This application claims priority to European Patent Application No. 19204404.8 filed Oct. 21, 2019, the entire contents of which are incorporated herein by reference.
The present invention relates to the field of mechanical watches with manual or automatic winding, and more particularly to devices for testing the mechanical movement of this type of watch.
Tests are known for determining the regularity of running, as well as other parameters characteristic of a mechanical watch movement. The measurements applied consist of optical and/or acoustic measurements of the impulses generated by the mechanical oscillator of the movement of the watch. The acoustic measurements known to date often use expensive microphones which make this solution not very cost-effective. The equipment used to implement the optical methods is relatively complex and furthermore expensive.
In general, the devices known to date for testing a mechanical watch were developed for a laboratory environment. These devices are not aimed for use by the individual wearing the watch. A test device that is compact and easy to use is not commercially available at this time.
The present invention aims to provide a solution to the aforementioned problems. This purpose is achieved by a device and by the methods according to the accompanying claims.
The invention relates to a portable device that allows the values of one or more parameters characterising the operation of a mechanical watch to be measured. The device is provided with a contact microphone comprising a contact piece and, for example, a piezoelectric element. The device is held in the hand and the contact piece is brought into physical contact with the case of a watch during a measurement period. The device further comprises a power source, such as a replaceable or rechargeable battery, a microprocessor, a memory, and a screen for displaying the values measured, preferably a touch-sensitive screen. Preferably, the dimensions of the device are of the same order of magnitude as the case of a wristwatch. According to one specific embodiment, the device has the shape of a horological eyeglass. The invention further relates to a measuring method using the device of the invention. The device is easy to use and allows the wearer to test his/her own watch.
Other features and advantages of the present invention will appear upon reading the following description given of preferred embodiments, provided as non-limiting examples with reference to the accompanying drawings.
The invention will be described in more detail hereinafter using the accompanying drawings, given by way of examples that are in no way limiting, wherein:
The device 1 shown in
A piezoelectric element 20 is fastened to the bottom of the cavity 11 of the contact piece 10 such that the assembly formed by the piece 10 and the piezoelectric element 20 constitutes a contact microphone. The piezoelectric element 20 is connected by an electric wire 21 to a PCB (printed circuit board) 22 fastened to a second inner flange 23 of the frame 14. The PCB 22 is provided with electronic components, configured so as to process and analyse the signals generated by the microphone, and described in more detail hereinbelow.
A battery carrier 25 made of plastic is inserted in a fixed manner inside the frame 14, above the PCB 22. The battery carrier 25 comprises a housing capable of receiving a replaceable battery 26, for example a standard battery of the CR1632 type. According to other embodiments, the device is provided with a rechargeable battery. Conductors (not shown) are integrated into the battery carrier 25 so as to connect the battery 26 to the PCB 22 in order to power the components of the PCB. The battery carrier 25 is provided with a number of openings 27 for passing spring-loaded pins 28 which will create a connection between the PCB 22 and the digital screen 6 of the device. The screen 6 is provided with a connector 30 which will be in contact with the spring-loaded pins 28.
An outer eyeglass-shaped casing 31 is mounted around the frame 14 and is clipped onto said frame by means of a rib 32 on the outer surface of the frame 14. The rib 32 enters a recess 33 inside the outer casing 31 when the latter is placed around the frame 14 and pushed downwards. The outer casing 31 is made of a synthetic material, for example silicone, which allows for sufficient deformation to produce the connection by clipping. Instead of this type of connection, other means for reversibly attaching the casing 31 to the frame 14 are possible within the scope of the invention. The top section of the casing 31 includes a protective glass 34 for the screen 6, allowing the instructions of the user to be transmitted in the case of a touch-sensitive screen. On the other side, the casing 31 comes into contact with an outer flange 35 of the frame 14.
In order to use the device 1, a user holds the device in his/her hand and positions it with the contact surface 5 in physical contact with a watch case in the wound state, while slightly pressing down on the device. The offset ‘a’ allows this pressure to compress the resilient washer 15, so as to ensure an adequate contact force between the device 1 and the watch case. The device is held in this position using a fastening system for a measurement period of about ten seconds for example. The user can activate the device via the touch-sensitive screen 6 or the device can be configured to be automatically activated as soon as it is positioned and pressed against a surface of the watch. A measurement period is thus started, during which the microphone measures the acoustic noises generated by the mechanical movement of the watch. In a manner known per se, these noises consist of an alternating sequence of two types of impulses of different character, often referred to as ‘tick’ and ‘tock’. Analysing the impulses allows parameters linked to the operation of the movement to be calculated, such as the running state and the beat. These analyses and calculations are carried out by the components mounted on the PCB. Several configurations are possible for these components within the scope of the invention. One example of a configuration is shown in
The signal generated by the piezoelectric element 20 passes via an amplification stage 40 to a processing unit 41 which includes an analogue-to-digital converter (ADC) 42, a microprocessor 43 clocked by an accurate oscillator 44 (preferably of the TOXO—Temperature Compensated Crystal Oscillator type) and a memory 45. The processing unit 41 is connected to a power management unit 46 connected to the battery, and to the digital screen 6. The microprocessor 43 is configured so as to calculate the values of the parameters, record the values in the memory 45, and display the values on the screen 6.
According to one possible mode of operation of the device of the invention, the values of one or more of these parameters are recorded at the end of each measurement period, for example the values of the five parameters identified hereinabove (frequency, running state, etc.). The values can be identified in an instantaneous manner at the end of the measurement period P. For certain parameters, the values can also be calculated based on the signals detected during the entire period. For example, and as shown in
One specific mode of operation, also shown in
The invention is not limited to the outer shape shown in the figures. In general, the device is portable and compact, preferably having dimensions of the same order of magnitude as the case of a wristwatch. The device is easy to use and is designed to be used by the individual wearing the watch, who can use it to periodically check the operation of his/her watch. The device can thus serve as a diagnostics device capable of being used by the individual wearing a watch, in order to gather operating data and which will allow a specialist to detect defects.
Number | Date | Country | Kind |
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19204404.8 | Oct 2019 | EP | regional |