Embodiments of the invention relate to a finger cuff used for non-invasive blood pressure measurement.
Volume clamping is a technique for non-invasively measuring blood pressure in which pressure is applied to a subject's finger in such a manner that arterial pressure may be balanced by a time varying pressure to maintain a constant arterial volume. In a properly fitted and calibrated system, the applied time varying pressure is equal to the arterial blood pressure in the finger. The applied time varying pressure may be measured to provide a reading of the patient's arterial blood pressure.
This may be accomplished by a finger cuff that is arranged around a finger of a patient. The finger cuff may include an infrared light source, an infrared sensor, and an inflatable bladder. With a finger cuff, by inflating the bladder in the finger cuff, a pressure is exerted on the outside of a finger artery. If the bladder pressure is higher than the pressure inside the artery, it will compress the artery and the amount of light registered by the infrared sensor will increase. The amount of pressure necessary in the inflatable bladder to compress the artery is dependent on the blood pressure. By controlling the pressure of the inflatable bladder such that the diameter of the finger artery is kept constant, the blood pressure may be monitored in very precise detail as the pressure in the inflatable bladder is directly linked to the blood pressure.
In many current implementations, the finger cuff is a stiff, conically shaped apparatus that is still flexible enough to be wrapped around the finger. Due to differences in finger shapes (e.g., the finger can be straight, have more pronounced knuckles, may change with age, etc.), the pressure of the finger cuff may not be evenly distributed over the finger, which can result in patient discomfort, especially at the edge of the finger cuff and/or around the knuckles, where the bone is close to the skin surface.
Other than patient discomfort, an ill-fitted finger cuff may decrease measurement accuracy as more accurate measurements are obtained when the bladder in the finger cuff is in more close contact with the skin such that pressure is more evenly distributed over the finger. For example, measurements on a finger with relatively big knuckles may be less accurate than measurements on a finger with less prominent knuckles.
Additionally, the pressure in a large finger cuff is difficult to control due to the large bladder volume. Measurement accuracy may be compromised when the bladder volume is too large.
Moreover, the measurement accuracy of existing finger cuffs is susceptible to application errors. For example, when the finger cuff is wrapped too loosely or too tightly around the finger, the measurements may be less accurate. Also, in another example, when a conically shaped finger cuff is applied in the wrong orientation (e.g., upside down), the measurements may also be less accurate.
Embodiments of the invention may relate to a finger cuff apparatus connectable to a patient's finger to be used in blood pressure measurement using volume clamping. The finger cuff apparatus may comprise: a first bladder; and a second bladder or multiple bladders.
Embodiments of the invention may relate to a finger cuff apparatus connectable to a patient's finger to be used in blood pressure measurement using volume clamping. The finger cuff apparatus may comprise: a first bladder; and a second bladder or multiple bladders. The first bladder is inflatable to be used in the blood pressure measurement using volume clamping. Further, as will be described, the second bladder or multiple bladders may be fixed sized bladders or may be adjustable sized bladders or inflatable bladders. As will be described, one or more fixed sized bladders that may or may not be pneumatically or hydraulically connected may be arranged in close proximity to an inflatable bladder or another fixed sized bladder.
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In one embodiment, the blood pressure measurement system 102 may include a pressure measurement controller 120 that includes: a small internal pump, a small internal valve, a pressure sensor, and control circuity. In this embodiment, the control circuitry may be configured to: control the pneumatic pressure applied by the internal pump to the bladder of the finger cuff 104 to replicate the patient's blood pressure based upon measuring the pleth signal received from the LED-PD pair of the finger cuff 104. Further, the control circuitry may be configured to: control the opening of the internal valve to release pneumatic pressure from the bladder; or the internal valve may simply be an orifice that is not controlled. Additionally, the control circuitry may be configured to: measure the patient's blood pressure by monitoring the pressure of the bladder based upon the input from a pressure sensor, which should be the same as patient's blood pressure, and may display the patient's blood pressure on the patient monitoring device 130.
In another embodiment, a conventional pressure generating and regulating system may be utilized, in which, a pump 134 is located remotely from the body of the patient. In this embodiment, the blood pressure measurement controller 120 receives pneumatic pressure from remote pump 134 through tube 136 and passes on the pneumatic pressure through tube 123 to the bladder 106 of finger cuff 104. Blood pressure measurement device controller 120 may also control the pneumatic pressure (e.g., utilizing a controllable valve) applied to the finger cuff 104 as well as other functions. In this example, the pneumatic pressure applied by the pump 134 to the bladder of finger cuff 104 to replicate the patient's blood pressure based upon measuring the pleth signal received from the LED-PD pair of the finger cuff 104 and measuring the patient's blood pressure by monitoring the pressure of the bladder may be controlled by the blood pressure measurement controller 120 and/or a remote computing device and/or the pump 134 and/or the patient monitoring device 130. In some embodiments, a blood pressure measurement controller 120 is not used at all and there is simply a connection from the tube 123 to the finger cuff 104 from a remote pump 134 having a remote pressure regulatory system, and all processing for the pressure generating and regulatory system, data processing, and display is performed by a remote computing device.
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Therefore, as has been described, as one example, a finger cuff may comprise a first bladder and a second bladder, and during blood pressure measurements, the first bladder is inflated to effect the finger cuff pressure over the finger such that volume clamping is performed. The second bladder may serve as a cushion between the frame of the finger cuff and the finger. In some embodiments, the second bladder may be a fixed sized bladder and have fixed volume. As has been described, multiple bladders being of fixed sized and having fixed volume may be utilized. In other embodiments, the second bladder or multiple bladders may be used that have an adjustable volume and that may be adjustable in size to perform better fitting and/or to be used in volume clamping (similar to the first bladder). The first and second or multiple bladders may be arranged next to each other on the inner side of the frame of the finger cuff, or may be arranged on opposite sides of the frame of the finger cuff. The first bladder and/or the second bladder and/or multiple bladders may be filled/fillable with either air or a liquid and may be fixed sized/volume implementations or may be adjustable in size/volume implementations. Also, it should be appreciated that any number of inflatable and/or fixed sized bladders may be utilized dependent upon design considerations. Additionally, it should be appreciated that in some embodiments the first bladder, the second bladder, and/or multiple bladders may be arranged in the form of a single bladder with multiple layers and multiple compartments.
Therefore, embodiments of the invention are related to an improved finger cuff comprising a plurality of bladders. With the plurality of bladders, patient comfort is improved due to a better fit of the cuff with the finger shape, especially around the knuckles. Measurement accuracy may be improved due to a better and faster pressure transfer from the bladder to the finger. When the total volume of the bladders is partially filled with an incompressible medium (e.g., a fluid such as water or gel), the volume in the inflatable part of the bladder can be smaller, and the pressure in the finger cuff can be more easily controlled, delivering an even higher measurement accuracy. Furthermore, with the plurality of bladders, measurement accuracy is less susceptible to application errors because at least one bladder is used to fill up the gap between the finger and the finger cuff prior to the measurement. Moreover, a finger cuff with a plurality of bladders as described above does not have to be conically shaped, thus it can be worn in either orientation. The tightness of the finger cuff also becomes less critical.
It should be appreciated that aspects of the invention previously described may be implemented in conjunction with the execution of instructions by processors, circuitry, controllers, control circuitry, etc. As an example, control circuity may operate under the control of a program, algorithm, routine, or the execution of instructions to execute methods or processes in accordance with embodiments of the invention previously described. For example, such a program may be implemented in firmware or software (e.g. stored in memory and/or other locations) and may be implemented by processors, control circuitry, and/or other circuitry, these terms being utilized interchangeably. Further, it should be appreciated that the terms processor, microprocessor, circuitry, control circuitry, circuit board, controller, microcontroller, etc., refer to any type of logic or circuitry capable of executing logic, commands, instructions, software, firmware, functionality, etc., which may be utilized to execute embodiments of the invention.
The various illustrative logical blocks, processors, modules, and circuitry described in connection with the embodiments disclosed herein may be implemented or performed with a general purpose processor, a specialized processor, circuitry, a microcontroller, 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 processor may be a microprocessor or any conventional processor, controller, microcontroller, circuitry, or state machine. A processor may 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.
The steps of a method or algorithm described in connection with the embodiments disclosed herein may be embodied directly in hardware, in a software module/firmware executed by a processor, or any combination thereof. A software module may reside in RAM memory, flash memory, ROM memory, EPROM memory, EEPROM memory, registers, hard disk, a removable disk, a CD-ROM, or any other form of storage medium known in the art. An exemplary storage medium is coupled to the processor such the processor can read information from, and write information to, the storage medium. In the alternative, the storage medium may be integral to the processor.
The previous description of the disclosed embodiments is provided to enable any person skilled in the art to make or use the present invention. Various modifications to these embodiments will be readily apparent to those skilled in the art, and the generic principles defined herein may be applied to other embodiments without departing from the spirit or scope of the invention. Thus, the present invention is not intended to be limited to the embodiments shown herein but is to be accorded the widest scope consistent with the principles and novel features disclosed herein.
This application claims priority to U.S. Provisional Patent Application No. 62/510,557, filed May 24, 2017, the entire contents of which are incorporated herein by reference.
Number | Date | Country | |
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62510557 | May 2017 | US |