This application claims priority to Swiss Patent Application No. 01129/20, filed on Sep. 9, 2020 and European Patent Application No. 21158373.7, filed on Feb. 22, 2021, the entire disclosures of which are hereby incorporated herein by reference.
The invention relates to a wearable object such as a wristwatch provided with additional functions typically a magnetic compass function, and optionally a barometer or thermometer function as well as a level indication function.
Navigation compasses in the shape of a sphere in a globe filled with liquid are already known. Barometers using closed bellows changing volume according to the ambient pressure as well as thermometers using the thermal expansion of liquids are also known. Some of these devices were incorporated into wristwatches.
However, it is understood that these devices are very bulky in the watch case at the dial and therefore require significant modifications to the usual aesthetics of wristwatches, which can harm their attractiveness.
The purpose of the invention is to provide, in an object worn such as a wristwatch, the functions of a magnetic compass and optionally of a barometer or of a thermometer, in a magnetic-fluidic system without using an electronic system, and without the need for an auxiliary power supply, leaving an empty central space so as to receive a watch movement.
To this end, the invention relates to a device which provides an annular configuration, comparable to a watch bezel, which does not set constraints in its central portion, apart from the absence of ferromagnetic or magnetically polarised materials, to house, for example, a watch movement therein. The main function targeted by this invention is to constitute a magnetic compass.
The invention relates to the production of an annular structure floating in gravimetric equilibrium, with a coefficient of static friction almost zero, inside an annular tube filled with a suitable fluid, the assembly being called annular “ludion” fluidic system with compass function.
This movable annular structure includes at least one magnet or a magnetised portion, polarised so that it undergoes a moment of force when it is placed in the earth's magnetic field.
This moment of force acts on the structure and forces it to be aligned in the direction of the earth's magnetic vector. The alignment is carried out almost perfectly, thanks to the low static friction force, with a time constant which depends on the nature of the fluid wherein the movable structure is bathed, and on various factors such as the mass of the movable structure, the magnitude of the magnetic force, the space separating it from the wall of the annular tube containing it, etc.
The virtual absence of static friction forces is based, on the one hand, on the gravimetric balance obtained by adjusting the density of the movable structure so that it is equal to that of the fluid filling the annular tube, and, on the other hand, on the lubricating properties of this fluid.
The time constant of alignment of the movable structure on the earth's magnetic vector must be less than about 1 second in order to allow 95% of the angular displacement in less than about 3 seconds (assuming proportional viscous forces at angular speed) for convenient use.
Secondary functions, such as barometric or thermometric functions, can be considered in the context of the present invention. They use the compressibility properties of a closed volume of gas, according to the gas law, or the expansion of a fluid depending on the temperature.
The invention allows to achieve one or more useful functions, with an innovative aesthetic in a wearable object such as a wristwatch, these functions being able to be in particular integrated into the bezel of the watch and therefore without affecting the aesthetics of the dial.
Other features and advantages of the present invention will appear in the following description of preferred embodiments, shown as a non-limiting example with reference to the appended drawings:
The present invention relates to an annular fluidic device providing the function of a compass and optionally a thermometer or barometer, as well as the level indication function.
According to a first embodiment shown in
The device 1 comprises an annular tube 2 closed at its ends, the wall of the tube being of circular, square, or other section. This tube 2 represents the outer casing of the device, which is integrated for example into a watch case. The wall of this tube is transparent at least on a portion which is intended to be visible from the outside after integration into the watch case or other object. The thickness of the wall can vary in its visible part, in order to produce an advantageous optical effect for the visualisation of the cardinal point(s) 15 indicated by the floating system 3 inside this tube as described below. The inner wall of the tube can also be covered with a thin functional layer such as a perfluoropolymer layer, for example PTFE (polytetrafluoroethylene), or the like such as parylene, etc. reducing friction forces.
A floating system 3, for example in the shape of a rigid torus, is placed inside this tube 2. It bathes in a suitable fluid 4 filling the empty space. The floating system 3 is mounted to rotate freely around the central axis 5 of the tube 2 and relative to said annular tube 2 which is integral with the object within which it is disposed.
This floating system can consist of a single annular solid volume or of several elements connected by a ring. The section of this solid volume or of the elements connected by a ring is less than the internal section of the annular tube containing them. Various section geometries can be considered, on the one hand in order to reduce the effects of friction with the inner wall of the annular tube, and on the other hand in order to meet the aesthetic criteria of the intended application. Other embodiments are possible where a thinner ring connects several guide elements within the annular tube. In the example of
The system 3 floating inside the annular tube 2 comprises one or more permanent magnetic elements 6 integral with the floating system 3. They are two in number in the example of
To adjust the density of the torus, or more generally of the floating system, and so that it floats in the fluid, the torus can further comprise one or more cavities filled with air 3d, in order to adjust the gravimetric balance in the fluid 4 surrounding it (
Preferably, the outer surface of the floating system is covered with a thin functional layer such as a perfluoropolymer layer, for example PTFE, or the like such as parylene, etc. reducing friction forces.
As shown in
The floating system can be provided with a decoration corresponding to the aesthetic chosen for the intended application.
In a preferred embodiment, this decoration comprises phosphorescent or fluorescent portions. As mentioned above, the floating system is also marked with at least one cardinal point referenced 15 in the figures.
A suitable fluid will be chosen to fill the empty space between the inner wall of the annular tube and the floating system. The main features of the fluid are transparency, low viscosity and an adequate density which is substantially equal to that of the floating system. The dynamic viscosity is typically comprised between 0.3 and 10 mPa s.
This fluid can be composed of H—C—O hydrocarbon chains (organic solvent) or of a silicone oil, onto which other functional radicals can be grafted.
The static frictional forces must produce a static frictional moment much lower than the magnetic moment applied by the interaction of the floating system with the earth's magnetic field, in order to give an accurate indication of the magnetic north.
Finally, the dynamic frictional forces must be low enough to allow rapid positioning of the floating system, with a time constant less than or equal to typically 1 second.
According to a second embodiment shown in
A second capillary tube 7 is grafted onto the annular tube 2 described in connection with the first embodiment. This capillary tube of small internal section, with typically an internal diameter of 50 and 500 μm, is in fluid communication with the annular tube. Its external geometry is calculated in order to make visible a coloured line deposited on its rear face, on the portion filled with the transparent fluid coming from the annular tube described above, by an optical effect producing a strong contrast.
An expansion volume 13, filled with a gas or a compressible gas mixture, for example air, is placed at the free end of the capillary tube 7, and a membrane 8 is placed on the annular tube 2 in order to transmit the atmospheric pressure on the fluid 4. In this way, the fluid can move inside the capillary depending on the atmospheric pressure and give an indication thereof.
According to a third embodiment shown in
The device incorporates the additions described in connection with the second embodiment, with the exception of the membrane which is removed, in order to allow the thermal expansion of the fluid to produce its displacement in the display capillary described in connection with the second embodiment, thus giving an indication of temperature instead of atmospheric pressure.
According to a fourth embodiment, the device of the invention further incorporates the level indication function, of the bubble level type, for improved use of the magnetic compass function. This level indication function can be present in addition to the thermometer or barometer function.
The floating system 3 inside the annular tube 2 described in connection with the first embodiment will comprise a clearance 16 in its part intended to be visible and communicating with the fluid, in order to allow the passage of one or more air bubbles, in order to give an indication of the level or, in other words, of the attitude of the device according to the invention worn by the user (
For a horological application, the device according to the invention can be positioned in several places within the watch case.
As previously mentioned, only part of the wall of the annular tube can be transparent and allow the floating system to be viewed from outside the watch case. Such an example is shown in
a. Transparent wall portion
a. Sphere
b. Horizontal wheel
c. Vertical wheel
d. Recess or cavity
Number | Date | Country | Kind |
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21158373 | Feb 2021 | EP | regional |
Number | Name | Date | Kind |
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4680544 | Rudolf | Jul 1987 | A |
6430825 | Baumann | Aug 2002 | B1 |
Number | Date | Country |
---|---|---|
1127371 | Jul 1996 | CN |
110440776 | Nov 2019 | CN |
57-170011 | Oct 1982 | JP |
59-175191 | Nov 1984 | JP |
4-29011 | Jan 1992 | JP |
Entry |
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Machine translation of Funakoshi, JP H0429011 A (original provided by Applicant) (Year: 2024). |
Machine translation of Yokoyama (JP S59175191) (Year: 2024). |
Britannica article “Alcohol”, captured by the Internet Archive Jan. 5, 2021 (Year: 2021). |
RheoSense page with viscosity data for ethyl alcohol and distilled water, captured by the Internet Archive Aug. 13, 2020 (Year: 2020). |
Wikipedia article “Silicone oil”, captured by the Internet Archive Dec. 2, 2020 (Year: 2020). |
Combined Chinese Office Action and Search Report issued on Jan. 28, 2023 in Chinese Patent Application No. 202111056044.2 (with translation of category of cited documents), 10 pages. |
Japanese Office Action issued on Sep. 6, 2022 in Japanese Patent Application No. 2021-137758 (with English translation), 9 pages. |
European Search Report issued Jan. 14, 2021 in European Application 21158373.7, filed on Feb. 22, 2021 (with English Translation of Categories of cited documents), 3 pages. |
Number | Date | Country | |
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20220269219 A1 | Aug 2022 | US |