APPARATUS AND SYSTEM FOR FLUID DELIVERY
20170340820 ยท 2017-11-30
Inventors
Cpc classification
A61M5/31505
HUMAN NECESSITIES
A61M5/14244
HUMAN NECESSITIES
A61M5/2033
HUMAN NECESSITIES
A61M2005/3131
HUMAN NECESSITIES
A61M5/16831
HUMAN NECESSITIES
A61M5/14566
HUMAN NECESSITIES
A61M39/287
HUMAN NECESSITIES
A61M5/1456
HUMAN NECESSITIES
International classification
A61M5/168
HUMAN NECESSITIES
A61M5/315
HUMAN NECESSITIES
A61M39/28
HUMAN NECESSITIES
Abstract
An apparatus for delivering fluid from a fluid container comprises a housing to which a fluid container is attachable, a slider movably disposed in the housing and a resilient having a first end connected to the housing and a second end connected to the slider. Upon receiving an external force, the slider moves relative to the housing from a first position toward a second position to deform the resilient member from an original state to a deformed state, and upon release of the external force, the resilient member is allowed to resume to the original state to move the slider toward the first position to urge the slider against the fluid container to deliver fluid from the fluid container under a constant fluid flow rate.
Claims
1. An apparatus comprising: a housing; a slider movably disposed in the housing; a resilient member having a first end connected to the housing and a second end connected to the slider, wherein upon receiving an external force, the slider moves relative to the housing to deform the resilient member from a coiled state toward an uncoiled state, and upon release of the external force, the resilient member is allowed to resume to the coiled state for urging the slider against a fluid container attached to the housing to deliver fluid from the fluid container.
2. The apparatus as recited in claim 1, wherein the housing includes a mandrel and a sleeve movably coupled to an external surface of the mandrel, the first end of the resilient member is connected to the mandrel and the slider is movably disposed in the mandrel.
3. The apparatus as recited in claim 2, wherein the sleeve is threadedly coupled to the mandrel such that rotation of the mandrel relative to the sleeve about a longitudinal axis moves the mandrel along the longitudinal axis relative to the sleeve.
4. The apparatus as recited in claim 3, wherein upon a fluid container being attached to the sleeve, the fluid container abuts against the slider to move the slider relative to the mandrel during movement of the mandrel into the sleeve.
5. The apparatus as recited in claim 2, wherein the sleeve has an entrance formed at one end thereof, wherein the entrance is to allow a fluid container to be placed therethrough to attach the fluid container to the sleeve.
6. The apparatus as recited in claim 5, wherein upon receiving the external force, the slider moves relative to the mandrel from a first position adjacent to the entrance toward a second position away from the entrance to elastically deform the resilient member from the coiled state to the uncoiled state, and upon release of the external force, the resilient member is allowed to resume to the coiled state to move the slider toward the first position for urging the slider against the fluid container to deliver fluid from the fluid container.
7. The apparatus as recited in claim 1, further comprising a seat member rotatably attached to the slider, wherein the seat member is to abut against the fluid container after the fluid container is attached to the housing.
8. The apparatus as recited in claim 7, further comprising an extension coupling positioned between the slider and the seat member, wherein the extension coupling is to create a preload on the resilient member when the slider is at the first position.
9. The apparatus as recited in claim 1, further comprising a magnetic sensor attached to the slider and a magnetic strip attached to the housing, wherein the sensor and the reader are to detect a positional relationship between the slider and the housing.
10. The apparatus as recited in claim 9, further comprising a screen coupled to the reader for displaying information related to the positional relationship.
11. The apparatus as recited in claim 10, wherein the slider further comprising one or more stubs projecting from a body portion thereof to form a clearance between the body portion and the housing, wherein the sensor is positioned in the clearance.
12. An apparatus for delivering fluid, the apparatus comprising: a sleeve to which a fluid container is attachable; a mandrel movably coupled to and positioned in the sleeve; a slider movably disposed in the mandrel; a resilient member connecting the slider to the mandrel, wherein upon receiving an external force, the slider moves from a first position toward a second position to uncoil the resilient member, and upon release of the external force, the resilient member is allowed to coil to urge the slider against the fluid container to deliver fluid from the fluid container.
13. The apparatus as recited in claim 12, wherein the sleeve is threadedly coupled to the mandrel such that rotation of the mandrel relative to the sleeve about a longitudinal axis moves the mandrel along the longitudinal axis relative to the sleeve.
14. The apparatus as recited in claim 13, wherein upon the fluid container being attached to the sleeve, the fluid container abuts against the slider to move the slider relative to the mandrel during movement of the mandrel into the sleeve.
15. The apparatus as recited in claim 12, wherein the sleeve has an opening formed at one end thereof, wherein the opening is to allow the fluid container to be placed therethrough to attach the fluid container to the sleeve.
16. The apparatus as recited in claim 12, further comprising a seat member rotatably attached to the slider, wherein the seat member is to abut against the fluid container after the fluid container is attached to the sleeve.
17. The apparatus as recited in claim 16, further comprising an extension coupling positioned between the slider and the seat member, wherein the extension coupling is to create a preload on the resilient member when the slider is at the first position.
18. A system for delivering fluid, the system comprising: a syringe having a barrel, a plunger movably coupled to the barrel and a nozzle in fluid communication with the barrel; an apparatus attached to the syringe, the apparatus comprising: a housing to which the barrel is attached; a slider movably disposed in the housing and abuts against the plunger; a resilient member having a first end connected to the housing and a second end connected to the slider, wherein upon the nozzle being closed, the resilient member is elastically deformed from an original state, and upon the nozzle being opened, the resilient member is allowed to resume to the original state to urge the slider against the plunger to deliver fluid from the syringe.
19. The system as recited in claim 18, further comprising a docking station to which the apparatus is detachably supported.
20. The system as recited in claim 19, further comprising a controller coupled to the docking station and the apparatus, and a screen coupled to the controller for displaying status of the system during fluid delivery.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0033] Examples of embodiments will be shown to provide an understanding of the principles of the design features, its function, manufacture, use of the device and methods disclosed. The embodiments shown are intended to be exemplary and non-limiting. The features described in the embodiment may be combined with variants or modifications of other embodiments to achieve the goals of a device with the features and novelties described. Such variants or modifications are intended to be within the scope of the present disclosure.
[0034] By way of a non-limiting example,
[0035] The resilient member is a thin, flat shaped tape spring 215 made of elastically deformable material, e.g. metal, and coiled to form a reel as shown in
[0036] The spring 215 is at the original, un-deformed state when coiled and with a major portion of the spring 215 received in the slider 210, as shown in
[0037] The axle 216 may be configured to be free to rotate relative to the slider 210, to ease the spring 215 coiling and uncoiling about the axle 216. Alternatively, axle 216 may be fixed to slider 210 while the second end 212 of the spring 215 is rotatably attached around the axle 216 to maintain connection between the slider 210 and the spring 215 during coiling and uncoiling of the spring 215 around the axle 216.
[0038] In this embodiment, the constraints in the volume space of the hollow mandrel 101 corresponds to the use of a single spring, in order to provide a desired force for expelling fluid from a fluid container attached to the apparatus 10. In other embodiments, the spring set could be a single spring or multiple springs arranged in appropriate configurations to provide desired force. By way of example, multiple springs could be arranged within a common axis or with their axes along the lateral direction in which they are displaced when the apparatus is in use.
[0039] The mandrel 101 shown in
[0040] The sleeve 301 has helical thread grooves 305 formed on its inner sidewall. Screw threads 105 of corresponding dimension and pitch are formed on the outer surface of the hollow mandrel 101. Engagement of the thread grooves 305 and screw threads 105 will allow rotation of the hollow mandrel 101 relative to the telescopic sleeve 301 and by such rotation, the hollow mandrel 101 will be moved relative to the sleeve 301 along axial direction 14. The screw threads 105 could be a single loop or multiple loops around the outer circumference of the hollow mandrel 101.
[0041] As shown in
[0042] In this embodiment, a seat 211 is attached to the slider 210, and is rotatable relative to slider 210. The advantages of seat 211 is to reduce torsional forces acting on the plunger 402 by the slider 210, when the mandrel 101 is rotated into the telescopic sleeve 301. However, the slider 210 may also be directly engaged to the plunger, without the presence of seat 211.
[0043] The plunger 402 is then inserted through entrance 307 of sleeve 301, into hollow mandrel 101 (
[0044] Once the barrel 406 is fixed to the sleeve 301, as shown in
[0045] With the spring 215 uncoiled, there stores a potential energy in the spring 215 which generates a driving force F2 acting against the plunger 402, as shown in
[0046] The slider 210 could be affixed with a magnetic sensor 252 that is in communication with a magnetic linear strip 254 attached on the adjacent channel 203 and/or 204 of housing 13. Interaction of the sensor 252 and strip 254 could detect the position of the slider 210 relative to the mandrel 101, which may be displayed on a screen 256 integrated on the apparatus 10 or onto a separate display 257 in signal communication with the sensor 252.
[0047] A shown in
[0048] Apparatus 10 may include a coupling element 209 positioned and connected between the slider 210 and the seat 211. Coupling element 209 is configured to cause the first end 217 of spring 215 to be positioned at a distance away from the initial unstressed position of the spring 215 within the hollow mandrel 101, such that the total distance the axis of the springs traveled is longer than the displacement required for the plunger 402 to fully discharge the fluid from the syringe. In principle, the length of the coupling element 209 is configured to be sufficient to cause the spring 215 to be uncoiled from the slider 210 so that the driving force F2 exerted on the plunger 402 would have already reached its constant level when fluid start to flow. Typically this deflected length is about 1 to 1.5 times of the outer diameter of the spring 215 in coiled form. The coupling element 209 assists in generating a relatively more constant driving force acting on the fluid through the plunger, resulting in a relatively more constant flow profile during the fluid delivery, as shown in
[0049]
[0050] As shown in