This disclosure relates to a disposable fluid circuit with a thermochromic indicator.
Dialysis is a treatment used to support a patient with insufficient renal function. The two principal dialysis methods are hemodialysis and peritoneal dialysis.
During hemodialysis (“HD”), the patient's blood is passed through a dialyzer of a dialysis machine while also passing a dialysis solution or dialysate through the dialyzer. A semipermeable membrane in the dialyzer separates the blood from the dialysate within the dialyzer and allows diffusion and osmosis exchanges to occur between the dialysate and the blood flow. These exchanges across the membrane result in the removal of waste products and toxins.
During peritoneal dialysis (“PD”), a patient's peritoneal cavity is periodically infused with a sterile aqueous solution, referred to as a PD solution or dialysate. The membranous lining of the patient's peritoneum acts as a natural semi-permeable membrane that allows diffusion and osmosis exchange to take place between the solution and the blood stream. These exchanges across the patient's peritoneum result in the removal of waste products.
Hemodialysis treatments typically occur several times a week in a clinic or home environment, whereas peritoneal dialysis treatments occur several times a day and are typically completed in a home environment (e.g., overnight while a patient is asleep).
During dialysis, fluids (e.g., dialysate and blood) flow through disposable fluid circuits. While the disposable nature of the fluid circuits helps to reduce contamination risks for a patient, it quickly becomes prohibitively expensive to include electronics (e.g., sensors) in these disposable fluid circuits. However, monitoring and controlling the temperature of fluid flowing through these circuits is vital to an effective dialysis treatment. The fluid circuits described herein present an elegant and cost-effective approach to temperature control by incorporating thermochromic indicators into a traditional disposable fluid circuit. In some implementations, the changes to the thermochromic material may be sensed using an optical sensor and a processor to detect and interpret data. In other implementations, the color change may be visible to a patient, nurse or caregiver to give an indication of the temperature range of a medical fluid flowing through the circuit. Temperature control components, (e.g., a fluid heater), can then be managed based on a detected color change.
Implementations can include one or more of the following features.
In one aspect of the invention, a dialysis tubing set includes at least one fluid line configured to connect a dialysis fluid source and a pump of a dialysis machine; and a flow chamber connected to the at least one fluid line, the flow chamber having a thermochromic material configured to change color when exposed to a specified temperature range.
In another aspect of the invention, a dialysis cassette includes a rigid base defining a recessed region; a flexible membrane attached to the base in a manner such that the flexible membrane, when pressed against the base, cooperates with a portion of the base defining the recessed region to form a pump chamber having an inlet and an outlet port; a thermochromic film attached to the flexible membrane and configured to change color when exposed to a specified temperature range; and tubing connectors positioned along an edge of the cassette, the tubing connectors being configured to attach to corresponding connectors of a dialysis machine.
In yet another aspect of the invention, a dialysis system includes a dialysis machine having an optical sensor, and a disposable tubing set. The disposable tubing set includes at least one fluid line configured to connect a dialysis fluid source and a pump of a dialysis machine, and a flow chamber connected to the at least one fluid line and aligned with the optical sensor, the flow chamber having a thermochromic material configured to change color when exposed to a specified temperature range.
In another aspect of the invention, a method includes: flowing fluid through a disposable fluid set, detecting a color change of the thermochromic material; and determining, using the detected color change, a temperature of the fluid flowing through the disposable fluid line set. The disposable fluid set includes a rigid base defining a recessed region, a flexible membrane attached to the base in a manner such that the flexible membrane, when pressed against the base, cooperates with a portion of the base defining the recessed region to form a pump chamber having an inlet and an outlet port, a thermochromic film attached to the flexible membrane and configured to change color when exposed to a specified temperature range, and one or more tubing connectors positioned along an edge of the cassette, the tubing connectors being configured to attach to corresponding connectors of a dialysis machine
In some implementations, the thermochromic material is configured to remain visible to a user.
In certain implementations, the tubing set is configured to be aligned with an optical sensor of a dialysis machine.
In some implementations, the optical sensor is a color sensor.
In certain implementations, the thermochromic material includes at least two thermochromic elements each configured to change color at a different temperature.
In some implementations, each thermochromic element is positioned on a different side of the flow chamber.
In certain implementations, a first thermochromic component is positioned above a second thermochromic component.
In some implementations, the thermochromic material is configured as an insert and is positioned within the at least one fluid line.
In certain implementations, the at least one fluid line includes a first fluid path through a central channel of the insert and a second fluid path between the insert and the at least one fluid line.
In some implementations, the specified temperature range is between 35-39° C.
In certain implementations, the thermochromic material is positioned along an external surface of the flow chamber.
In some implementations, the dialysis machine is a hemodialysis machine.
In certain implementations, the dialysis machine is a peritoneal dialysis machine.
In some implementations, the thermochromic film is co-molded with the flexible membrane.
In certain implementations, the thermochromic film covers at least 75% of an exterior surface area of the flexible membrane.
In some implementations, the system further includes further a light source positioned to align with the flow chamber of the disposable tubing set.
In certain implementations, the flow chamber is positioned outside the dialysis machine.
In some implementations, the method further includes adjusting the temperature of the flowing fluid based on the determined temperature.
In certain implementations, the method further includes directing light transmitted through the thermochromic film and detecting a color change of the thermochromic material in response to the light.
Embodiments can include one or more advantages.
The tubing sets and flow chambers described herein are designed to be used in medical systems (e.g., hemodialysis and peritoneal dialysis systems). These tubing sets and flow chambers can increase patient comfort and treatment compliance by incorporating a thermochromic material that provides a visible indication of the temperature of the fluid flowing through the tubing set. These tubing sets and chambers are versatile and can work across different medical systems while also remaining affordable for patients because, for example, no electronic component or sensor is added to the disposable fluid line set. What is more, these tubing sets and flow chambers can additionally or alternatively be used to verify a dialysis cassette or tubing set is and remains correctly attached to a dialysis machine.
In the heater unit of an HD machine, or along any flow path, the thermochromic material can be used to display a color change for the correct temperature, a temperature that is too high, or temperature that is not hot enough. By setting the range (set point) at which the thermochromic material change can be used for one of the three cases.
The details of one or more implementations are set forth in the accompanying drawings and the description below. Other aspects, features, and advantages will be apparent from the description and drawings, and from the claims.
The present specification describes dialysis systems and disposable fluid line sets incorporating thermochromic elements. These thermochromic elements alone or in combination with durable portions of a dialysis machine provide a relatively low-cost and desirable feature that can help promote dialysis treatments at specified temperatures and help improve the effectiveness of dialysis treatments. Although peritoneal dialysis (PD) systems and cassette based fluid line sets are principally discussed herein, it is noted that the concepts described herein may be used with other types of medical devices and/or dialysis systems, including, for example, hemodialysis (HD) systems, HD fluid line sets, and non-cassette based fluid line sets.
The PD system 100 includes a PD machine (also referred to as a PD cycler) 102 seated on a cart 104, a housing 106, a door 108, and a cassette interface 110 that contacts a disposable PD cassette 112 when the cassette 112 is disposed within a cassette compartment 117 formed between the cassette interface 110 and the closed door 108. The PD system 100 can also include a remote database 134 and one or more controls 141 and 143.
Referring to
Dialysate bags 122 are suspended from fingers on the sides of the cart 104, and a heater bag 124 is positioned in the heater tray 116. The dialysate bags 122 and the heater bag 124 are connected to the cassette 112 via dialysate bag lines 126 and a heater bag line 128, respectively. The dialysate bag lines 126 can be used to pass dialysate from dialysate bags 122 to the cassette 112 during use, and the heater bag line 128 can be used to pass dialysate back and forth between the cassette 112 and the heater bag 124 during use.
In addition, a patient line 130 and a drain line 132 are connected to the cassette 112. The patient line 130 can be connected to a patient's abdomen via a catheter and can be used to pass dialysate back and forth between the cassette 112 and the patient's peritoneal cavity during use. The drain line 132 can be connected to a drain or drain receptacle and can be used to pass dialysate from the cassette 112 to the drain or drain receptacle during use.
The PD machine 102 includes a control unit 140 (e.g. a processor) and one or more sensors, e.g., a color sensor. The PD machine 102 also includes a color sensor (not shown) that is positioned adjacent to at least a portion of the flow chamber 101. The control unit 140 can receive signals from and transmit signals to the touch screen display 118 and/or the control panel 120, and the color sensor (not shown), and the various other components of the PD system 100.
The thermochromic layer may be formed of a temperature sensitive polymer that reversibly changes color when exposed to specific temperature ranges. The thermochromic layer may be used in injection molding plastics including: polypropylene, polystyrene, polyethylene, ABS, PVC, and PC. Activation temperatures can range from −10° C. to 69° C. Suitable materials are discussed in Seeboth, et al. “First Examples of Non-Toxic Thermochromic Polymer Material—Based on a Novel Mechanism” J. Mater. Chem. C, 2013, 1, 2811-2816, the contents of which are incorporated by reference in their entirety.
In some examples, the thermochromic elements 504-507 are arranged in a specific order to detect a specific temperature range (e.g., 30° C. to 41° C.).
The cassette 112 can be manufactured using suitable molding techniques. As part of the molding process, the thermochromic material is co-molded with a component of the cassette 112 or another portion of a disposable fluid line set. For example, thermochromic components could be over molded or bonded to a substrate by ultrasonic welding or using adhesives.
During use, fluid flows along the fluid path 701 and through an inlet 706 and an outlet 708. Light 716 from the light source 714 will pass through the first thermochromic layer 712 and the second thermochromic layer 710. Information representing transmitted light 718 is detected by the optical sensor 702. Based on the arrangement of the thermochromic layers, the transmitted light 718 is red if the fluid temperature reaches 39° C., blue if the fluid temperature is between 35° C. and 39° C., and purple if the fluid temperature exceeds 39° C.
Methods of Use
Alternative Implementations
The examples described herein can be implemented in a variety of ways without departing from the scope of the specification.
While a thermochromic element is generally described as attached to a flow chamber, other implementations are possible. For example, the thermochromic element 406 can be alternatively or additionally integrated with the flow chamber 401. When integrated with the flow chamber 401, the thermochromic element is in direct contact with the medium being monitored which can yield a faster and/or more accurate response to the temperature change. In addition, manufacturing efficiencies can be realized.
While the blue surface is generally shown adjacent to the optical sensor and the red surface is shown adjacent to the light source 714 in
Elements of different implementations described herein may be combined to form other implementations not specifically set forth above. Elements may be left out of the structures described herein without adversely affecting their operation. Furthermore, various separate elements may be combined into one or more individual elements to perform the functions described herein.
Various embodiments discussed herein may be combined with each other in appropriate combinations with the system described herein. Additionally, in some instances, the order of steps in a method may be modified, where appropriate. Further, various aspects of the systems described herein may be implemented using software, hardware, a combination of software and hardware and/or other computer-implemented modules or devices having the described features and performing the described functions.
Software implementations of aspects of the system described herein may include executable code that is stored in a computer-readable medium and executed by one or more processors. The computer-readable medium may include volatile memory and/or non-volatile memory, and may include, for example, a computer hard drive, ROM, RAM, flash memory, portable computer storage media such as a CD-ROM, a DVD-ROM, a flash drive and/or other drive with, for example, a universal serial bus (USB) interface, and/or any other appropriate tangible or non-transitory computer-readable medium or computer memory on which executable code may be stored and executed by a processor. The system described herein may be used with any appropriate operating system.
Several implementations have been described. Nevertheless, it will be understood that various modifications may be made without departing from the spirit and scope of the description. Accordingly, other implementations are within the scope of the following claims.