MONITORING SENSOR FOR A ROPE OF CABLEWAY SYSTEMS
20190309470 ยท 2019-10-10
Assignee
Inventors
Cpc classification
G01M5/0025
PHYSICS
G01L5/042
PHYSICS
D07B1/145
TEXTILES; PAPER
International classification
D07B1/14
TEXTILES; PAPER
G01L5/04
PHYSICS
Abstract
Sensor (1) for monitoring the parameters of rotation around its own axis and vibration of a steel rope (100), comprising a battery (2), indicator means (3) of the state of charge of said battery (2), at least a LED indicator (5), a power unit (7) which supplies the sensor (1), a detection unit (8) of the rotation angles (, ) around its own axis (X) and of the vibrations of said steel rope (100), a microprocessor (9) for collection activity and data transmission, said sensor (1) being housed in a portion obtained in the core (110) of the steel rope (100).
Claims
1. A sensor (1) for monitoring the parameters of rotation around its own axis and vibration of a steel rope (100), comprising: a battery (2), indicator means (3) of the state of charge of said battery (2), at least a LED indicator (5), a power unit (7) which supplies the sensor (1), a detection unit (8) of the rotation angles (, ) around its own axis (X) and of the vibrations of said steel rope (100), a microprocessor (9) for collection activity and data transmission, said sensor (1) being housed in a portion obtained in the core (110) of the steel rope (100).
2. The sensor (1) according to claim 1, further comprising an oscillator means (6) in the form of oscillator crystal which provides the microprocessor with the timestamp, with a better precision than the inner clock of the same microprocessor (9).
3. The sensor (1) according to claim 1, further comprising a flash memory (11) outside the microprocessor (9), able to substitute the flash memory incorporated in the microprocessor (9).
4. The sensor (1) according to claim 1, further comprising a Bluetooth interface (10) with low energy consumption.
5. The sensor (1) according to any one of claims 1 to 4, characterized in that said detection unit (8) measures accelerations on the three axes x-y-z of the steel rope (100).
6. The sensor (1) according to claim 1, supplied by a voltage equal to 3.7 V.
7. The sensor (1) according to claim 1, characterized in that it is imbedded inside a protective material (12) and positioned inside a cylinder (112) of non-metal material resistant to compression.
8. The sensor (1) according to claim 7, wherein said cylinder (112) has equal length to the dimensions of the sensor (1) and battery (2), and a thickness variable according to the diameter of the rope (100) where it is positioned.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0008] These and other advantages of the invention will be described in detail in the following, with reference to the appended drawings, in which:
[0009]
[0010]
[0011]
[0012]
[0013]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0014] As it is shown in
[0024] The battery of the sensor can be recharged as required by an outer battery charger 4, connected to an outer feeder as well (+5V) which recharges the battery 2.
[0025] Said sensor 1 and said battery 2 are positioned inside the rope 100, in a portion obtained in the core 110 of the rope, i.e. in the innermost portion of the same rope (FIGS. 3, 4). In this way, the sensor 1 can measure the quantities concerning the rotation of the rope around its own axis and the vibrations along the whole path of the system. Specifically, the sensor 1 uses an accelerometer 8 which measures the accelerations on the three axes x-y-z of the rope 100. With these measurements, by means of suitable mathematical formulas, it is possible to quantify the rotations of the rope around its own axis and the intensity of the vibrations of the rope when passing on the roller conveyors 200 of
[0026] To protect the sensor and the battery from the compression mechanical stresses to which they are subject to, caused by the rope pulling, they are both drowned in a protective material 12, for example resin, as shown in
[0027] The data collected by the sensor 1 during the normal functioning of the rope along the system are communicated by Bluetooth LE4 to a smartphone by means of an application developed therefor. The application allows to: [0028] connect/disconnect to the sensor/sensors provided inside the rope; [0029] send the data registration start command to the sensor, by selecting any registration frequency; [0030] send the data registration stop command to the sensor; [0031] download the data collected by the sensor; [0032] send the data collected by the sensor to the PC; [0033] delete the data present in the memory of the sensor; [0034] request the dimension of the free and used memory to the sensor; [0035] request the charge state of the battery to the sensor.
[0036] The smartphone communicates with a personal computer positioned in one of the stations of the system. Finally, by means of a software specifically developed therefor the personal computer collects, processes and shows the data collected by the sensor, and provides the user with: [0037] number, direction and quantity of the rotations along the system;
intensity of the vibrations on each roller conveyor of the system.
[0038] Besides the embodiments of the invention, as above described, it is to be intended that there exist many other variants. Further, it is to be intended that said embodiments are only example and do not limit in any way the invention and its possible application or configurations. On the contrary, even if the above description allows the experts in the field to implement the present invention at least according to one example embodiment, it is to be intended that many variants of the elements described can be made without departing from the object of the invention, encompassed by the appended claims, literally interpreted and/or according to their legal equivalents.