INDICATION DEVICE
20180196391 · 2018-07-12
Assignee
Inventors
- Gavrillo BOZOVIC (Lausanne, CH)
- Johann Rohner (Yverdon, CH)
- Alain Jaccard (Ste-Croix, CH)
- Nicolas Bartholomé Nussbaumer (Neuchâtel, CH)
- Manuel Romero (Neuchâtel, CH)
- Yves Ruffieux (St-Aubin, CH)
- Gregory DOURDE (Neuchâtel, CH)
- Noelia L. Bocchio (Lausanne, CH)
- Lucien Vouillamoz (Feusisberg, CH)
Cpc classification
International classification
G04B1/26
PHYSICS
Abstract
An indication device is provided. The indication device includes an elongated fluid chamber containing at least one electrically conductive liquid driven by a pump for conductive liquids and an immiscible, relatively non-conductive fluid. At least one segment of at least one fluid is used as an indicator. This segment is driven by the pump along adjacent indices of an indicator visible to an observer using a meniscus location sensor and a feedback controller so as to e.g indicate a quantity to the observer
Claims
1. An indication device comprising an elongated fluid chamber containing at least two immiscible fluids, at least one of which has a characteristic physical property different from the other fluid, namely, a liquid driven by an at least one MHD pump for such liquid and an immiscible fluid having a different physical characteristic from the liquid, wherein at least one feature of the liquid contained in the chamber is used as an indicator, which feature the at least one MI-ID pump drives along the chamber either directly or indirectly, via another fluid in the chamber, along adjacent indices of an indicator visible to an observer, the indication device further including a feature location sensor and a feedback controller which cooperate so as to activate the pump to move the feature to a desired location in the chamber in order to indicate to the observer.
2. The indication device of claim 1, wherein the feature location sensor uses measured differences in physical characteristics or properties across the chamber as an input which the feedback controller uses to activate the at least one pump which moves the location of the feature to the desired location.
3. The indication device of the claim 2, wherein conductance is the physical characteristic used to detect the position of segment of the at least one liquid, so as to enable control thereof.
4. The indication device of the claim 2, wherein capacitance is the physical characteristic used to detect the position of segment of the at least one liquid, so as to enable control thereof.
5. The indication device of claim 2, wherein resistivity is the physical characteristic used to detect the position of segment of the at least one liquid, so as to enable control thereof.
6. The indication device of claim 2, wherein relative transparency is the physical characteristic used to detect the position of segment of the at least one liquid, so as to enable control thereof.
7. The indication device of claim 2, wherein relative viscosity is the physical characteristic used to detect the position of segment of the at least one liquid, so as to enable control thereof.
8. The indication device of claim 1, wherein the feature is a meniscus.
9. The indication device of claim 1, wherein the feature is a bubble or bubble surface.
10. The indication device of claim 1, wherein the feature is an object suspended in a fluid or between fluids in the chamber.
11. The indication device of claim 1, wherein at least one liquid is a colored liquid.
12. The indication device of claim 1 in which the at least one liquid has the same refractive index as the rigid chamber.
13. The indication device of claim 1, wherein the at least one liquid has a suspended particulate visible to the observer.
14. The indication device of claim 1, wherein a conductivity sensitive film is the feature location sensor.
15. The indication device of claim 1, where the elongated fluid chamber is essentially an endless closed loop.
16. The indication device of claim 1, wherein the direction of motion of the fluids are changed by changing the polarity of the at least one MI-ID pump.
17. The indication device of claim 1, wherein the pump is an at least one mechanical pump wherein reversal of the direction of operation of the pump reverses fluid flow in the chamber.
18. The indication device of claim 1, wherein the at least one liquid is enclosed in the elongated chamber of a closed loop that has at least one exposed, at least partially transparent surface allowing the observer to observe the position of the at least one feature of the liquid, the indication device further comprising a mechanism accommodating thermal expansion and/or contraction of the fluids, the mechanism disposed so as to be substantially invisible to the observer, wherein the mechanism accommodating thermal expansion or contraction is selected from one of a group of mechanisms consisting of a thin and flexible wafer enclosing the chamber in an airtight and watertight manner and disposed out of the field of view of the observer, a separate gas-filled chamber disposed out of the field of view of the observer, and a soft flexible material disposed in a portion of the chamber which is out of the field of view of the observer.
19. The indication device of the claim 18, wherein the mechanism accommodating thermal expansion and/or contraction is a gas-filled indicator bubble in the at least one liquid.
20. The indication device of claim 18, wherein the mechanism accommodating thermal expansion or contraction is selected from one of a group of mechanisms consisting of a thin and flexible wafer enclosing the chamber in an airtight and watertight manner and disposed out of the field of view of the observer, a separate gas-filled chamber disposed out of the field of view of the observer, and a soft flexible material disposed in a portion of the chamber which is out of the field of view of the observer.
21. The indication device of claim 18, wherein the mechanism accommodating thermal expansion and/or contraction is a gas-filled chamber portion of the rigid chamber, located out of the field of view of the observer, and connected to the liquid-filled portion of the rigid chamber by a passageway portion of the rigid chamber.
22. The indication device of claim 1, wherein the quantity indicated is time.
23. The indication device of claim 1 wherein the indication device is a watch.
24. The indication device of claim 1, wherein the elongated chamber is linear in form in portions thereof.
25. The indication device of claim 1, wherein the elongated chamber is nonlinear in form, preferably circular.
26. An indication device comprising an elongated fluid chamber containing at least two immiscible fluids, at least one of which has a characteristic physical property different from the other fluid, namely, a liquid driven by an at least one pump for such liquid and an immiscible fluid having a different physical characteristic from the liquid, wherein at least one feature of the liquid contained in the chamber is used as an indicator, which feature the at least one pump drives along the chamber either directly or indirectly, via another fluid in the chamber, along adjacent indices of an indicator visible to an observer, the indication device further including a feature location sensor and a feedback controller which cooperate so as to activate the pump to move the feature to a desired location in the chamber in order to indicate to the observer, and wherein the chamber is formed by two or more material wafers of differing forms, preferably connected to each other by bonding.
27. The indication device of claim 26, wherein the material wafers are glass wafer.
28. The indication device of claim 26, wherein the chamber is formed by a polymer.
29. The indication device of claim 28, wherein the chamber is formed by injection molding of the polymer.
30. An indication device comprising an elongated fluid chamber containing at least two immiscible fluids, at least one of which has a characteristic physical property different from the other fluid, namely, a liquid driven by an at least one pump for such liquid and an immiscible fluid having a different physical characteristic from the liquid, wherein at least one feature of the liquid contained in the chamber is used as an indicator, which feature the at least one pump drives along the chamber either directly or indirectly, via another fluid in the chamber, along adjacent indices of an indicator visible to an observer, the indication device further including a feature location sensor and a feedback controller which cooperate so as to activate the pump to move the feature to a desired location in the chamber in order to indicate to the observer, and wherein the at least one pump is disposed along the elongated chamber so as to ensure that at any operational position of the liquid, the liquid can be pumped.
31. An indication device of claim 1 comprising an elongated fluid chamber containing at least two immiscible fluids, at least one of which has a characteristic physical property different from the other fluid, namely, a liquid driven by an at least one pump for such liquid and an immiscible fluid having a different physical characteristic from the liquid, wherein at least one feature of the liquid contained in the chamber is used as an indicator, which feature the at least one pump drives along the chamber either directly or indirectly, via another fluid in the chamber, along adjacent indices of an indicator visible to an observer, the indication device further including a feature location sensor and a feedback controller which cooperate so as to activate the pump to move the feature to a desired location in the chamber in order to indicate to the observer, and wherein at least two pumps are disposed along the elongated chamber so as to ensure that at any operational position of the liquid, the liquid can be pumped.
32. An indication device of claim 1 comprising an elongated fluid chamber containing at least two immiscible fluids, at least one of which is an electrically conducting liquid driven by a pump for such conductive liquid and the other is an immiscible, relatively non-conductive fluid, wherein at least one feature of a liquid contained in the chamber is used as an indicator, which feature the pump drives either directly or indirectly, via another fluid in the chamber, along adjacent indices of an indicator visible to an observer, the indication device further including a feature location sensor and a feedback controller which cooperate so as to move the feature to a desired location in the chamber in order to indicate a quantity to the observer.
33. (canceled)
34. An indication device of claim 1 comprising an elongated fluid chamber containing at least two immiscible fluids, at least one of which has a characteristic physical property different from the other fluid, namely, a liquid driven by an at least one MHD pump for such liquid and an immiscible fluid having a different physical characteristic from the liquid, wherein at least one feature of the liquid contained in the chamber is used as an indicator, which feature the at least one MHD pump drives along the chamber either directly or indirectly, via another fluid in the chamber, along adjacent indices of an indicator visible to an observer, the indication device further including a feature location sensor and a feedback controller which cooperate so as to activate the pump to move the feature to a desired location in the chamber in order to indicate to the observer.
35. An indication device of claim 1 comprising an elongated fluid chamber containing at least two immiscible fluids, at least one of which has a characteristic physical property different from the other fluid, namely, a liquid driven by an at least one mechanical pump for such liquid and an immiscible fluid having a different physical characteristic from the liquid, wherein at least one feature of the liquid contained in the chamber is used as an indicator, which feature the at least one pump drives along the chamber either directly or indirectly, via another fluid in the chamber, along adjacent indices of an indicator visible to an observer, the indication device further including a feature location sensor and a feedback controller which cooperate so as to activate the pump to move the feature to a desired location in the chamber in order to indicate to the observer, wherein the pump is mechanical and wherein reversal of the direction of operation of the mechanical pump reverses fluid flow in the chamber.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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[0050] Those skilled in the art will appreciate that elements in the Figures are illustrated for simplicity and clarity and have not necessarily been drawn to scale. For example, dimensions may be exaggerated relative to other elements to help improve understanding of the invention and its embodiments. Furthermore, when the terms first, second, and the like are used herein, their use is intended for distinguishing between similar elements and not necessarily for describing a sequential or chronological order. Moreover, relative terms like front, back, top and bottom, and the like in the Description and/or in the claims are not necessarily used for describing exclusive relative position. Those skilled in the art will therefore understand that such terms may be interchangeable with other terms, and that the embodiments described herein are capable of operating in other orientations than those explicitly illustrated or otherwise described.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
[0051] The following description is not intended to limit the scope of the invention in any way as it is exemplary in nature, serving to describe the best mode of the invention known to the inventors as of the filing date hereof. Consequently, changes may be made in the arrangement and/or function of any of the elements described in the exemplary embodiments disclosed herein without departing from the spirit and scope of the invention.
[0052] Referring to the figures, an indication device 100, 200, 300, 600, 1200, 1800 of the invention includes an elongated fluid chamber 116, 202, 402, 504, 702, 1202, 1240, 1242, 1244, 1306, 1402, 1404 containing at least two immiscible fluids 106, 110, 114, 514, 710, 920, 1206, 1214, 1250, 1252, 1316, 1320, 1412, 1706 at least one of which has a characteristic physical property different from the other fluid, namely, a liquid driven by an at least one pump 112, 400, 1246, 1248, 1506 for such liquid and an immiscible fluid having a different physical characteristic from the liquid, wherein at least one feature of the liquid contained in the chamber is used as an indicator 408, 1290, 1410, which feature the at least one pump drives along the chamber either directly or indirectly, via another fluid in the chamber, along adjacent indices 1256, 1406 of an indicator 1802, 1804 visible to an observer, the indication device further including a feature location sensor 302, 406, 1600, 1700, 1710, 1712, 1714, 1720, 1722 and a feedback controller 1500 which cooperate so as to activate the pump to move the feature to a desired location in the chamber in order to e.g. indicate a quantity to the observer.
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[0057] Considering the circular capillary sub-systems 100 or 200, and its various dimensions, typically a time of 60 seconds, 60 minutes or 12 hours is used to completely fill the circular capillary sub-system 100 or 200. An exemplary specification for a robust, efficient, fit for purpose MHD pump 112 is as follows:
[0058] 1. Capillary sub-system 100 or 200 cross-sectional area: A=0.5 mm.sup.2
[0059] 2. MHD flow mean velocity: V.sub.MHD=1.895 mm/s
[0060] 3. MHD flow rate: Q.sub.MHD=57.165 L/min
Of course, the stronger the MHD pump 112 is, the more fluid is moved into cavity 116 or 202 at a faster rate. Slower rates of filling are accomplished by weaker MHD pumps 112 depending on their overall specifications and pumping strength.
[0061] Now looking at other MHD pump variants in the comparison provided below, and summarized in Table 1 below, it is appreciated that the example highlighted in red approximates the required specifications. Other MHD pumps can be used, depending upon the requirements of fluid movement, either continuous or intermittent, or those that require faster or slower fluid movement in the cavity 116 or 202. It is appreciated that an MHD pump 112, and circular capillary sub-system 100 or 200 featuring cavity 116 or 202 is provided in another variant. Other variants of dimensions (area, volume, geometric shape) of components of sub-system 100 or 200 are also provided in combination with other MHD pumps that have other engineered properties and modes of operation, some being fit for purpose and some not, but preferably, the specifications of MHD pump 112 highlighted in red in Table 1 are preferable for optimal fluid movement in cavity 116 or 202.
[0062] The following list of references with respect to MHD pumps are incorporated into this patent application by reference in their entirety, showing the variety of MHD pumps in the market: [0063] 1. Design, Microfabrication, and Characterization of MHD Pumps and their Applications in NMR Environments, Thesis by Alexandra Homsy, 2006. [0064] 2. Bislug Flow in Circular and Noncircular Channels and the Role of Interface Stretching on Energy Dissipation, Thesis by Joseph E. Hernandez, August 2008. [0065] 3. Modeling RedOx-based magnetohydrodynamics in three-dimensional microfluidic channels, Hussameddine Kabbani et al., 2007.
[0066] The following references with respect to alternative pumps (which substitute herein for MHD pumps where the characteristic of conductivity is no longer required for operation) are to be incorporated into this patent application by reference in their entirety: [0067] 1. Micropumpssummarizing the first two decades, Peter Woias, 2001. [0068] 2. Disposable Patch Pump for Accurate Delivery, Laurent-Dominique Piveteau, 2013, p. 16 and ff.
[0069] In yet a further aspect, the invention also provides for a grouping of sub-systems that include a circular (or other geometric configuration) capillary sub-system(s) with one or more MHD pumps 112. The groups include one or more MHD pumps 112 and tube/cavity combinations or groups of inter-related sub-systems. The one or more than one MHD pump 112 manages displacement of one or more fluids within individual circular capillary sub-systems or by way of manifold into more than one capillary sub-systems, in series or in parallel, alone or in combination with other MHD pumps providing for multiple indicator functionality within a single device, e.g. a wristwatch.
[0070] Referring now to
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[0089] Companies such as Dalian HeptaChroma SolarTech Co., Ltd. of Dalian, China, and Thin Film Devices Incorporated of Anaheim, Calif. provide glass substrates with a deposition of ITO layer which may be suitable for applying the layer to the glass substrate of the indicator face. A suitable controller 1716 for the feedback control mechanism is available from Analog Devices Inc. of Norwood, Mass., with the model number AD7745, being of particular suitability as it is able to measure capacitance in a range of +/4 pF with a resolution of +/4 fF.
[0090] Referring now to
[0091] Using ITO/FTO sensors, touch sensitivity may be exploited by enabling the setting the time to be simplified, as all that is required once a setting mode is activated, is to touch the location where the meniscus or non-conductive droplet should be located on the hour and/or minute display 1802, 1804, respectively. The change in capacitance is sensed in setting mode and the feedback loop controller is then operated to move the meniscus or droplet into the proper or desired position.
[0092] In addition, where a gas is used, because a gas cannot easily be colored or be made opaque, the contrast of the display is preferably modified such that the background surrounding the gas is dark so that the indication is clearly visible.
[0093] In an advantage, the system is a closed loop, having no or few moving parts, which better ensures its durability.
[0094] In another advantage, the accuracy of the system 100, 200, 300 is controlled by a feedback control system 1500 paced by a quartz movement, thereby compensating for a wide range of variables (temperature, viscosity, fluid flow issues) by actively controlling the location of the indicating feature, while maintaining accuracy when used as a time piece.
[0095] In another advantage, the system 100, 200, 300 eliminates the need for complex and expensive parts such as fluid bellows or a complex micro-pump.
[0096] In another advantage, the system 100, 200, 300 provides a fluid display for a jewelry item such as that developed and made fashionable by HYT SA of Switzerland while costing a fraction of the price.
[0097] The instant provisional patent application incorporates by reference in its entirety, as if fully set forth herein, U.S. patent application Ser. No. 61/787,727, filed on 15 Mar. 2013, and International patent application no. PCT/IB2014/000373, filed on 17 Mar. 2014, both entitled TEMPERATURE DRIVEN WINDING SYSTEM.
[0098] As used herein, the terms comprises, comprising, or variations thereof, are intended to refer to a non-exclusive listing of elements, such that any apparatus, process, method, article, or composition of the invention that comprises a list of elements, that does not include only those elements recited, but may also include other elements described in the instant specification. Unless otherwise explicitly stated, the use of the term consisting or consisting of or consisting essentially of is not intended to limit the scope of the invention to the enumerated elements named thereafter, unless otherwise indicated. Other combinations and/or modifications of the above-described elements, materials or structures used in the practice of the present invention may be varied or adapted by the skilled artisan to other designs without departing from the general principles of the invention. The patents and articles mentioned above are hereby incorporated by reference herein, unless otherwise noted, to the extent that the same are not inconsistent with this disclosure.
[0099] Other characteristics and modes of execution of the invention are described in the appended claims. Further, the invention should be considered as comprising all possible combinations of every feature described in the instant specification, appended claims, and/or drawing figures which may be considered new, inventive and industrially applicable.
[0100] Additional features and functionality of the invention are described in the claims appended hereto. Such claims are hereby incorporated in their entirety by reference thereto in this specification and should be considered as part of the application as filed.
[0101] Multiple variations and modifications are possible in the embodiments of the invention described here. For example, the differing physical quantities measures are preferably resistivity or capacitance. However, other characteristics, such as transparency or viscosity might also be used as these can also be sensed by existing sensors. Transparency can be sensed by a light sensor sensing a pulse of light emitted from an LED passing through the fluids in the channel. Light sensors in an array along the channel can then be read to determine the location of the meniscus between two fluids having differing transparency. Viscosity can be sensed with a viscosity sensor such as by using a series of cantilever probes entering into the fluid chamber along its length, the probes having a piezo-resistor built into its base, by which the relative deflection can be measured and used to determine the location of a meniscus between two fluids of differing viscosity. Such a sensor is described in Measurement and Evaluation of the Gas Density and Viscosity of Pure Gases and Mixtures Using a Micro-Cantilever Beam, by Anastasios Badarlis, Axel Pfau and Anestis Kalfas, Laboratory of Fluid Mechanics and Turbomachinery, Aristotle University of Thessaloniki, Thessaloniki, Greece, Sensors 2015, 15(9), 24318-24342; such as available from Endress+Hauser Flowtec AG of Reinach, Switzerland. Still further, an MHD pump need not be used, thus eliminating the need of using the physical characteristic or property of the fluid to drive the fluids in the fluid channel. The above description, minus mention of MHD pumps (in which nano-pumps or micro-pumps are substituted therefore) and minus the mention of conductive in relation to the fluids discussed as a property needed for propulsion, is therefore repeated here again in its entirety in reference to the mentioned alternative pumps which do not require conductivity on the part of the fluid. Although certain illustrative embodiments of the invention using conductivity, resistivity, and capacitance have been shown and described here, a wide range of changes, modifications, and substitutions is contemplated in the foregoing disclosure. While the above description contains many specific details, these should not be construed as limitations on the scope of the invention, but rather exemplify one or another preferred embodiment thereof. In some instances, some features of the present invention may be employed without a corresponding use of the other features. Accordingly, it is appropriate that the foregoing description be construed broadly and understood as being illustrative only, the spirit and scope of the invention being limited only by the claims which ultimately issue in this application.