SYSTEM FOR DRAWING FLUID FROM A BAG UNDER SUB-AMBIENT CONDITIONS
20230088574 · 2023-03-23
Inventors
- Paul M. DiPerna (Escondido, CA, US)
- Marc D. Goldman (San Diego, CA, US)
- David Neese (Escondido, CA, US)
- Patrick Hearty (Vista, CA, US)
Cpc classification
A61M5/1483
HUMAN NECESSITIES
A61M5/152
HUMAN NECESSITIES
A61M5/14228
HUMAN NECESSITIES
International classification
Abstract
A portable system and method for infusing liquid medicaments to a patient through an elastomeric fluid channel includes an airtight pressure shell for holding a collapsible bag of the fluid medicament to be infused. A pressure sensor connected to the pressure shell monitors decreases below ambient pressure inside the shell to determine when the sub-ambient pressure becomes insufficient to continue assisting the withdrawal of fluid from the collapsible bag to an external pinch/squeeze unit. An equilibration valve is synchronized with the pinch/squeeze unit to reestablish ambient pressure in the pressure shell for continued operation as the pinch/squeeze unit acts to sequentially push liquid medicament for infusion into the patient.
Claims
1. A system for cyclically drawing a liquid medicament from a collapsible bag under sub-ambient pressure conditions in a coordinated synchronization with operational pressures which comprises: a collapsible bag for holding the liquid medicament, wherein the collapsible bag is connected in fluid communication with an elastomeric fluid channel; a pressure shell having an airtight chamber for holding the collapsible bag therein with the fluid channel extending outwardly from the pressure shell; a pressure sensor mounted on the pressure shell for sensing a sub-ambient pressure p.sub.c in the airtight chamber; an equilibration valve mounted on the pressure shell; a mechanism for creating an operational under pressure p.sub.u in the elastomeric fluid channel, wherein p.sub.u<p.sub.c to draw liquid medicament from the collapsible bag and into the elastomeric fluid channel, and for alternately creating an operational over pressure p.sub.o in the elastomeric fluid channel, wherein p.sub.o>p.sub.u to dispense liquid medicament from the elastomeric fluid channel; and a controller connected to the pressure sensor for determining a change of pressure Δp.sub.c in the pressure shell during each cycle, wherein the controller is connected to the equilibration valve to reestablish ambient pressure p.sub.amb in the pressure chamber with a coordinated synchronization with p.sub.o during each cycle, and further wherein the controller determines whether a change in Δp.sub.c/Δt is compliant with a predetermined pressure profile.
2. The system of claim 1 wherein the mechanism is a pinch/squeeze mechanism comprising: a fluid control unit including a rotatable camshaft, wherein the fluid control unit includes an upstream valve, a piston and a downstream valve aligned along the camshaft to cyclically manipulate the elastomeric fluid channel through a plurality of configurations, in a predetermined sequence, for creating the under pressure p.sub.u in the elastomeric fluid channel during a duty cycle; and a motor engaged with the camshaft for cyclically rotating the camshaft though 360° during the duty cycle at a controlled angular velocity ω.
3. The system of claim 2 wherein the elastomeric fluid channel is configured to draw liquid medicament from the collapsible bag and into the elastomeric fluid channel when the upstream valve is open, the downstream valve is closed and the piston is being laterally withdrawn from the elastomeric fluid channel, with a concomitant decrease in Δp.sub.c in the pressure shell until the end of each duty cycle when the upstream valve is closed and the downstream valve is open to dispense fluid medicament from the elastomeric fluid channel as the piston is laterally advanced against the elastomeric fluid channel.
4. The system of claim 3 wherein the controller is interconnected between the motor and the equilibration valve to synchronously operate the equilibration valve electronically with impulses from the controller corresponding with the rotation of the camshaft by the motor while liquid medicament is being dispensed from the elastomeric fluid channel.
5. The system of claim 3 wherein the motor is interconnected between the controller and the equilibration valve, wherein the equilibration valve is engaged with the camshaft to synchronously operate the equilibration valve mechanically with the rotation of the camshaft by the motor while liquid medicament is being dispensed from the elastomeric fluid channel.
6. The system of claim 1 wherein the predetermined pressure profile is a plurality of successive pressure duty cycles measured in the airtight chamber of the pressure shell, wherein each duty cycle has a same duration Δt and starts with the ambient pressure P.sub.amb established by the equilibration valve, the profile then proceeds through the duty cycle with a decreasing value of pressure in p.sub.c in the airtight chamber during Δt at a rate Δp.sub.c/Δt and ends at a time determined by the controller.
7. The system of claim 6 wherein the end time of the duty cycle is dependent on the rotational velocity ω of the camshaft.
8. The system of claim 6 wherein Δp.sub.c/Δt=0 indicates an occlusion when an operation of the system is to be stopped.
9. A system for cyclically drawing a liquid medicament from a collapsible bag under sub-ambient pressure conditions in a coordinated synchronization with operational pressures which comprises: a pressure sensor for measuring an air pressure p.sub.c inside an airtight chamber of a pressure shell while a collapsible bag filled with a liquid medicament is held in the airtight chamber; an elastomeric fluid channel extending outwardly from the pressure shell, wherein the elastomeric fluid channel is connected in fluid communication with the collapsible bag inside the airtight chamber; a fluid control unit engaged with the elastomeric fluid channel outside the pressure shell, wherein the fluid control unit includes a rotatable camshaft on which an upstream valve, a piston and a downstream valve are aligned to cyclically manipulate the elastomeric fluid channel through a plurality of configurations, in a predetermined sequence to create a predetermined pressure profile in the airtight chamber during a duty cycle; a motor engaged with the camshaft for cyclically rotating the camshaft though 360° during the duty cycle at a controlled angular velocity ω to create an operational under pressure p.sub.u in the elastomeric fluid channel, wherein p.sub.u is less than p.sub.c (p.sub.u<p.sub.c) to draw liquid medicament from the collapsible bag during a draw phase of the duty cycle and thereafter dispense the liquid medicament from the elastomeric fluid channel with an operational over pressure p.sub.o during a dispense phase of the duty cycle; and an equilibration valve to reestablish ambient pressure p.sub.amb in the pressure shell during the dispense phase of the duty cycle.
10. The system of claim 9 further comprising a controller connected to the pressure sensor for determining a change of pressure Δp.sub.c in the pressure shell during each duty cycle, wherein the controller is connected to the equilibration valve to reestablish ambient pressure p.sub.amb in the pressure shell during each cycle, and further wherein the controller determines whether a change in Δp.sub.c/Δt is compliant with a predetermined pressure profile.
11. The system of claim 10 wherein the elastomeric fluid channel is configured to draw liquid medicament from the collapsible bag and into the elastomeric fluid channel when the upstream valve is open, the downstream valve is closed and the piston is being laterally withdrawn from the elastomeric fluid channel, with a concomitant decrease in Δp.sub.c in the pressure shell until the end of each duty cycle when the upstream valve is closed and the downstream valve is open to dispense fluid medicament from the elastomeric fluid channel as the piston is laterally advanced against the elastomeric fluid channel.
12. The system of claim 11 wherein the controller is interconnected between the motor and the equilibration valve to synchronously operate the equilibration valve electronically with impulses from the controller corresponding with the rotation of the camshaft by the motor while liquid medicament is being dispensed from the elastomeric fluid channel.
13. The system of claim 12 wherein the motor is interconnected between the controller and the equilibration valve, wherein the equilibration valve is engaged with the camshaft to synchronously operate the equilibration valve mechanically with the rotation of the camshaft by the motor while liquid medicament is being dispensed from the elastomeric fluid channel.
14. The system of claim 11 wherein the predetermined pressure profile is a plurality of successive pressure duty cycles measured in the airtight chamber of the pressure shell, wherein each duty cycle has a dispense phase wherein the equilibration valve is activated, and a draw phase wherein the equilibration valve is deactivated.
15. The system of claim 14 wherein the time duration of the duty cycle is dependent on the rotational velocity ω of the camshaft, and when Δp.sub.c/Δt does not comply with the pressure profile during the draw phase of the duty cycle, an occlusion is indicated requiring a stop to the operation of the system.
16. A system for following a pressure profile to cyclically draw a liquid medicament from a collapsible bag under sub-ambient pressure conditions in a coordinated synchronization with operational pressures which comprises: a pressure shell having an airtight chamber for holding the collapsible bag therein under a sub-ambient pressure, p.sub.c, with an elastomeric fluid channel in fluid communication with the collapsible bag extending outwardly from the pressure shell, and wherein a pressure sensor and an equilibration valve mounted on the pressure shell; a fluid control unit, wherein the fluid control unit is engaged with the elastomeric fluid channel and includes an upstream valve, a piston and a downstream valve aligned along the camshaft to cyclically manipulate the elastomeric fluid channel through a plurality of configurations, in a predetermined sequence, to create an operational over pressure p.sub.o in the elastomeric fluid channel during a dispense phase of a duty cycle, and an operational under pressure p.sub.u in the elastomeric fluid channel during a draw phase of the duty cycle, wherein p.sub.o>p.sub.c>p.sub.u; a controller connected to the fluid control unit engaged with the elastomeric fluid channel, and to the pressure sensor and the equilibration valve mounted on the pressure shell, wherein the controller is preprogrammed with the pressure profile to configure the fluid control unit with a closed upstream valve and an open downstream valve during the dispense phase of the duty cycle as the piston is advanced against the elastomeric fluid channel to create p.sub.o therein to dispense liquid medicament therefrom, and to configure the fluid control unit with an open upstream valve and a closed downstream valve during the draw phase of the duty cycle as the piston is withdrawn from the elastomeric fluid channel to create p.sub.u in the elastomeric fluid channel to draw liquid medicament from the collapsible bag and into the elastomeric fluid channel, and further wherein the equilibration valve is activated during the dispense phase of the duty cycle to reset an ambient pressure p.sub.amb in the airtight chamber.
17. The system of claim 16 further comprising a motor with a rotatable shaft, wherein the shaft is engaged with the fluid control unit and is rotated at an angular velocity ω to establish a system duty cycle with a rotation of the shaft through 360°.
18. The system of claim 17 wherein the controller is interconnected between the motor and the equilibration valve to synchronously operate the equilibration valve electronically with impulses from the controller corresponding with the rotation of the camshaft by the motor while liquid medicament is being dispensed from the elastomeric fluid channel.
19. The system of claim 17 wherein the motor is interconnected between the controller and the equilibration valve, wherein the equilibration valve is engaged with the camshaft to synchronously operate the equilibration valve mechanically with the rotation of the camshaft by the motor while liquid medicament is being dispensed from the elastomeric fluid channel.
20. The system of claim 17 wherein the time duration of the duty cycle is dependent on the rotational velocity ω of the camshaft, and when Δp.sub.c/Δt does not comply with the pressure profile during the draw phase of the duty cycle, an occlusion is indicated requiring a stop to the operation of the system.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0027] The novel features of this invention, as well as the invention itself, both as to its structure and its operation, will be best understood from the accompanying drawings, taken in conjunction with the accompanying description, in which similar reference characters refer to similar parts, and in which:
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
[0035]
[0036]
DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0037] Referring initially to
[0038]
[0039] Still referring to
[0040] As intended for the present invention, the pump 10 is designed for an operational engagement with a disposable infusion unit that includes: a collapsible bag 44 for holding the fluid medicament that is to be infused to the patient, a cannula needle set 46, and an elastomeric fluid channel 48 that is connected to establish fluid communication between the collapsible bag 44 and the cannula needle set 46. Structurally, the collapsible bag 44 is dimensioned to be received into a pressure chamber 50 that is created when the pressure shell 12 is closed.
[0041] Several important structural/functional characteristics of the pressure chamber 50 must be satisfied when the pressure chamber 50 is closed. For one, the pressure chamber 50 must be airtight when the pressure shell 12 is closed. For another, the air volume of the pressure chamber 50 inside a closed pressure shell 12 must be greater than the volume of the collapsible bag 44, when the collapsible bag 44 is filled to its full capacity. This is done to optimize the efficacy of an external sub-ambient pressure in the pressure chamber 50 against the collapsible bag 44 during an operation of the pump 10. Further, the chamber pressure P.sub.c, as measured by the pressure sensor 16 inside the pressure chamber 50, must be continuously monitored by the controller 20 during an operation of the pump 10.
[0042] With consideration of the elastomeric fluid channel 48, it is important that the fluid channel 48 be made of an elastomeric material which has a modulus of elasticity λ.sub.e that causes a relatively rapid transition (rebound/reset) from a stressed configuration back to an unstressed configuration. Specifically, the elastomeric fluid channel 48 is structurally formed with a lumen to transport fluid medicament from the collapsible bag 44 to the cannula needle set 46. In an operation of the present invention, this requires that a portion of the fluid channel 48 be cyclically stressed (collapsed) and unstressed (dilated) by a radially acting, reciprocating force ±F as the lumen of the fluid channel 48 is mechanically collapsed (+F) by the piston unit 32 and dilated by elastomeric forces (−F) from the fluid channel 48. From an operational perspective, this action causes the elastomeric material of the fluid channel 48 to generate a force (−F) that reopens the lumen of the fluid channel 48, and assists the force P.sub.c in the pressure chamber 50 in drawing fluid medicament from the collapsible bag 44 and into the elastomeric fluid channel 48.
[0043] A pressure profile in accordance with the present invention is shown in
[0044] With reference to
[0045] In
[0046]
[0047]
[0048] Finally, in
[0049] An operation of the pump 10, in accordance with the pressure profile 26, will be best appreciated with reference to the logic flow chart 60 shown in
[0050] At the start of an operation of the pump 10, inquiry block 66 determines whether the chamber pressure P.sub.c in the pressure chamber 50 is OK. According to inquiry block 66, if the answer is YES, the operation continues. However, if the answer is NO, inquiry block 68 determines whether P.sub.c is above P.sub.amb. From this inquiry, if P.sub.c>P.sub.amb an occlusion may be indicated and, in accordance with action block 70, the pump 10 should be stopped.
[0051] On the other hand, if P.sub.c<P.sub.amb, inquiry block 72 determines whether P.sub.c is too low. Stated differently, the inquiry block 72 determines whether P.sub.c is within the operating range 54 established by the pressure profile 26 (see
[0052] When the response of inquiry block 72 is YES, the action block 76 indicates that the controller 20 will activate the equilibration valve 14 on pressure shell 12. This is done to equilibrate P.sub.c in the pressure chamber 50 of pressure shell 12 with the ambient pressure P.sub.amb. The next determination for the operation of the pump 10 is indicated by inquiry block 78, where V.sub.i is evaluated in the context of the duty cycle Δt. Specifically, this evaluation begins with P.sub.c=P.sub.amb when the response of inquiry block 78 is YES, and it continues through subsequent successive duty cycles Δt for as long as inquiry block 72 indicates the pressure profile 26 is satisfied. Thus, it is inquiry block 78 that determines when P.sub.c requires equilibration.
[0053] A supplemental feature for the operation of a pump 10 provides for a coordinated synchronization between an operation of the equilibration valve 14, to maintain sub-ambient pressures p.sub.c in the pressure chamber 50, and the creation of operational pressures in the elastomeric fluid channel 48 established by the pinch/squeeze mechanism 18. As shown in
[0054] As shown, the pressure profile 80 includes both a dispense phase 82 and a draw phase 84. The equilibration valve 14 must not be activated during the draw phase 84. Instead, activation of the equilibration valve 14 must be made sometime during the dispense phase 82. In the event, it is necessary that pump activity during the phases 82 and 84 be coordinated.
[0055] In the dispense phase 82 of the pressure profile 80, the pinch/squeeze mechanism 18 creates an operational over pressure p.sub.o in the elastomeric fluid channel 48 as the drive piston 36 is pushed against the fluid channel 48. Also, during the dispense phase 82, the upstream valve 34 pinches the elastomeric fluid channel 48 to isolate the pressure shell 12 from the elastomeric fluid channel 48. As shown in
[0056] On the other hand, in the draw phase 84 of the pressure profile 80, the pinch/squeeze mechanism 18 is configured with the downstream valve 38 closed and the upstream valve 34 open. Thus, as the drive piston 36 is withdrawn to unstress the resilient elastomeric fluid channel 48, a dosage volume V.sub.i is drawn into the elastomeric fluid channel 48 (see
[0057]
[0058] In
[0059] In
[0060] While the particular System for Drawing Fluid From a Bag Under Sub-Ambient Conditions as herein shown and disclosed in detail is fully capable of obtaining the objects and providing the advantages herein before stated, it is to be understood that it is merely illustrative of the presently preferred embodiments of the invention and that no limitations are intended to the details of construction or design herein shown other than as described in the appended claims.