FLUID DELIVERY DEVICES HAVING IMPROVED EFFICIENCY IN DELIVERING FLUID WITH REDUCED WASTAGE OF FLUID
20180009649 ยท 2018-01-11
Inventors
- James D. Anderson, JR. (Lexington, KY, US)
- Tim Frasure (Lexington, KY, US)
- Sean Weaver (Lexington, KY, US)
- David Bernard (Lexington, KY, US)
- David Graham (Lexington, KY, US)
- Andrew McNees (Lexington, KY, US)
Cpc classification
International classification
Abstract
A fluidic delivery device includes a fluid supply containing a fluid, the fluid supply has a fluid reservoir and a pair of fluid permeable compressible bodies located in the fluid reservoir. One of the fluid permeable compressible bodies has an effective greater density than the other fluid permeable compressible body.
Claims
1. A fluidic delivery device, comprising: a one-piece fluid container providing a fluid supply containing a fluid, the fluid supply having a fluid reservoir defining an upper reservoir portion and a lower reservoir portion that is contiguous with the upper reservoir portion; an upper fluid permeable compressible body located in the upper reservoir portion and a lower fluid permeable compressible body located in the lower reservoir portion, the lower fluid permeable compressible body having an effective greater density than the upper fluid permeable compressible body; a dispensing pool area located at a lower portion of the one-piece fluid container and having a volume below and segregated from the lower fluid permeable compressible body for pooling of fluid; and a fluid ejector located within a bottom of the one-piece fluid container in flow communication for receiving fluid from the dispensing fluid for ejection of fluid from the device.
2. The device of claim 1, further comprising a grate having a thickness, and wherein unusable area of the fluid container corresponding to volumetric inefficiency is reduced by reducing the thickness of the grate and the volume of the dispensing pool to minimize the amount of fluid maintained there yet still enable operation of the device.
3. The device of claim 1, wherein the lower fluid permeable compressible body has a greater material density than the upper fluid permeable compressible body.
4. The device of claim 1, wherein the lower fluid permeable compressible body has an effective greater density than the upper fluid permeable compressible body by virtue of compression.
5. The device of claim 1, wherein the upper fluid permeable compressible body is a foam body and the lower fluid compressible body is a foam body.
6. The device of claim 1, wherein the lower reservoir portion is smaller in volume than the upper reservoir portion.
7.-10. (canceled)
11. A method of providing a fluidic delivery device having a one-piece fluid container providing a fluid supply containing a fluid within a fluid reservoir in flow communication with a fluid ejector located within a bottom of the one-piece fluid container, the method comprising the steps of: providing a pair of fluid permeable compressible bodies, comprising an upper fluid permeable compressible body and a lower fluid permeable compressible body, locating the pair of fluid permeable compressible bodies within the fluid reservoir of the fluidic delivery device in a stacked configuration with the upper fluid permeable compressible body overlying the lower fluid permeable compressible body, wherein lower fluid compressible body has an effective greater density than the upper fluid permeable compressible body and the compressible bodies retain the fluid at a back pressure achieved by capillary forces between the compressible bodies and the fluid, wherein the compressible bodies cooperate to provides a motive force that promotes voiding of the fluid from fluid reservoir via the fluid ejector during use of the fluidic delivery device.
12. (canceled)
13. The method of claim 11, wherein the lower fluid permeable compressible body has an effective greater density than the upper fluid permeable compressible body by virtue of compression during location within the fluid reservoir.
14. (canceled)
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0014] Further advantages of the disclosure are apparent by reference to the detailed description in conjunction with the figures, wherein elements are not to scale so as to more clearly show the details, wherein like reference numbers indicate like elements throughout the several views, and wherein:
[0015]
[0016]
[0017]
[0018]
DETAILED DESCRIPTION
[0019] The disclosure relates to fluidic devices that promote improved efficiency of dispensing fluid, reducing the amount of fluid that is wasted and remains in the device once it has completed its service life.
[0020] With reference to
[0021] The device 10 includes a fluid container 12 and a pair of compressible fluid permeable bodies 14 and 16 located within the fluid container 12. A fluid dispensing pool 18 is segregated from, but in fluid communication with, the fluid container 12 and the fluid permeable bodies 14 and 16. A fluid filter 20 is disposed in the fluid container 12 adjacent to the dispensing pool 18. Thus, it will be appreciated that the pool 18 is provided by the space under the filter 20.
[0022] A fluid ejector 22 is located adjacent to and in flow communication with the dispensing pool 18 to selectively eject fluid from the device 10. The fluid may be a vaporizable fluid and the fluid ejector 22 may be, for example, a fluid vaporization heater. Electrical connections and logic circuits are integrated onto the device 10 to control and operate the device, including the vaporizer 16, and to otherwise control the transfer of fluid to and the operation of the fluid ejector 22.
[0023] The device 10 is initially substantially filled with a volume of fluid so that the fluid container 12 is filled with the fluid, with the permeable spaces of the fluid permeable bodies 14 and 16 filled with fluid, and the dispensing pool 18 being filled with fluid. A top or other cover 24 is applied to the reservoir 12 (
[0024] It will be understood that the fluid must be maintained in fluid container 12 at a negative pressure. The back pressure must be controlled to be sufficient to prevent the fluid from drooling or escaping from device 10 via the fluid ejector 22. However, the back pressure must also be low enough such that air is not drawn into the device 10 via the ejector 22. The permeable bodies 14 and 16 serve to receive and retain the fluid at an appropriate back pressure achieved by capillary forces between the permeable bodies 14 and 16 and the fluid. Accordingly, once assembled, the device 10 is primed to apply a slight negative pressure to the interior of the device 10, which negative or back pressure is maintained by interaction between the permeable bodies 14 and 16 and the fluid.
[0025] During use of the device 10, fluid is ejected and the volume of fluid in the device 10 reduces. When the device 10 has been operated to the extent that the fluid container 12 is depleted of fluid, an air space develops between the filter 20 and the level of the fluid within the dispensing pool 18. Because of this, the permeable bodies are no longer able to function to provide the required back pressure for desired operation of the device 10.
[0026] At this point, the device 10 has essentially reached the end of its service life and cannot eject fluid in a reliable manner. Thus, all of the fluid that remains in the dispensing pool 18 at the end of the service life of the device 10 represents fluid that cannot be ejected. While there are other sources of residual fluid, such as on surfaces of the foam and other surfaces within the device, the majority of the remaining fluid is represented by the fluid in the dispensing pool 18. The ratio of the volume of fluid supplied to the device 10 and the fluid ejected represents the volumetric efficiency. Thus, the volume of fluid left in the dispensing pool 18 represents most of the volumetric inefficiency of the device 10.
[0027] The fluid container 12 and the fluid permeable bodies 14 and 16 are configured to cooperate to minimize the amount of fluid in the device 10 that is not dispensed during the useful service life of the device. In broad overview, this is accomplished by configuring the device 10 to reduce the volume of the dispensing pool and to utilize foam configured for each geometry of the fluid container 12, both in dimension and in properties.
[0028] The fluid container 12 may be provided as by a plastic housing defining a reservoir portion 12a and a smaller nose portion 12b below the reservoir portion 12a. The fluid container 12 thus has a step configuration with the reservoir portion 12a and the nose portion 12b representing portions of the fluid container 12 of different geometry and dimension.
[0029] A tower 30 physically separates the fluid in the reservoir portion 12a from the dispensing pool 18 in the nose portion 12b. The filter 20 sits atop the tower 30 below the permeable compressible body 16. A grate 31 having open void areas and a rib-like structure is located on the external portion of the fluid container 12 encompassing the ejector 22. The thickness of the grate 31 and the volume of the dispensing pool 18 are selected to minimize the amount of fluid maintained there yet still enable operation of the device. Void areas are represented by reference character V in
[0030] Conventionally, the upper surface of the tower 30 is located at the bottom of the reservoir portion 12a, and the smaller nose portion 12b is occupied by the tower 30. Thus, only the reservoir portion 12a is occupied by a fluid permeable compressible body, and the device utilizes only a single fluid permeable compressible body. As will be appreciated, this construction provides substantially more or larger void areas V not occupied by a fluid permeable compressible body.
[0031] This prior art structure is represented in
[0032] Returning to
[0033] It has been discovered that having the two fluid permeable compressible bodies 14 and 16 in the stacked configuration, with the lower of the bodies 16 having an effective greater density, advantageously results in a pulling effect of the fluid towards the filter 18. This provides a motive or capillary forces that result in more complete voiding of the fluid and less residual fluid in the fluid container 12.
[0034] In addition, structures according to the disclosure including the grate 31 reduce the volume of the device having void spaces and locate an additional fluid permeable compressible body 16 in the nose portion 12b. This provides a further reduction in residual fluid. Thus, it has been observed that structures according to the disclosure result in improved efficiency, with reduced fluid waste as compared to conventional structures.
[0035] The foregoing description of preferred embodiments for this disclosure has been presented for purposes of illustration and description. The description and embodiments are not intended to be exhaustive or to limit the disclosure to the precise forms disclosed. Obvious modifications or variations are possible in light of the above teachings. The embodiments are chosen and described in an effort to provide the best illustrations of the principles of the disclosure and its practical application, and to thereby enable one of ordinary skill in the art to utilize the disclosure in various embodiments and with various modifications as are suited to the particular use contemplated. All such modifications and variations are within the scope of the disclosure as determined by the appended claims when interpreted in accordance with the breadth to which they are fairly, legally, and equitably entitled.