SYRINGE ACTUATION SYSTEM
20180372076 ยท 2018-12-27
Inventors
Cpc classification
A61M2205/0288
HUMAN NECESSITIES
F03G7/065
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A61M5/31576
HUMAN NECESSITIES
A61M5/31511
HUMAN NECESSITIES
International classification
F03G7/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An actuator apparatus is provided. The actuator apparatus includes a slidable plunger with a remote end located proximate a reservoir within a vessel having an exit opening, a shape memory alloy (SMA) coil wound around the slidable plunger, and electronic circuitry connected to the SMA coil. Liquid may be provided to the reservoir via the exit opening, thereby sliding the slidable plunger away from the exit opening and expanding the SMA coil. Wherein when the SMA coil is expanded, electricity is provided via the electronic circuitry to the SMA coil to cause the SMA coil to return to a compressed configuration, moving slidable plunger within the vessel to force the liquid from the vessel via the exit opening.
Claims
1. An actuator apparatus, comprising: a slidable plunger comprising a remote end located proximate a reservoir within a vessel having an exit opening; a shape memory alloy (SMA) coil wound around the slidable plunger; and electronic circuitry connected to the SMA coil; wherein liquid may be provided to the reservoir via the exit opening, thereby sliding the slidable plunger away from the exit opening and expanding the SMA coil, and wherein when the SMA coil is expanded, electricity is provided via the electronic circuitry to the SMA coil to cause the SMA coil to return to a compressed configuration, moving the slidable plunger within the vessel to force the liquid from the vessel via the exit opening.
2. The actuator apparatus of claim 1, wherein the SMA coil is fixedly mounted to the slidable plunger.
3. The actuator apparatus of claim 1, wherein the electrical circuitry comprises a power source and a switch.
4. The actuator apparatus of claim 1, wherein the slidable plunger comprises a cylindrical tube base, and the SMA coil is fixedly mounted to the cylindrical tube base.
5. The actuator apparatus of claim 1, wherein the SMA coil is fixedly mounted to the vessel at a vessel end away from the exit opening.
6. The actuator apparatus of claim 1, wherein the SMA coil is formed from a nickel-titanium based alloy.
7. The actuator apparatus of claim 1, wherein liquid may be provided to the reservoir by: drawing the slidable plunger away from the exit opening, thereby drawing the liquid into the reservoir, or providing liquid through the exit opening using force.
8. An actuator apparatus, comprising: a slidable actuation member located within a vessel having an exit opening, wherein the slidable actuation member positioned a distance from the exit opening forms a reservoir within the vessel; a shape memory alloy (SMA) coil positioned in association with the slidable actuation member to move the slidable actuation member within the vessel; and electronic circuitry connected to the SMA coil; wherein liquid may be provided to the reservoir via the exit opening, thereby moving the slidable actuation member away from the exit opening and compressing the SMA coil, and wherein when the SMA coil is thus compressed, electricity is provided via the electronic circuitry to the SMA coil to cause the SMA coil to return to an extended shape, pushing the slidable actuation member and expelling liquid from the vessel via the exit opening.
9. The actuator apparatus of claim 8, wherein the SMA coil is fixedly mounted to the slidable actuation member.
10. The actuator apparatus of claim 8, wherein the electrical circuitry comprises a power source and a switch.
11. The actuator apparatus of claim 8, wherein the SMA coil is fixedly mounted to the vessel at a vessel end away from the exit opening.
12. The actuator apparatus of claim 8, wherein the SMA coil is formed from a nickel-titanium based alloy.
13. The actuator apparatus of claim 8, wherein liquid may be provided to the reservoir by providing liquid through the exit opening using force.
14. An actuation method, comprising: providing liquid through an exit opening to a reservoir in a vessel, thereby sliding a slidable actuation member located within the vessel away from the exit opening and concurrently compressing a shape memory alloy (SMA) coil positioned in association with the slidable actuation member; and applying electricity to the SMA coil via electronic circuitry; wherein applying electricity results in application of heat to the SMA coil, transitioning the SMA coil to an extended shape, thereby pushing liquid from the reservoir by pushing the slidable actuation member and expelling liquid through the exit opening.
15. The actuation method of claim 14, wherein providing liquid through the exit opening comprises injecting the liquid through the exit opening using force.
16. The actuation method of claim 14, wherein the SMA coil is fixedly mounted to the slidable actuation member.
17. The actuation method of claim 14, wherein the electrical circuitry comprises a power source and a switch.
18. The actuation method of claim 14, wherein the SMA coil is fixedly mounted to the vessel at a vessel end away from the exit opening.
19. The actuation method of claim 14, wherein the SMA coil is formed from a nickel-titanium based alloy.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0011] For a more complete understanding of the present disclosure, reference is now made to the following figures, wherein like reference numbers refer to similar items throughout the figures:
[0012]
[0013]
[0014]
[0015]
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024] The exemplification set out herein illustrates particular embodiments, and such exemplification is not intended to be construed as limiting in any manner.
DETAILED DESCRIPTION OF THE DISCLOSURE
[0025] The following description and the drawings illustrate specific embodiments sufficiently to enable those skilled in the art to practice the system and method described. Other embodiments may incorporate structural, logical, process and other changes. Examples merely typify possible variations. Individual components and functions are generally optional unless explicitly required, and the sequence of operations may vary. Portions and features of some embodiments may be included in or substituted for those of others.
[0026] The present design is a syringe or syringe type actuation device that employs an SMA (shape memory alloy) coil primarily used in small syringe actuation situations. Such a device enables the original shape of the SMA coil to be retained and when deformed, returned to its original shape when heated.
[0027]
[0028] The arrangement of
[0029]
[0030]
[0031] Operation of an SMA (shape memory alloy) coil is generally known. An SMA coil is fabricated from SMA wire to form a coil that essentially remembers its original shape and when activated returns to that original shape. Different materials may be employed in an SMA wire used to make an SMA coil, including copper-aluminum-nickel, nickel-titanium, and alloys formed from zinc, copper, iron, and/or gold. In practice, a coil is made by wrapping SMA wire around a post or rod, where the distance between winding, thickness of the SMA wire, etc. determine the force applied when the resultant SMA coil is actuated. Such a coil is sometimes referred to as a SMA spring coil. Certain SMA coils can be actuated by different means, including heat and electricity, and while an electrical connection is shown in
[0032] When power is applied to the SMA coil 102 in
[0033] Alternately, the actuator device may be used as a collector.
[0034]
[0035] The syringe actuator can be small in size.
[0036] As may be appreciated from the various drawings presented, the SMA coil, such as SMA coil 1002, may be joined to the plunger or plunger cylindrical tube base, such as cylindrical tube base 1015, via a fixed mounting such that the SMA coil 1002 is formed within or fixedly joined to the plunger, or it may simply be placed on the exterior of the plunger to effectuate actuation without fixed mounting. In other words, the SMA coil may simply rest on the outside of the plunger and any cylindrical tube base and may push or provide force when the SMA coil is electrified or heated. The same is true of the end opposite the cylindrical tube base 1015 shown in
[0037]
[0038] In the foregoing representations, the syringe or plunger is driven using the SMA coil, and as a result the actuator can be small in size and weight without the need for complex and expensive actuation components. The actuator provides one way operation and can, if desired, be disposable. The design is relatively high efficiency, using a small amount of electrical power and the ability of the SMA coil to return to its original shape to drive the SMA coil and actuate the plunger. The foregoing device may be driven using a simple electrical circuit or heating arrangement.
[0039] One such application of the syringe actuator disclosed may employ an SMA coil formed of Flexinol by Dynalloy, Inc, and is the coil shown in
[0040] Again, size and other parameters may vary, and larger implementations are possible as long as the SMA coil adequately drives the plunger.
[0041] The result of such a design is a low power, high efficiency injection arrangement that can provide liquid, such as a liquid drug, to an area or a patient with minimal power requirement and minimal complexity. The arrangement may vary in size, employing an SMA coil that may or may not be affixed to the plunger or parts associated with the plunger. In operation, liquid is provided, compressing the SMA coil, and electricity or heat provided to the SMA coil to expel the liquid from its reservoir.
[0042] Thus according to one embodiment, there is provided an actuator apparatus, comprising a slidable plunger comprising a remote end located proximate a reservoir within a vessel having an exit opening, a shape memory alloy (SMA) coil wound around the slidable plunger, and electronic circuitry connected to the SMA coil. Liquid may be provided to the reservoir via the exit opening, thereby sliding the slidable plunger away from the exit opening and expanding the SMA coil. When the SMA coil is expanded, electricity is provided via the electronic circuitry to the SMA coil to cause the SMA coil to return to a compressed configuration, moving the slidable plunger within the vessel to force the liquid from the vessel via the exit opening.
[0043] According to a second embodiment, there is provided an actuator apparatus, comprising a slidable actuation member located within a vessel having an exit opening, wherein the slidable actuation member positioned a distance from the exit opening forms a reservoir within the vessel, a shape memory alloy (SMA) coil positioned in association with the slidable actuation member to move the slidable actuation member within the vessel, and electronic circuitry connected to the SMA coil. Liquid may be provided to the reservoir via the exit opening, thereby moving the slidable actuation member away from the exit opening and compressing the SMA coil, and wherein when the SMA coil is thus compressed, electricity is provided via the electronic circuitry to the SMA coil to cause the SMA coil to return to an extended shape, pushing the slidable actuation member and expelling liquid from the vessel via the exit opening.
[0044] According to a further embodiment, there is provided an actuation method, comprising providing liquid through an exit opening to a reservoir in a vessel, thereby sliding a slidable actuation member located within the vessel away from the exit opening and concurrently compressing a shape memory alloy (SMA) coil positioned in association with the slidable actuation member, and applying electricity to the SMA coil via electronic circuitry. Applying electricity results in a production of heat, transitioning the SMA coil to an extended shape, thereby pushing liquid from the reservoir by pushing the slidable actuation member and expelling liquid through the exit opening.
[0045] The foregoing description of specific embodiments reveals the general nature of the disclosure sufficiently that others can, by applying current knowledge, readily modify and/or adapt the system and method for various applications without departing from the general concept. Therefore, such adaptations and modifications are within the meaning and range of equivalents of the disclosed embodiments. The phraseology or terminology employed herein is for the purpose of description and not of limitation.