INFUSION PUMPS AND METHODS WITH SHAPE MEMORY WIRE DRIVEN SYRINGE MECHANISM
20230047034 · 2023-02-16
Inventors
Cpc classification
A61M5/14244
HUMAN NECESSITIES
A61M5/16886
HUMAN NECESSITIES
A61M5/16827
HUMAN NECESSITIES
International classification
Abstract
Disclosed herein are apparatuses and methods for a user-wearable infusion pump actuated with a shape memory alloy (SMA) wire. Embodiments enable an SMA wire driven infusion pump using a single length of SMA wire to provide multiple pulse sizes and corresponding medicament dispensing sizes. The multiple pulse sizes can include a larger pulse size for larger volumes to limit battery drain but smaller pulse sizes for precision of delivery.
Claims
1. A user-wearable infusion pump, comprising: a housing; a reservoir configured to contain a medicament disposed in the housing; a delivery mechanism configured to deliver medicament from the reservoir to a user; an actuation wire configured to be energized to actuate the delivery mechanism to deliver medicament from the reservoir to a user.
2. The user-wearable infusion pump of claim 1, wherein the actuation wire defines two electrical paths that are separately energizable.
3. The user-wearable infusion pump of claim 2, wherein the two electrical paths are configured to provide two different predetermined medicament dispense sizes with the delivery mechanism.
4. The user-wearable infusion pump of claim 2, wherein each electrical path is defined by corresponding electrical contacts that are energized to actuate the delivery mechanism.
5. The user-wearable infusion pump of claim 2, wherein the actuation wire is a single continuous wire.
6. The user-wearable infusion pump of claim 1, wherein the actuation wire comprises a shape memory material such that energization of the actuation wire causes the actuation wire to shorten to actuate the delivery mechanism.
7. The user-wearable infusion pump of claim 1, wherein the delivery mechanism comprises a drive gear configured to be rotated to actuate the delivery mechanism.
8. The user-wearable infusion pump of claim 7, wherein the delivery mechanism further comprises a frame disposed around the drive gear, the frame including a flexible member having a drive tooth configured to interface with the drive gear to rotate the drive gear.
9. The user-wearable infusion pump of claim 8, wherein the actuation wire is configured to pull the flexible member down to causes the drive tooth to rotate the drive gear a predetermined amount.
10. The user-wearable infusion pump of claim 7, wherein the delivery mechanism further includes an encoder having a plurality of teeth that is rotated when the drive gear rotates to track accuracy of medicament delivery.
11. A user-wearable infusion pump, comprising: a housing; a reservoir configured to contain a medicament disposed in the housing; and a delivery mechanism configured to deliver medicament from the reservoir to a user, wherein the delivery mechanism is configured to provide two different predetermined medicament dispense sizes.
12. The user-wearable infusion pump of claim 11, further comprising an actuation wire configured to be energized to actuate the delivery mechanism to deliver medicament from the reservoir to a user.
13. The user-wearable infusion pump of claim 12, wherein the actuation wire defines two electrical paths corresponding to the two different predetermined medicament dispense sizes.
14. The user-wearable infusion pump of claim 13, wherein each electrical path is defined by corresponding electrical contacts that are energized to actuate the delivery mechanism.
15. The user-wearable infusion pump of claim 12, wherein the actuation wire is a single continuous wire.
16. The user-wearable infusion pump of claim 12, wherein the actuation wire comprises a shape memory material such that energization of the actuation wire causes the actuation wire to shorten to actuate the delivery mechanism.
17. The user-wearable infusion pump of claim 11, wherein the delivery mechanism comprises a drive gear configured to be rotated to actuate the delivery mechanism.
18. The user-wearable infusion pump of claim 17, wherein the delivery mechanism further comprises a frame disposed around the drive gear, the frame including a flexible member having a drive tooth configured to interface with the drive gear to rotate the drive gear.
19. The user-wearable infusion pump of claim 18, wherein the flexible member is configured to be pulled down to cause the drive tooth to rotate the drive gear a predetermined amount.
20. The user-wearable infusion pump of claim 17, wherein the delivery mechanism further includes an encoder having a plurality of teeth that is rotated when the drive gear rotates to track accuracy of medicament delivery.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0012] The invention may be more completely understood in consideration of the following detailed description of various embodiments of the invention in connection with the accompanying drawings, in which:
[0013]
[0014]
[0015]
[0016]
[0017] While the invention is amenable to various modifications and alternative forms, specifics thereof have been shown by way of example in the drawings and will be described in detail. It should be understood, however, that the intention is not to limit the invention to the particular embodiments described. On the contrary, the intention is to cover all modifications, equivalents, and alternatives falling within the spirit and scope of the invention.
DETAILED DESCRIPTION OF THE INVENTION
[0018] The following detailed description should be read with reference to the drawings in which similar elements in different drawings are numbered the same. The drawings, which are not necessarily to scale, depict illustrative embodiments and are not intended to limit the scope of the invention.
[0019]
[0020] A shape memory alloy (SMA) wire 108, such as Nitinol, can be crimped to and extend from a plurality of crimp connectors 110 and be routed around a plurality of pulleys 112 within housing 102. In embodiments, SMA wire 108 can be configured as a single continuous wire. Referring to
[0021] A delivery mechanism frame 124 can be disposed around delivery mechanism 115 to hold the delivery mechanism in place and axially constrain the delivery mechanism. The delivery mechanism 115 of pump 100 includes a drive gear 116 that is rotated when SMA wire 108 is actuated and a syringe body 126. Delivery mechanism frame 124 can include a flexible member 128 extending around syringe body 126 and along both sides of drive gear 116 to define a living hinge that provides the actuation force. Referring in particular to
[0022] Referring now to
[0023] Flexible member 128 can also provide the spring force required to reset the drive mechanism after actuation. When the SMA wire 108 is de-energized, the wire 108 returns to its initial, longer length and the force pulling down on pulley 112a and flexible member 128 is released, which causes the flexible member to flex back up to its original position. An anti-back-drive tooth 120 of delivery mechanism frame 124 can interface with teeth to prevent the drive gear 116 from rotating in the opposite direction and back-driving during this reset phase. Delivery mechanism frame 124 can also function to retain the pulleys around which the SMA wire is routed in a plurality of pulley supports 132. Delivery mechanism frame 124 can further include a one-way crimp stop 111a that prevents the wire crimp 110a from moving in one direction when a smaller pulse is desired, but allows the crimp to move in the other direction when the larger pulse is desired, as will be discussed in more detail below.
[0024] Patch pump can be actuated to give a consistent volume of fluid per electrical pulse at regular intervals such as every five minutes such that one or more pulses is required to deliver the desired volume of medicament each interval. Often the desired volume at a given time is more than a single pulse so embodiments herein are provided with an optionally larger pulse size so that the number of actuations can be reduced to limit the drain on the batteries, but a small pulse size is still enabled so that precision of delivery can be maintained.
[0025] Referring to
[0026] The different electrical paths can be selectively actuated by energizing respective electrical contacts at the corresponding crimp connectors. Actuation of the shorter electrical path of
[0027] Pump 100 therefore allows for multiple pulse and delivery sizes in an SMA wire driven infusion pump using a single length of SMA wire. The ability to provide a second, larger dispense size results in fewer total actuations over the life of the pump which improves battery life and increases bolus rate of delivery. In one embodiment, use of two delivery sizes provides an approximately 40% increase in efficiency over use of a single delivery size. Use of a single length of SMA wire is also advantageous for reducing cost and complexity. In embodiments, patch pump can be assembled modularly to enable the pump to be assembled and tested prior to mating the PCBA which is desirable for manufacturability. Although described herein as having two different dispense sizes, it should be understood that embodiments contemplated herein could include more than two electrical paths that would define more than two dispense sizes.
[0028] Referring to
[0029] Embodiments of the present disclosure include components capable of and methods using wired and wireless transmission and receipt of signals for exchange of information and commands between and among any of the components as described herein, including, e.g., between a pump and a smartphone; among a pump, a CGM and a smartphone; between a dedicated remote controller and a pump; among a dedicated remote controller, a CGM and a pump; among a dedicated remote controller, a BGM and a pump, and other combinations as would be contemplated by those of skill in the art.
[0030] Although embodiments described herein may be discussed in the context of the controlled delivery of insulin, delivery of other medicaments, singly or in combination with one another or with insulin, including, for example, glucagon, pramlintide, etc., as well as other applications are also contemplated. Device and method embodiments discussed herein may be used for pain medication, chemotherapy, iron chelation, immunoglobulin treatment, dextrose or saline IV delivery, treatment of various conditions including, e.g., pulmonary hypertension, or any other suitable indication or application. Non-medical applications are also contemplated.
[0031] With regard to the above detailed description, like reference numerals used therein may refer to like elements that may have the same or similar dimensions, materials, and configurations. While particular forms of embodiments have been illustrated and described, it will be apparent that various modifications can be made without departing from the spirit and scope of the embodiments herein. Accordingly, it is not intended that the invention be limited by the forgoing detailed description.
[0032] The entirety of each patent, patent application, publication, and document referenced herein is hereby incorporated by reference. Citation of the above patents, patent applications, publications and documents is not an admission that any of the foregoing is pertinent prior art, nor does it constitute any admission as to the contents or date of these documents.
[0033] Also incorporated herein by reference in their entirety are commonly owned U.S. Pat. Nos. 6,999,854; 8,133,197; 8,287,495; 8,408,421 8,448,824; 8,573,027; 8,650,937; 8,986,523; 9,173,998; 9,180,242; 9,180,243; 9,238,100; 9,242,043; 9,335,910; 9,381,271; 9,421,329; 9,486,171; 9,486,571; 9,492,608; 9,503,526; 9,555,186; 9,565,718; 9,603,995; 9,669,160; 9,715,327; 9,737,656; 9,750,871; 9,867,937; 9,867,953; 9,940,441; 9,993,595; 10,016,561; 10,201,656; 10,279,105; 10,279,106; 10,279,107; 10,357,603; 10,357,606; 10,492,141; 10/541,987; 10,569,016; 10,736,037; 10,888,655; 10,994,077; 11,116,901; 11,224,693; 11,291,763; and 11,305,057 and commonly owned U.S. Patent Publication Nos. 2009/0287180; 2012/0123230; 2013/0053816; 2014/0276423; 2014/0276569; 2014/0276570; 2018/0071454; 2019/0240398; 2019/0307952; 2020/0206420; 2020/0261649; 2020/0329433; 2020/0368430; 2020/0372995; 2021/0001044; 2021/0113766; 2021/0154405; 2021/0353857; 2022/0062553; 2022/0139522 and 2022/0223250 and commonly owned U.S. patent applications Ser. Nos. 17/368,968; 17/587,412; 17/587,434; 17/587,468; 17/677,621; 17/729,464; 17/732,208; 17/878,681; and 17/879,959.
[0034] Modifications may be made to the foregoing embodiments without departing from the basic aspects of the technology. Although the technology may have been described in substantial detail with reference to one or more specific embodiments, changes may be made to the embodiments specifically disclosed in this application, yet these modifications and improvements are within the scope and spirit of the technology. The technology illustratively described herein may suitably be practiced in the absence of any element(s) not specifically disclosed herein. The terms and expressions which have been employed are used as terms of description and not of limitation and use of such terms and expressions do not exclude any equivalents of the features shown and described or portions thereof and various modifications are possible within the scope of the technology claimed. Although the present technology has been specifically disclosed by representative embodiments and optional features, modification and variation of the concepts herein disclosed may be made, and such modifications and variations may be considered within the scope of this technology.