Method for determining a capacitance value of a supercapacitor of an electromechanical brake system of at least one vehicle, electromechanical brake system, and vehicle

JP2024521361A5Pending Publication Date: 2025-06-10FAIVELEY TRANSPORT ITAL SPA
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Patent Information

Application Number
JP2023574458
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2021-06-04
Filing Date
2022-06-03
Publication Date
2025-06-10

AI Technical Summary

Technical Problem

Existing electromechanical braking systems with supercapacitors face challenges in monitoring their capacitance without impairing their ability to perform emergency braking, leading to potential safety risks due to wear and degradation over time.

Method used

A method to determine the capacitance value of supercapacitors by measuring voltage variations and current flow during charging or discharging operations, allowing for real-time monitoring and ensuring sufficient energy is available for emergency braking.

Benefits of technology

Enables continuous monitoring of supercapacitor capacity without disrupting emergency braking functions, enhancing safety by preventing unsuitable energy depletion and triggering maintenance or safety protocols when necessary.

✦ Generated by Eureka AI based on patent content.

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Abstract

A method for determining a capacitance value of a supercapacitor (100) of an electromechanical braking system (102) is described, the method comprising the steps a)-f) of: a) measuring a first voltage value at the terminals of the supercapacitor (100); b) if the first voltage value is greater than a predetermined minimum voltage value, performing a charging or discharging operation of the supercapacitor during a measurement time interval to bring the terminals of the supercapacitor to a second voltage value equal to or greater than the minimum voltage value; c) determining a voltage variation at the terminals of the supercapacitor during the measurement time interval; d) determining a rate of voltage variation; e) measuring a current value flowing through one of the terminals of the supercapacitor at a measurement time; f) calculating a capacitance value of the supercapacitor by a ratio of the measured current value and the voltage variation rate. An electromechanical braking system (102) and a vehicle using the method are also described.
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Description

[Technical field]

[0001] The present invention generally belongs to the field of methods and braking systems for vehicles, in particular the present invention relates to a method for determining a capacitance value of a supercapacitor of an electro-mechanical braking system of at least one vehicle, an electro-mechanical braking system and a vehicle equipped with this electro-mechanical braking system. [Background technology]

[0002] Today, new electromechanical brake systems based on mechatronic technology are being developed, e.g. for railway applications, whose design must functionally reproduce what was previously offered by a conventional electro-pneumatic brake, in particular with regard to safety-related functions.

[0003] These new electromechanical braking systems therefore need to ensure that: - an amount of energy is stored that is able to ensure at least one emergency braking action; - Emergency braking of the entire vehicle reaches a predetermined minimum safe level.

[0004] For example, braking systems typically include energy storage means configured to store sufficient energy to enable the electro-pneumatic braking system to perform at least one complete emergency braking operation.

[0005] Depending on the type of braking system, the energy storage means can take a variety of forms.

[0006] In the case of a pneumatic braking system, this energy storage means may conventionally be, for example, an auxiliary tank. In this case, the energy is stored by storing compressed air in the auxiliary tank, the volume of which is constant and invariable. In order to meet the necessary safety requirements, the internal pressure in the auxiliary tank is usually continuously measured by one or more pressure sensors (to meet any redundancy requirements).

[0007] By monitoring the pressure in the auxiliary tank, it is possible to immediately identify the loss of stored energy needed to perform emergency braking and, optionally, to intervene quickly to restore safety.

[0008] In an electromechanical braking system, however, the energy storage means may also be mechanical means for storing mechanical potential energy, which may for example be a helical spring. The mechanical means for storing mechanical potential energy stores the energy required to apply at least one emergency braking action and may obviously perform the same functions as those performed by the auxiliary tank described above.

[0009] Again, in order to meet the required safety requirements, the mechanical energy stored in the mechanical means for storing mechanical potential energy can be monitored by suitable sensors.

[0010] Again, by monitoring the energy stored in the mechanical means for storing mechanical potential energy, any loss of the stored energy required to perform emergency braking can be immediately identified and, optionally, rapid intervention can be performed to restore safety.

[0011] Obviously other forms of mechanical energy storage could also be used, such as, as a non-exclusive example, a flat helical spring, if the force transmission is rotational rather than translational.

[0012] In a further example, the stored energy may be kinetic energy, stored in a flywheel that is kept in proper rotation by an electric motor. Again, the stored kinetic energy can be monitored by suitable sensors to meet safety requirements. By monitoring the kinetic energy stored in a mechanical means for storing kinetic energy, any loss of stored kinetic energy required to perform emergency braking can be immediately identified and, optionally, rapid intervention can be performed to restore safety.

[0013] In yet another embodiment, the energy storage means of the electromechanical braking system may be an electrical energy storage device, for example a supercapacitor. In this case, an energy charger is able to transfer energy from a source to the supercapacitor. According to what has been said above, the supercapacitor performs the same function as that performed by the auxiliary tank, the supercapacitor storing (stores) the electrical energy required to apply at least one emergency braking action.

[0014] The energy stored in a supercapacitor is: Energy = 1 / 2 x C x V 2 and where C is the capacitance and V is the potential.

[0015] It is therefore necessary to monitor the voltage across the capacitor and its capacitance in order to be able to monitor the actual presence of sufficient energy for braking.

[0016] However, in terms of capacity, a supercapacitor usually has a nominal capacitance value that indicates the amount of electrical energy that can be stored therein. Unfortunately, a supercapacitor undergoes wear, which gradually reduces its capacity over the course of its use. This wear can even reach a level where the supercapacitor can no longer store a sufficient amount of electrical energy to perform a full emergency brake.

[0017] To measure the capacity of a supercapacitor, the prior art discloses systems and methods that require altering the availability of energy stored in the supercapacitor, temporarily impairing the ability to perform emergency safety braking. Summary of the Invention [Problem to be solved by the invention]

[0018] The object of the present invention is therefore to provide a solution which makes it possible to monitor the remaining capacity of a supercapacitor of an electromechanical braking system of at least one vehicle without temporarily impairing the ability to perform emergency safety braking, thus further increasing the safety level of the electromechanical braking system.

[0019] These and other objects and advantages are achieved according to one aspect of the present invention by a method for determining a capacitance value of a supercapacitor of an electromechanical braking system of at least one vehicle, the method having the features defined in claim 1.

[0020] According to a further aspect of the present invention, the above and other objects and advantages are achieved by an electromechanical braking system for at least one vehicle, said system having the features defined in claim 6.

[0021] These and other objects and advantages are achieved, according to a further aspect of the invention, by a vehicle having the features defined in claim 12.

[0022] Preferred embodiments of the invention are defined in the dependent claims, the content of which is to be understood as an integral part of this description. [Brief description of the drawings]

[0023] The functional and structural features of some preferred embodiments of a method for determining the capacitance value of a supercapacitor of at least one vehicle electromechanical braking system, an electromechanical braking system, and a vehicle according to the invention will now be described with reference to the accompanying drawings.

[0024] [Figure 1] FIG. 1 is a first flow chart illustrating an embodiment of a method for determining a remaining capacity value of an emergency supercapacitor of an electromechanical braking system of at least one rail vehicle according to the present invention. [Diagram 2] FIG. 2 shows a first embodiment of an electromechanical braking system with a supercapacitor. [Diagram 3] FIG. 3 shows a second embodiment of an electromechanical braking system with a supercapacitor. [Figure 4] FIG. 4 shows a second embodiment of an electromechanical braking system with a supercapacitor. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0025] Before describing the embodiments of the present invention in detail, it should be made clear that the present invention is not limited in its application to the design details and configuration of components set forth in the following description or illustrated in the drawings. The present invention can envision other embodiments and can actually be implemented or constructed in different ways. It is also to be understood that the phraseology and terminology are for descriptive purposes and should not be construed as limiting. The use of "include" and "comprise" and variations thereof are intended to encompass the elements described below and their equivalents, as well as additional elements and their equivalents.

[0026] By way of example, and with reference to FIG. 1, the following describes a first embodiment of a method for determining a capacitance value of a supercapacitor 100 of at least one electromechanical braking system 102 of a vehicle.

[0027] The supercapacitor 100 may be configured to store a sufficient amount of electrical energy to cause the brake system 102 to perform at least one emergency braking event.

[0028] The method may comprise the following steps a)-f): a) measuring a first voltage value at a terminal of the supercapacitor; b) if the first voltage value is greater than a predetermined minimum voltage value, performing a charging or discharging operation of the supercapacitor during a measurement time period, the charging or discharging operation being configured such that the terminals of the supercapacitor assume a second voltage value greater than or equal to the minimum voltage value; c) determining the voltage variation at the terminals of the supercapacitor 100 during the measurement time interval; d) determining a voltage variation rate based on the voltage variation at the terminals of the supercapacitor determined in step c) and the duration of the measurement time interval; e) measuring a current through one of the terminals of the supercapacitor at a measurement instant of the measurement time interval; f) calculating the capacitance value of the supercapacitor based on the ratio of the current value measured at the measurement time to the rate of change of the voltage.

[0029] In other words, it is possible to monitor the voltage across the supercapacitor to verify that it is greater than a predefined minimum voltage value. This minimum voltage value may be determined as a value indicative of the fact that the energy stored in the supercapacitor is sufficient to perform emergency braking if necessary. Once it is verified that the supercapacitor 100 is sufficiently charged to be able to perform an emergency braking operation, it is possible to charge or discharge the supercapacitor during a measurement time interval. This charging or discharging operation is configured such that the terminals of the supercapacitor can assume a second voltage value. However, in order to ensure that at the terminals of the supercapacitor, even during and after the charging or discharging operation, the supercapacitor has stored sufficient energy to perform emergency braking if necessary, the second voltage value must be greater than or equal to the minimum voltage value. During the measurement time interval during which the charging or discharging operation is performed, the voltage variation at the terminals of the supercapacitor 100 can be determined, for example by measurement. For example, if at the beginning the voltage across the supercapacitor is 50V and at the end of the discharging operation the voltage across the supercapacitor is 40V, the voltage variation at the terminals of the supercapacitor is 10V. However, if initially the voltage across the supercapacitor is 50V and at the end of the charging operation the voltage across the supercapacitor is 55V, for example, the voltage fluctuation at the terminals of the supercapacitor is 5V.

[0030] Once the voltage variation at the terminals of the supercapacitor is determined, a voltage variation rate, also known as a voltage variation speed, can be determined based on the voltage variation at the terminals of the supercapacitor and the duration of the measurement time interval. A current value flowing through one of the terminals of the supercapacitor at a measurement instant of the measurement time interval can also be measured. The measured current value flowing through one of the terminals of the supercapacitor can be an absorption current entering the terminal of the supercapacitor during a charging operation experienced by the supercapacitor, or a current exiting the terminal of the supercapacitor during a discharging operation experienced by the supercapacitor.

[0031] For example, the measurement instant may be the instant immediately following the start of the measurement time interval, or the instant immediately preceding the end of the measurement time interval, or an instant between the instant immediately following the start of the measurement time interval and the instant immediately preceding the end of the measurement time interval. A current value flowing through one of the terminals of the supercapacitor may be measured at multiple measurement instants during the measurement time interval.

[0032] Finally, the capacitance value of the supercapacitor can be calculated by the ratio of the current value measured at the measurement time to the voltage change rate. For example, the following formula can be applied: i = c*dv / dt -> c = i / (dv / dt) where i is the value of the current flowing into one of the terminals of the supercapacitor at the measurement time of the measurement time interval, c is the capacitance of the supercapacitor, and dv / dt is the rate of voltage change (i.e., the derivative over time of the voltage across the supercapacitor).

[0033] For example, with respect to the field of rail vehicles, emergency braking is a braking action in which at least one rail vehicle stops or slows down to walking pace. Emergency braking may be activated automatically, for example, when a potentially dangerous situation is detected by at least one system of the rail vehicle. The prior art is analyzed with particular reference to the field of rail vehicles.

[0034] Within the railway sector the following European standards can be referenced: -EN50126 [Railway applications. Specification and demonstration of Reliability, Availability, Maintainability and Safety (RAMS)] -EN50128 ["Railway applications. Communication, signalling and processing systems. Software for railway control and protection systems"] -EN50129 ["Railway applications. Communication, signalling and processing systems. Safety-related electronic systems for signalling"]. -EN50159 ["Railway applications. Communication, signalling and processing systems. Safety-related communications in transmission systems"].

[0035] In particular, standard EN50126 defines a methodology for assigning safety levels SIL0 / 1 / 2 / 3 / 4 (with safety level SIL4 indicating the maximum safety level) to subsystems constituting a system based on the results of a safety analysis, and standards EN50128 and EN50129 define design criteria to be applied to software and hardware components, respectively, based on the SIL levels assigned based on the results of the safety analysis. Systems involved in braking are usually required to have a safety level SIL=4.

[0036] Referring instead to the road vehicle sector, the emergency brake may apply the brakes in accordance with the required NCAPs related to emergency braking, which makes it possible to stop or slow down the road vehicle in order to protect pedestrians or to prevent an imminent accident with the vehicle.

[0037] Step a), i.e. measuring the first voltage value at the terminals of the supercapacitor, is preferably performed when the supercapacitor is not undergoing a charging action, so that the measurement is not influenced by the charging voltage applied to the terminals of the supercapacitor for charging it.

[0038] Step d), i.e. determining a voltage variation rate based on the voltage variation at the terminals of the supercapacitor determined in step c) and on the duration of the measurement time interval, preferably comprises: - determining a voltage fluctuation rate by the ratio between the voltage fluctuation determined in step c) and said duration of said measurement time interval.

[0039] For example, if the voltage fluctuation at the terminals of the supercapacitor is 10 V and the measurement time interval lasts for 2 s, then the voltage fluctuation rate is 5 V / s.

[0040] The method for determining the capacitance value of a supercapacitor preferably comprises: - comparing the calculated capacitance value of the supercapacitor with a predetermined minimum capacitance threshold.

[0041] For example, a minimum capacity threshold may be determined based on a maximum allowed wear value above which the supercapacitor can no longer store enough energy to perform emergency braking.

[0042] When the comparison indicates that the calculated capacitance value of the supercapacitor is less than the predetermined minimum capacitance threshold, the method preferably further comprises: - transmitting a maintenance request or alarm signal to a remote control station; and / or - activating signalling means arranged in a control room of the vehicle, and / or - transmitting an error message to a control unit of the vehicle; and / or - preventing release of the braking force generated by the electromechanical brake system.

[0043] In the railway sector, for example, a control means, i.e. a Train Control Unit (BCU), can communicate with a control of the vehicle, a Central Train Control Unit (TCMS). The communication can be via various means of communication, for example via hardware networks or bus networks (Ethernet, CAN, MVB, etc.).

[0044] In other words, if excessive consumption of the supercapacitor is detected, intervention can be made, for example, by sending a maintenance request or alarm signal to a remote control station, and / or by operating signaling means located in the vehicle's control room, and / or by sending an error message to the vehicle's control unit, and / or by preventing release of the braking force generated by the electromechanical brake system.

[0045] For example, the signaling means may be visual or audible, such as an indicator light, LED, display, speaker, or the like.

[0046] In a further aspect, the present invention relates to an electromechanical braking system for at least one vehicle.

[0047] By way of example, an embodiment of an electromechanical braking system is described below with reference to FIG.

[0048] In a first embodiment, the electromechanical braking system comprises: - a supercapacitor configured to store a sufficient amount of electrical energy to cause the brake system to perform at least one emergency braking action; - control means 104 configured to execute the method for determining the capacitance value of a supercapacitor according to any of the embodiments described above.

[0049] For example, the control means 104 may be a controller, a microcontroller, an electronic control unit, a control unit, a control module, a PLC, or the like.

[0050] For example, the control means may directly include timing means (e.g. timers) and / or means for measuring current (e.g. current sensors) and / or means for measuring voltage (e.g. voltage sensors), and may receive data from timing means and / or means for measuring current and / or means for measuring voltage external to said control means and coupled to respective elements of the electromechanical brake system, in order to make available various voltage, current and time data for performing a method for determining a capacitance value of a supercapacitor, such as a first voltage value at the terminals of a supercapacitor, a second voltage value, a voltage variation, a duration of said measurement time interval, a current value flowing into one of said terminals of said supercapacitor, etc.

[0051] The electromechanical braking system may also preferably be configured to receive at least a portion of the second amount of energy from an electric energy supply means 106 of said vehicle. For example, the electric energy supply means 106 may be a battery of the vehicle.

[0052] The electromechanical braking system preferably comprises: - an electromechanical actuator 108 arranged to receive electrical energy and convert it into a braking force; at least one selection means 110 configured to receive at least a portion of the amount of electric energy stored in said supercapacitor and at least a portion of a second amount of electric energy stored in said supply means, and to selectively supply at least a portion of the amount of electric energy stored in said supercapacitor or at least a portion of the second amount of electric energy stored in said electric energy supply means 106 to said electromechanical actuator 108.

[0053] In other words, for example, the selection means 110 may receive at least a portion of the electrical energy stored in said supercapacitor and at least a portion of a second amount of electrical energy stored in a vehicle battery for selectively sending energy to the electromechanical actuator.

[0054] When the brake system receives a request to perform a braking action, the at least one selection means is preferably capable of selecting the following actions: - supplying at least a portion of the amount of electrical energy stored in the electromechanical actuator to the electromechanical actuator when the voltage at the terminals of the supply means is lower than the minimum voltage value, or - supplying at least a portion of a second amount of electrical energy stored in said electrical energy supply means 106 to said electromechanical actuator if the voltage at the terminals of said supply means is higher than said minimum voltage value.

[0055] In other words, when the braking system receives a request to perform a braking operation, the at least one selection means is preferably adapted to provide at least a portion of the electric energy stored in the supercapacitor to the electromechanical actuator if the voltage at the terminals of said power supply means (e.g. a battery of the vehicle) (indicative of the energy stored in the battery) is below said minimum voltage value, i.e. emergency braking cannot be performed. Alternatively, when the braking system receives a request to perform a braking operation, the at least one selection means is adapted to provide at least a portion of a second amount of electric energy stored in said electric energy supply means 106 (e.g. a battery of the vehicle) to the electromechanical actuator if the voltage at the terminals of said supply means 106 is greater than said minimum voltage value, i.e. emergency braking can be performed.

[0056] The control means may preferably be arranged to receive a signal indicative of a voltage value at the terminals of the electric energy supply means 106 (e.g. a vehicle battery). If the signal indicative of a voltage value at the terminals of the electric energy supply means 106 indicates a voltage value at the terminals of the electric energy supply means 106 that is less than the minimum voltage value, the control means means: via selection means, providing at least a portion of the amount of electrical energy stored in said supercapacitor to said electromechanical actuator for applying automatic emergency braking.

[0057] In other words, when the control means detects that the vehicle's battery has failed or is overused or damaged, the control means can operate the selection means to provide at least a portion of the electrical energy stored in the supercapacitor to an electromechanical actuator to perform automatic braking.

[0058] With reference to FIG. 3, the selection means preferably comprises at least: a first diode 300 connected between said electrical energy supply means 106 and said electromechanical actuator, and a second diode 302 connected between said supercapacitor and said electromechanical actuator.

[0059] Alternatively, with reference to FIG. 4, the selection means may include at least: first switching means 400 connected between said electrical energy supply means 106 and said electromechanical actuator, and second switching means 402 connected between said supercapacitor and said electromechanical actuator.

[0060] For example, each switching means may be a switch arranged to be switchable by said control means.

[0061] The electromechanical braking system preferably comprises: - communication means arranged to send a maintenance request or an alarm signal to a remote control station or arranged to send an error message to the vehicle control unit TCMS, and / or - signaling means located in the control room of the vehicle; - Means for preventing release of the braking force generated by the electromechanical braking system.

[0062] Below are some embodiments of the electromechanical braking system.

[0063] In the following, a possible embodiment of an electromechanical braking system with an emergency supercapacitor is described. For example, the electromechanical braking system is configured to be installed in at least one rail vehicle. The electromechanical braking system includes at least one emergency supercapacitor configured to store electrical energy. In this case, the electrical energy stored in the emergency supercapacitor, when provided to an electromechanical assembly of the braking system, may be sufficient to generate a braking force suitable for actuating the electromechanical assembly to cause the braking system to perform at least one emergency braking operation.

[0064] For example, the electromechanical assembly may include an electric motor, and the braking force generated by the electromechanical assembly may be adjusted by actuating the electric motor. Also, the braking system may include a control means and a first coupling means.

[0065] The control means may be configured to selectively connect or disconnect the at least one emergency supercapacitor to or from the electric motor via said first coupling means so as to selectively supply electric energy stored in the at least one emergency supercapacitor to the electric motor.

[0066] The electric motor may be configured to operate upon receiving said electrical energy from the at least one emergency supercapacitor, and the electromechanical assembly may be configured to generate a braking force suitable for causing the brake system to perform at least one emergency braking operation.

[0067] For example, when the at least one emergency supercapacitor must store electrical energy, the control means may be configured to connect the at least one emergency supercapacitor to at least one rail vehicle battery. Alternatively, or in addition, the control means may be configured to connect the at least one emergency supercapacitor to an electrical energy recovery system included in or associated with the braking system. The electrical energy recovery system may be configured to recover electrical energy while the electromechanical assembly is applying a braking force.

[0068] For example, an electromechanical assembly: - a transmission shaft rotatably connected to the electric motor; - a linear actuator capable of extending from a retracted position in which the two ends of the linear actuator are at a first distance dis1 to an extended position in which the ends of the linear actuator are at a second distance dis2, the second distance being greater than the first distance dis1; - a transmission mechanism arranged between the transmission shaft and the linear actuator, the transmission mechanism being arranged to convert rotational motion of the transmission shaft into linear motion of the linear actuator.

[0069] For example, an electric motor: - rotating the transmission shaft in a first direction d1, by rotating the transmission shaft in the first direction d1, increasing the distance between the two ends of the linear actuator; The transmission shaft may be rotated in a second direction d2 opposite to said first direction d1, and by rotating the transmission shaft in the second direction d2, the distance between the two ends of the linear actuator may be reduced.

[0070] In one example, the braking force generated by the braking system may increase as the linear actuator moves from the first retracted position toward the extended position, or the braking force generated by the braking system may decrease as the linear actuator moves from the first retracted position toward the extended position.

[0071] In a further aspect, the present invention relates to a vehicle comprising the following elements: - electric energy supply means 106; - an electromechanical braking system 102 for at least one vehicle according to any one of the above mentioned embodiments.

[0072] The vehicle is preferably at least one rail car.

[0073] The vehicle is preferably a rail train.

[0074] The invention is preferably applicable to any type of vehicle, which may include, for example, rail cars / trains, automobiles, trucks (e.g. highway semi-trailer trucks, mining trucks, trucks for transporting timber, etc.), and the route may be a track, a road, or a trajectory.

[0075] The resulting advantage is therefore to provide a solution that makes it possible to monitor the remaining capacity of the supercapacitors of the electromechanical braking system of at least one vehicle without temporarily compromising the ability to perform emergency safety braking, thus providing an even higher level of safety for the electromechanical braking system.

[0076] Various aspects and embodiments of a supercapacitor of at least one vehicle electromechanical braking system, an electromechanical braking system, and a vehicle equipped with this electromechanical braking system according to the present invention have been described. It is to be understood that each embodiment can be combined with any other embodiment. Moreover, the present invention is not limited to the described embodiments, but may be modified within the scope defined by the appended claims.

Claims

A method for determining a capacitance value of a supercapacitor (100) of an electromechanical braking system (102) of at least one vehicle, comprising: The supercapacitor is configured to store an amount of electrical energy sufficient to cause the electromechanical braking system (102) to perform at least one emergency braking operation; The method comprises: a) measuring a first voltage value at a terminal of the supercapacitor (100); b) if the first voltage value is greater than a predetermined minimum voltage value, performing a charging or discharging operation of the supercapacitor during a measurement time interval, the charging or discharging operation being configured such that the terminal of the supercapacitor takes a second voltage value greater than or equal to the minimum voltage value; c) determining a voltage variation at the terminal of the supercapacitor during the measurement time interval; d) determining a voltage variation rate based on the voltage variation at the terminal of the supercapacitor determined in step c) and the duration of the measurement time interval; e) measuring a current value flowing through one of the terminals of the supercapacitor at a measurement time point during the measurement time interval; f) calculating the capacitance value of the supercapacitor using a ratio between the current value measured at the measurement time point and the voltage variation rate. A method characterized by comprising the above steps. The method according to claim 1, wherein step a) is performed when the supercapacitor (100) is not under a charging action. The method according to claim 1 or claim 2, wherein step d) comprises determining the voltage variation rate using a ratio between the voltage variation determined in step c) and the duration of the measurement time interval. The method according to claim 1 or claim 2, further comprising comparing the calculated capacitance value of the supercapacitor with a predetermined minimum capacitance threshold. The method according to claim 1 or claim 2, wherein when the comparison indicates that the calculated capacitance value of the supercapacitor is less than the predetermined minimum capacitance threshold, the method comprises: transmitting a maintenance request or an alarm signal to a remote control station, and / or operating a signal means arranged in the control room of the vehicle, and / or The step of transmitting an error message to the vehicle control unit, and / or, The step of preventing the release of the braking force generated by the electromechanical braking system (102), The method according to claim 4, further comprising.

6. An electromechanical braking system (102) for at least one vehicle, A supercapacitor (100) configured to store an amount of electrical energy sufficient to cause the electromechanical braking system (102) to perform at least one emergency braking operation, Control means (104) for performing the method according to claim 1, An electromechanical braking system comprising.

7. The electromechanical braking system is adapted to receive at least a portion of a second amount of electrical energy from the vehicle's electrical energy supply means (106), The electromechanical braking system (102) is, An electromechanical actuator (108) arranged to receive electrical energy and convert it into braking force, At least a portion of the amount of electrical energy stored in the supercapacitor (100) and at least a portion of the second amount of electrical energy stored in the electrical energy supply means (106) are received, and at least a portion of the amount of electrical energy stored in the supercapacitor or at least a portion of the second amount of electrical energy stored in the electrical energy supply means (106) is selectively supplied to the electromechanical actuator (108). At least one selection means (110) configured as such, The electromechanical braking system according to claim 6, comprising.

8. When the electromechanical braking system (102) receives a request to execute a brake, The at least one selection means (110) is, When the voltage at the terminal of the electrical energy supply means (106) is lower than the minimum voltage value, supplying at least a portion of the amount of electrical energy stored in the supercapacitor (100) to the electromechanical actuator (108), Or, When the voltage at the terminal of the electrical energy supply means (106) is higher than the minimum voltage value, at least a part of the second amount of electrical energy stored in the electrical energy supply means (106) is supplied to the electromechanical actuator (108). The electromechanical brake system according to claim 7, which is configured to selectively execute the above.

9. The control means (104) is configured to receive a signal indicating the voltage value at the terminal of the electrical energy supply means (106). When the signal indicating the voltage value at the terminal of the electrical energy supply means (106) is smaller than the minimum voltage value, that is, when the signal indicating the voltage value at the terminal of the electrical energy supply means (106) is smaller than the minimum voltage value. The control means In order to apply an automatic emergency brake, at least a part of the amount of electrical energy stored in the supercapacitor (100) is supplied to the electromechanical actuator via the selection means. The electromechanical brake system according to claim 7 or claim 8, which is further configured as above.

10. The selection means (110) includes at least A first diode (300) connected between the electrical energy supply means (106) and the electromechanical actuator, and a second diode (302) connected between the supercapacitor and the electromechanical actuator. Or A first switching means (400) connected between the electrical energy supply means (106) and the electromechanical actuator, and a second switching means (402) connected between the supercapacitor and the electromechanical actuator. The electromechanical brake system according to claim 7 or claim 8, which comprises the above.

11. When the control unit means (104) is configured to execute the method according to claim 5. The electromechanical brake system Communication means configured to transmit a maintenance request or an alarm signal to a remote control station, or an error message to the vehicle control means, and / or Signal means arranged in the vehicle control room, and Means for preventing the release of the braking force generated by the electromechanical brake system (102). The electromechanical brake system according to any one of claims 6 to 8, comprising

12. Electrical energy supply means (106), The electromechanical brake system (102) according to claim 6, A vehicle comprising

13. A vehicle according to claim 12, including at least one railway vehicle.