This application claims priority to European Patent Application No. 19204403.0 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 systems for testing the mechanical movement of this type of watch.
Tests are well known for determining the regularity of running, as well as other parameters characteristic of a mechanical watch movement. The measurements used consist of optical and/or acoustic measurements of the impulses generated by the mechanical oscillator of the movement. The acoustic measurements known to date often use expensive microphones which make this solution not very cost-effective. Moreover, it is difficult to measure a plurality of movements by a plurality of microphones close to one another, due to the mutual disturbance of the acoustic signals detected by these microphones. However, optical measurements have been developed, but the equipment required to implement these methods are relatively complex and also expensive.
The present invention aims to provide a solution to the aforementioned problems. This purpose is achieved by a measuring case, a measuring system, and by a method according to the accompanying claims.
The invention relates to a case configured so as to receive a plurality of mechanical watch movements in the wound state, each movement being housed inside a compartment, configured so as to receive and maintain the movement according to a predefined orientation. In this position, the winding buttons of the movements are positioned facing respective microphones which are mounted inside the case. The microphones are configured such that they cancel or damp the noises detected, such that the acoustic measurements of each of the movements are essentially not disturbed by the noises produced by the adjacent movements.
The invention further relates to a method for testing a plurality of mechanical movements installed in the case, and to a testing system which includes the case. According to the method, the movements are measured, for example, by a plurality of cycles of consecutive and successive measurement periods.
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 case 1 shown in
The central part 3 of the case 1 further comprises a PCB 6 (printed circuit board, the board whereof is made of synthetic material), mounted beneath the compartments 5. The PCB 6 is provided with microphones 7, where a microphone 7 is disposed beneath each compartment 5. The microphones 7 are connected to conductive tracks (not shown) of the PCB in order to transmit electrical signals which are representative of the acoustic noises detected by the microphones 7. Each microphone 7 is positioned as a function of the compartment 5 thereof, such that the winding button 8 of the movement 10 housed inside the compartment 5 is facing the dedicated microphone 7 thereof.
The microphones 7 are configured so as to record the noises generated by the mechanical oscillator of the respective movements 10. 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 characterising the operation of the movement to be measured, such as the running state and the beat.
Preferably, the microphones 7 are contact microphones comprising a piezoelectric element. The correct recording of the ‘tick’ and ‘tock’ impulses thus requires the winding buttons 8 of the movements to be mounted in physical contact with the piezoelectric elements of the microphones 7 or with a contact piece onto which the piezoelectric element is fastened.
The central part 3 of the case 1 further comprises a central compartment 11 configured so as to receive a battery 12, preferably a rechargeable battery, which acts as a power source for the components mounted on the PCB. Instead of a battery, a conventional power supply capable of being connected to the mains can be used.
According to the invention, the case 1 is configured such that the acoustic measurements recorded by one of the microphones 7 are essentially not disturbed by the impulses (ticks and tocks) of the movements other than the movement housed in the compartment facing the microphone in question.
For this purpose, the microphones 7 are provided with means for cancelling the measured noise to prevent this noise from propagating inside the case 1. According to a preferred embodiment, the microphones are contact microphones comprising a piezoelectric element and a spiral-shaped noise-cancelling structure arranged in the material of the PCB, the piezoelectric element being fastened to the spiral-shaped structure.
The case 1 is also configured so as to insulate the microphones 7 from noises that originate from outside the case 1 when the case is installed in a test environment. The insulation of the microphones 7 relative to the noises from outside the case is procured by an appropriate construction of the case itself, and in particular by wisely choosing the material used for the case 1. The construction represented in the figures, consisting of two thick covers 2 and 4, mounted on either side of the central part 3 containing the movements and according to which the parts 2, 3, 4 are made of an acoustically insulating material, such as an EPP (Expanded Polypropylene) foam is capable of procuring the insulation from external noises.
The invention further relates to a method for testing the movements 10 installed in the case 1 on the basis of the signals generated by the microphones 7. The method involves recording, at regular intervals, the values of a number of parameters characterising the operation of the movements 10, during part or all of the power reserve of the movements, which can be equal to about 72h. The method is illustrated by way of a diagram in
It should also be noted that the sequential measurement of one movement after another movement is a version that minimises diaphony and consumption. However, depending on the quality of the materials used to make the case, the external environment, and the reliability of the measurement and of the algorithm, it is entirely possible to procure a simultaneous acquisition of two or more movements during one measurement period. The different measurements are taken, for example, for two movements disposed opposite one another, or even for one movement in every two during a first measurement period interval, and for the remaining 50% of the movements during a second measurement period interval. A rolling measurement can also be carried out between each movement. In this scenario, the acquisition of the first movement starts by itself, then, after a certain time, the measurement of the first movement continues, while the measurement of the following movement starts, then the measurement of the first movement stops once the measurement time has elapsed, and the measurement continues solely with the second, then the measurement of the third starts, and so forth.
One specific embodiment of the method, also shown in
According to preferred embodiments, the case 1 is provided with means for processing the signals and means for recording the parameter values according to the diagrams shown in
According to a preferred embodiment, certain components operate in a non-continuous mode, being woken up at intervals, at the times at which data is sent outside the case 1. This operating mode minimises power consumption.
The case 1 itself can be considered such that it may not comprise means for processing the signals from the microphones. It is thus configured so as to form a part of a testing system comprising the case 1 and a computer connected to the case. The method of the invention is thus implemented in the computer in the form of a set of electrical and/or microelectronic components which process the signals generated by the microphones 7 so as to obtain and record the values at the end of each measurement period PX.
Number | Date | Country | Kind |
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19204403.0 | Oct 2019 | EP | regional |