention in any appropriate manner. Changes may be made in the details of the various methods and features described herein, without departing from the spirit of the invention