Patent Description:
A bearing failure in vehicles, agricultural machinery, and a great variety of industrial machinery can cause significant damage. It is important to predict the wear and tear, failure of bearings.

In the case of agricultural machinery, one of the common causes of accidents is fire. And fire can be caused, among other things, by bearing failure. For example, variable-chamber belt balers have a tendency to catch fire due to the fact that the worn bearings get stuck, and mechanical friction can result in high temperatures (<NUM>-<NUM>) that easily ignite the straw in the bale chamber.

The continuous vibration of bearings can accelerate the wear and tear process.

That is why it is so important to predict the wear and tear, failure of bearings.

As it is known, when testing and checking the operation of bearings, the temperature, vibration and acceleration of the bearing, and the ambient temperature of the bearing are measured.

In the prior art devices are known for maintaining the safe operation of vehicles, which are suitable for monitoring the wheel bearings of vehicles, e.g. trains and cars during operation, by monitoring certain physical parameters.

Systems are known for monitoring the operation of railway vehicles, which measure and monitor, through sensor units connected to the rotating parts of trains, certain physical parameters of the rotating parts, such as temperature, vibration and acceleration. By monitoring the changes in these parameters during the operation of the vehicle and transmitting the measured parameters in real time, the safe operation of the vehicle can be maintained, as disclosed in Chinese patents No. <CIT> and No. <CIT>.

Utility model No. <CIT> relates to a wireless monitoring system for monitoring the bearing temperature of railway freight cars. The device is fixed on the bearings of railway freight cars. The bearing cover is covered by a casing, and an air gap between the outer casing and the bearing cover forms a cavity for the sensing node and the aggregation node of the monitoring system, which are connected to a circuit board and a generator. The outer end surface of the temperature sensor is fitted to the bearing cover, and its base is fixed on the circuit board. The device is fixed on the bearings by mounting bolts. If the temperature exceeds the set threshold, an alarm message is sent via a Bluetooth, Wi-Fi or GPRS communication module included in the device to the management centre of the train to take appropriate measures.

International patent application with publication No. <CIT> discloses a monitoring system for railway vehicles comprising a sensor unit placed in the vicinity of a wheel axle end and a processing arrangement. The sensor unit comprises sensors, a power supply, means for processing and encoding information, and also includes communication means. Data measured by the sensor unit is transmitted via the communication means to the processing arrangement. The sensor unit comprises sensors for sensing one or more of the parameters of vibration, temperature, velocity and acceleration. The sensor unit also comprises means for some processing of sensor data, communication means, and a power supply. Energy is generated from the rotation of the wheel axle. A polarised member is arranged at the wheel axle, thereby inducing current in an armature coil.

Patent No. <CIT> relates to test instruments for measuring the overall dynamic operating quality of a ball-bearing assembly, and more particularly to an instrument which is adapted to test such a ball-bearing assembly by measuring the axial vibrations produced by bearing defects. In a preferred embodiment of the invention a velocity sensitive electromechanical transducer is employed to sense the axial vibrations.

Patent application No. <CIT> relates to a condition monitor for monitoring vibration of a structure or machine comprises an enclosure; at least one vibration sensor within the enclosure; a processor located within the enclosure, the processor connected to the at least one sensor for analysing signals produced therefrom; data storage within the enclosure for buffering data prior to wireless transfer; means for mounting the monitor to the structure or machine; and a wireless transmitter. The mounting may be achieved by one or two magnets integral to the monitor, the magnets having a curved mating surface for contact with the structure or machine. The vibration sensors may comprise two or more biaxial sensors, providing simultaneous measurements over three axes. The monitor may determine faults using an algorithm that evaluates parameters including vibration amplitude, number of harmonics, total signal level, and noise floor level. The monitor may also comprise a temperature sensor for monitoring temperature.

Patent application No. <CIT> describes a method of reading sensor values from or writing programming alarm and monitoring algorithm parameters into a warning device for monitoring a bearing having a close range wireless interface is disclosed. The method of reading or writing includes providing an RFID tag having an integrated circuit with memory, a radio for modulating and demodulating a radio-frequency signal, an antenna for receiving and transmitting the radio-frequency signal, and a digital bus mounted to a PCB, the digital bus connecting a microcontroller to the RFID tag. The warning device monitors the health status of a bearing , which is normally mounted to a piece of rotating industrial machinery, e.g. motors, fans, conveyors and pumps. The warning device has a generally cylindrical body portion that is connected to an annular top portion. The annular top portion includes at least one tri-color light emitting diode for displaying the health status of the bearing. The warning device further provides at least one sensor that senses at least one of a velocity, an enveloped acceleration and a temperature value of the bearing. The sensor is mounted to a Printed Circuit Board, which is in tern potted inside the body and base portion. When a sensor senses a change in velocity or acceleration or temperature it sets off an alarm.

The invention of the application No. <CIT> discloses a novel industrial vibration temperature measuring instrument which comprises a measuring module, a mobile terminal and a server management platform, wherein the bottom of the measuring module is provided with a magnetic suction plate which adsorbs tested equipment through magnetic force; the measuring module comprises a battery unit, and a vibration acquisition unit, a temperature acquisition unit, a signal conditioning circuit, a wireless transmission unit and a micro-processing unit which are connected with the battery unit, wherein the vibration acquisition unit is an XY-axis bidirectional vibration sensor and is used for measuring the vibration information of X, Y two directions of the equipment to be measured; the temperature acquisition unit is arranged on the magnetic suction plate and is adsorbed on the adsorption surface of the tested equipment, the temperature acquisition unit and the vibration acquisition unit are connected with the signal conditioning circuit, and the output end of the signal conditioning circuit is connected with the micro-processing unit. The invention effectively simplifies the steps and the flow of field installation and use, and can monitor the vibration and temperature information of the tested equipment component, thereby giving an alarm for abnormal conditions.

Patent application No. <CIT> relates to a wheel hub bearing unit monitoring and early warning system for an automobile, which monitors the bearing during operation by monitoring the bearing temperature and the vibration due to external interference. The device comprises a temperature sensor, a vibration sensor and a signal analysis chip. An encryption module is mounted on the chip, and the analysed information is sent to the vehicle controller through the encryption module. The device is powered by battery. The device has a screw-shaped housing comprising a bolt, a screw head and a cover plate. The housing further comprises a heat insulating sleeve and a heat insulating gasket. The temperature sensor is mounted on the housing, and is connected to the signal analysis chip through a signal rod in the bolt. The signal rod transmits the temperature signal collected by the temperature sensor to the signal analysis chip. The vibration sensor is mounted on the screw head, and is connected to the signal analysis chip through a vibration transmitting metal rod in the screw head. The vibration transmitting metal rod transmits the vibration signal collected by the vibration sensor to the signal analysis chip.

The ABB ability smart sensor (https://new. com/motors-generators/service/advanced-services/smart-sensor) is a wireless device for small bearings, which is suitable for monitoring the temperature and vibration of bearings. The sensor can only be used for bearings that have a part with a special mounting hole for fixing the sensor by means of an adapter. This special design is a disadvantage for the ABB ability sensor, as it cannot be used for conventional bearings.

Patent No. <CIT> relates to a sensor device for sensing and monitoring the physical parameters of machines, workstations, treatment or production plants, industrial an/or similar technical equipment. The sensor device comprises at least one sensor, a housing and a base plate. The sensor, which is typically a presence, position or motion sensor, is located outside the housing, fixed to, placed inside, or at least partially integrated into the equipment, and is connected to the base plate in the housing by an electrical wire surrounded by a rigid coating. The housing is mechanically fixed to the relevant equipment in an easily accessible place, preferably on the surface, and in a visible manner, by means of the base plate. This design allows the sensor to be placed inside the equipment to be monitored, while the easily accessible housing most at risk of damage can be replaced/repaired without having to remove the other parts - the sensor and the base plate.

The above solutions can be used efficiently to monitor the parameters indicating the condition of the rotating parts of vehicles (wheels, axles, bearings), their disadvantage is that the devices measuring the condition of the rotating parts are integrated into the given rotating part and/or their mounting is time and energy consuming. These measuring devices are not mobile, they cannot be moved from one bearing to another without dismounting and remounting.

It is an aim of this invention to provide a system, as defined in independent claim <NUM>, that continuously and simultaneously monitors in real time all important physical and ambient parameters of one or more bearings operating in a vehicle, agricultural or industrial machinery or equipment.

It is a further aim of this invention to provide a measuring device with sensors which has a small area, allowing it to be placed in the vicinity of any bearing of a vehicle, and which can be easily and firmly fixed without mounting in the immediate vicinity of the bearing to be monitored, in order to provide a very accurate measurement of the physical parameters of the bearing.

It is another aim to be able to move the same measuring device to the vicinity of another bearing of the given machine or vehicle at any time without dismounting and remounting.

It is yet another aim to provide a system able to contain multiple, up to <NUM> to <NUM> measuring devices, and thus, as one measuring device measures the parameters of one bearing, a system able to monitor <NUM> to <NUM> bearings of a vehicle simultaneously.

The idea of the invention is based on the recognition that a vehicle includes a lot of bearings, the wear and tear of which occurs at very different times. It would be a very costly solution to place a monitoring device on each bearing of a vehicle. The operator of the vehicle, on the other hand, knows which bearings have been in operation for a long time, or which bearings are under increased load, e.g. continuous vibration, i.e. he knows which bearings need special attention. A mobile measuring device that can be placed at will, and can be placed easily and safely on different bearings, bearing housings of a vehicle, machine or equipment, or in their immediate vicinity, and continuously monitors the physical parameters of bearing operation, greatly increases the safety of the vehicle, machine or equipment.

It is further recognized that if the infrared temperature sensor of the measuring device is not rigidly but flexibly connected, the sensor can be directed to the bearing to be monitored at an appropriate proximity and angle, thereby providing very accurate data on the bearing temperature.

It is still further recognized that the known solutions fail to take into account the ambient humidity of the bearing, although in case of a too low humidity level there may be a risk of self-ignition, e.g. the stuck dust can catch fire, and the fire can spread to the surrounding parts containing rubber or plastic. For example, there is a correlation between ambient humidity and the moisture content of straw.

Thus, the invention relates to a monitoring system comprising one or more measuring devices, an online communication device, e.g. a smart phone, tablet or laptop, and a wireless connection between the measuring device and the online device. The measuring device and the online device are connected by means of radio waves, through a Wi-Fi (Wireless Fidelity) network connected to the Internet.

The measuring device has a closed housing, the housing contains a two-sided printed circuit board, and a charging unit and a battery are fixed to the lower side, and a microcontroller, an acceleration sensor and an ambient temperature and humidity sensor are fixed to the upper side of the printed circuit board. The printed circuit board is fixed to the housing by means of screws, the parts are fixed to the printed circuit board by soldering, using the through-hole and surface mounting technologies.

A vibration sensor is fixed to the inside of the bottom of the housing by gluing, which is connected to the printed circuit board by an electrical wire. There is a vent plug in one side wall of the housing for equalizing humidity inside and outside the measuring device, preferably an IP66-rated vent plug.

One of the side walls of the housing is provided with an opening, a flexible hose extending from the housing is fixed into the opening in a releasable manner, and the other end of the hose contains an infrared temperature sensor. The infrared temperature sensor is connected to the printed circuit board by an electrical wire. A threaded end of the hose passes through the opening of the housing, and is fixed to the inside of the housing by a nut. The hose is made of a flexible material, i.e. it can be easily bent in any direction, it can be made of metal or silicone, and the length of the hose is between <NUM> and <NUM>.

There are at least two magnets on the outside of the bottom of the housing, the magnets are fixed in an unreleasable manner, preferably by gluing. The magnets provide a very strong releasable connection between the given surface of the vehicle and the housing of the measuring device. The magnets are selected from a group consisting of the strongest magnets, they are preferably neodymium magnets.

An electrical wire runs from each of two magnets, the electrical wires lead into the housing, the electrical wire running from one of the magnets provides the ground for the measuring device, the electrical wire running from the other magnet provides power supply to the charging unit, and thereby to the battery and the measuring device. The wires are fixed to the magnets by soldering. There can be more than two magnets on the housing, in which case the third or any additional magnet serves only the purpose of fixing the measuring device to the surface of the vehicle. The magnets are preferably rectangular or circular shaped.

The control unit of the measuring device is a programmed microcontroller, which collets and processes, converts into HTML format the signals received from the sensors via the printed circuit board, and transmits them via Wi-Fi to the online device, which displays in real time the various parameters: the temperature, vibration and acceleration data of the bearing, and the ambient temperature and humidity of the bearing.

The components of the measuring device are powered by the battery, which is preferably a Li-ion battery. The battery is connected to the charging unit, which is charged through the magnets. The magnets charge the battery through the charging unit by means of a charging station.

The measuring device is charged by placing the measuring device with the magnets on the charging station. During charging, the metal part of the charging station is in contact with the magnets, and the charging unit is charged via the wires connected to the magnets, thereby ensuring the charging of the battery. The battery charge level is displayed on the online device.

There is no physical power button on the measuring device. When the measuring device placed on a surface to be monitored senses the vibration of the vehicle, it will automatically activate the system if an online connection exists. When the online connection and/or the vibration ceases, the system will "shut down".

The data received from the sensors are continuously displayed on the online device, the data show the operating parameters of the bearing/bearings in real time. If a value is outside the range required for proper operation, the operator of the machinery will see, or the system will give an - audible and/or visual - warning, showing which bearing needs attention, so that he can take the necessary action. The operating temperature of bearings operating properly is between <NUM> and <NUM>. The main task of the monitoring system is to detect a deviation from the normal operating range of the bearings.

Main characteristics of the sensors of the measuring device:.

In a preferred embodiment, a system comprises one measuring device.

In another preferred embodiment, a system comprises six measuring devices, which measuring devices transmit data simultaneously on the parameters of six different bearings of a given machine or equipment to an online device.

The invention will be described in detail with reference to the following figures, without limiting the scope of protection to the embodiments shown in the following figures:.

<FIG> shows the housing <NUM> of the measuring device, magnets <NUM> fixed to the outside of the bottom thereof, which magnets <NUM> fix the housing <NUM> firmly to the surface <NUM> of a vehicle, in the vicinity of a bearing <NUM>. There is a vent plug <NUM> in one side wall of the housing <NUM>, and on the opposite side wall a flexible hose <NUM> is fixed to the housing <NUM>. The other, non-fixed end of the hose <NUM>, which contains an infrared temperature sensor <NUM>, is placed in the immediate vicinity of the bearing <NUM> to be monitored. The measuring device transmits Wi-Fi signals <NUM> that are received by an online device.

<FIG> shows a bearing <NUM> mounted on the surface <NUM> of a vehicle, and a measuring device fixed to the surface <NUM> in the vicinity of the bearing <NUM>. The top view shows the screws <NUM> fixing the cover of the housing <NUM> to the rest of the housing <NUM>, the side walls thereof. The end of the hose <NUM> is bent on the bearing <NUM>.

<FIG> shows the components of the measuring device and their connection to each other. In the middle part of the housing <NUM> there is a printed circuit board <NUM>, on the upper side of which there is an ambient temperature and humidity sensor <NUM>, a microcontroller <NUM>, and an acceleration sensor <NUM>.

On the lower side of the printed circuit board <NUM> there is a charging unit <NUM>, which is in contact with a battery <NUM>.

There is an opening <NUM> in one side wall of the housing <NUM>, with a flexible hose <NUM> fixed into it, the other end of which contains an infrared temperature sensor <NUM>, from which an electrical wire <NUM> runs to the printed circuit board <NUM> through the hose <NUM>.

A vent plug <NUM> is incorporated into the side wall of the housing <NUM> opposite to the side wall containing the hose <NUM>.

A vibration sensor <NUM> is fixed to the inside of the bottom of the housing <NUM> by gluing, from which an electrical wire <NUM> fixed by soldering runs to the printed circuit board <NUM>. Two magnets <NUM> are fixed to the outside of the bottom of the housing <NUM>. An electrical wire <NUM> is connected to each of the magnets <NUM>. The electrical wire <NUM> running from one of the magnets <NUM> provides the ground, the electrical wire <NUM> running from the other magnet <NUM> is provided with a diode <NUM> and leads to the charging unit <NUM>. The magnets <NUM> serve as charging points, when the measuring device is placed on a charging station to charge the charging unit <NUM> with electricity. In the Figure, the charging polarity is marked with + and -. The diode <NUM> installed between the magnet <NUM> and the charging unit <NUM> protects the system from electrical short circuits.

The operation and use of the system according to the invention is as follows.

The driver/operator of an agricultural machine fixes the housing <NUM> of the measuring device to the bearing housing of a selected bearing <NUM> or in the immediate vicinity thereof by means of the neodymium magnets <NUM>, and manually bends the end of the hose <NUM> containing the infrared temperature sensor <NUM> directly above the bearing <NUM>. The distance between the infrared temperature sensor <NUM> and the bearing is <NUM> to <NUM>, preferably <NUM> to <NUM>.

When an online connection is established, the movement of the vehicle generates vibrations in the vibration sensor <NUM>, which activates the system, and then, during the operation of the bearing <NUM>, the temperature, acceleration and vibration data thereof, and the ambient temperature and humidity data of the bearing <NUM> are continuously transmitted via Wi-Fi to, and displayed in real time by the online communication device.

If the system contains multiple, e.g. six measuring devices, the driver/operator of the agricultural machine places six measuring devices on the vehicle, in the vicinity of six different bearings <NUM>. Then the display of the online device shows the physical parameters of all six bearings <NUM> simultaneously.

The driver of the agricultural machine can check the data received for a given bearing <NUM> while working, and if any data is outside the normal operating range, he can take the necessary actions.

With the solution according to the invention, the measuring device of the system itself can be placed close to a selected bearing, which ensures the provision of accurate data, and in addition, by bending the flexible hose as necessary, the end of the flexible hose containing the infrared temperature sensor can be placed even closer to the surface of the bearing, so the system can detect the bearing temperature very accurately and reliably.

Claim 1:
A wireless bearing monitoring system with a mobile measuring device for vehicles, agricultural and industrial machinery, which system comprises at least one measuring device and an online device, and a Wi-Fi network for communication between the measuring device and the online device; the measuring device comprising a housing (<NUM>) equipped with sensors, the housing (<NUM>) contains a two-sided printed circuit board (<NUM>), and a microcontroller (<NUM>), an ambient temperature and humidity sensor (<NUM>) and an acceleration sensor (<NUM>) are connected to the upper side of the printed circuit board (<NUM>), further comprising a charging unit (<NUM>) on the lower side, to which a battery (<NUM>) is connected, furthermore, an infrared temperature sensor (<NUM>) and a vibration sensor (<NUM>) connected to the printed circuit board (<NUM>), and the measuring device is provided with a vent plug (<NUM>); the connection between the sensors and the microcontroller (<NUM>) is established via the printed circuit board (<NUM>), the signals received by the microcontroller (<NUM>) are processed and then transmitted to the online device,
characterized in that
the infrared temperature sensor (<NUM>) is located at the end of a flexible hose (<NUM>) connected to a side wall of the housing (<NUM>), and is connected to the printed circuit board (<NUM>) by an electrical wire (<NUM>) led through the hose (<NUM>), the vibration sensor (<NUM>) fixed to the inside of the bottom of the housing (<NUM>) is also connected to the printed circuit board (<NUM>) by electrical wire (<NUM>); further comprising at least two magnets (<NUM>) on the outside of the bottom of the housing (<NUM>), one of the magnets (<NUM>) is connected to the charging unit (<NUM>) by electrical wire (<NUM>), furthermore, another magnet (<NUM>) is equipped with electrical wire (<NUM>) providing the ground, the magnets (<NUM>) are fixed to the housing (<NUM>) in an unreleasable manner, and the magnets (<NUM>) fix the housing to the surface (<NUM>) of a vehicle in a releasable manner.