MONITORING SYSTEM OF A RAILROAD AXLE AND PERIPHERALS
20210380149 · 2021-12-09
Inventors
- Ronaldo DE FARIA ANTUNES (Belo Horizonte - MG, BR)
- Antônio Sérgio MEDEIROS FONSECA (Belo Horizonte - MG, BR)
- Diego SILVA MELO (Belo Horizonte - MG, BR)
Cpc classification
B61L15/0081
PERFORMING OPERATIONS; TRANSPORTING
B61K9/04
PERFORMING OPERATIONS; TRANSPORTING
International classification
B61L15/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The present invention refers to a system for monitoring a railroad axle and its peripherals comprising a steel axle (10), and at least one monitoring device (20) coupled to the axle and its elements (10), wherein the at least one monitoring device (20) performs measurements of data indicative of monitored conditions of the axle (10) and its peripherals, and transmits the measurements to at least one remote point.
Claims
1. Monitoring system of a railroad axle, characterized by comprising: a steel axle, and at least one monitoring device coupled to the axle, wherein at least one monitoring device performs measurements of data indicative of monitored conditions of the axle and its peripherals, and transmits the measurements to at least one remote point.
2. The monitoring system according to claim 1, wherein at least one monitoring device comprises at least one sensor, one microcontroller, one data transmitter, one power source and one storage unit.
3. The monitoring system according to claim 1, wherein the monitored conditions comprise at least one of a bearing temperature, vibration associated to jolts, strains, number of cycles, speed, position and discontinuities.
4. The monitoring system according to claim 1, wherein the measured data are transmitted by means of at least one of a mobile network, a wireless network, Bluetooth and radiofrequency.
5. The monitoring system according to claim 1, wherein the measurements are performed at preset measurement time intervals.
6. The monitoring system according to claim 1, wherein the measurements are performed in real time.
7. The monitoring system according to claim 2, wherein the power source of the monitoring device is one of a battery or an autonomous alternative source.
8. The monitoring system according to claim 2, wherein the device comprises at least one of a temperature sensor, accelerometer and gyroscope.
9. The monitoring system according to claim 1, wherein the monitoring device communicates with and/or identifies an RFID device arranged on at least one of the axle, a bogie and a wagon of a railroad vehicle.
10. The monitoring system according to claim 1, wherein the axle is a seamless hollow tubular steel axle.
11. The monitoring system according to claim 10, wherein the at least one monitoring device is housed inside the axle.
12. The monitoring system according to claim 10, wherein the monitoring device is housed inside a seat of a bearing of the axle.
13. The monitoring system according to claim 1, wherein the axle is a solid axle.
14. The monitoring system according to claim 13, wherein at least one monitoring device is coupled to one end of the axle.
15. The monitoring system according to claim 1, characterized by being embedded in any peripheral of the axle.
16. The monitoring system according to claim 1, wherein the axle is an axle made of solid bar, with an inner hole machined at least at one end.
17. The monitoring system according to claim 16, wherein the axle made of solid bar has a through-hole.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0017] For a better understanding, the features and advantages of the present invention will be disclosed and described together with their respective figures, which illustrate some preferred embodiments of the invention.
[0018]
[0019]
[0020]
[0021]
DETAILED DESCRIPTION OF THE INVENTION
[0022] The system for monitoring a railroad axle according to the invention comprises a steel axle 10 used in railway vehicles, at whose ends there can be coupled a wheel and a bearing, as shown in
[0023] To measure these conditions, the monitoring device according to the invention may comprise sensors such as, for example, temperature sensors, accelerometers, gyroscopes, and others. Other types of sensors or meters may also be used in the monitoring device, depending on the type of condition for which monitoring is desirable. These devices, also known as transducers, may be contained in the same system casing or distributed along the axle and coupled to the wireless or wired system.
[0024] The representative data of these conditions are captured by the monitoring devices and transmitted to at least one remote point, for example, another sensor device, building a local network between sensors, a control center of the vehicle, of the locomotive or of the railway line, or an antenna arranged along the railway line which relays this data to a control center, and others. From the data sent, the control center or even an operator of the railway line with access to this remote point can interpret and know the monitored conditions, and send control signals back to the railway vehicle, or locomotive, in order to manage the operation of the vehicle according to said conditions. For example, if one of these conditions could endanger the operation of the vehicle, the signal is then sent to the vehicle with an order to stop.
[0025]
[0026] The monitoring device 20 further comprises a power source 23 to feed its components (not illustrated). This power source can be, for example, a battery or an autonomous alternative source that uses its own kinetic energy of the wheelset in movement, either by magnetic induction or another physical principle. The monitoring device 20 may also be adapted so as to communicate and/or identify a identification device by radio frequency (RFID—Radio-Frequency IDentification) coupled to any component of the railway vehicle in a location nearby, for example, on the axle itself, on the bogie, or in the wagon, for tracking and control purposes.
[0027] In the embodiment of the invention shown in
[0028] In this embodiment shown in
[0029] In a possible way of operation of this embodiment of the invention, it is possible to set an upper limit for an acceptable temperature, for example, 90° C. The sensor monitors the temperature of the axle, and when it reaches or exceeds this upper limit, the monitoring device according to the invention outputs a signal indicating overheating to a control center or a control point. In response to this signal, the railway vehicle receives a stop command.
[0030] According to another embodiment not illustrated of the invention, the railroad axle 10 is a solid axle, preferably cylinder-shaped, with an inner hole machined at each end. The hole can be a through-hole, or otherwise. In this case, the monitoring device 20 is coupled to the end of the axle, being limited between the cover of the bearing and the end of the axle, where usually a small gap is formed, or even attached to or embedded in the cover. The system may also comprise two monitoring devices, each being coupled to one of the ends of the axle.
[0031] In any of the embodiments described herein, an advantage of this invention is that since the monitoring device 20 is positioned inside the tubular axle 10, or in the case of a solid axle, it is protected by the cover of the bearing, there is no risk of vandalism or the action of weathering that compromises the good operation of the system. This significantly increases the durability of the system according to the invention.
[0032] Another advantage is that it is possible to build a database with more parameters (temperature, acceleration and others), more accurate (inside the axle), on more points (all the bearings), at a greater frequency (intervals of seconds instead of hours), than was possible with current techniques, for subsequent analysis off-line, the possibilities of generating value for railway users being almost infinite.