Method for adjusting a sensorless stepper motor of a wet-running brush adjuster, computer program, computer program product, system, and electric vehicle

The method adjusts the stepper motor to compensate for step losses and wear by maintaining a defined stop position, ensuring reliable and energy-efficient external excitation of the electric motor rotor, reducing wear and friction in electric vehicles.

WO2026068214A1PCT designated stage Publication Date: 2026-04-02SCHAEFFLER TECHNOLOGIES AG & CO KG
View PDF 8 Cites 0 Cited by

Patent Information

Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Filing Date
2025-09-12
Publication Date
2026-04-02

AI Technical Summary

Technical Problem

Ensuring reliable and energy-efficient external excitation of an electric motor rotor in a wet-running brush actuator, particularly in electric vehicles, while minimizing step losses and wear on grinding brushes due to wear and pressure variations.

Method used

A method for adjusting the stepper motor that compensates for step losses by maintaining a defined stop position, regardless of brush wear, using a compression spring and force distribution element to ensure consistent contact pressure, and implementing a sensorless control system to detect and correct these positions.

Benefits of technology

Minimizes wear on grinding brushes, reduces friction and power consumption, and maintains reliable current transmission for torque generation, ensuring operational reliability of the electric motor and vehicle drive.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure EP2025075978_02042026_PF_FP_ABST
    Figure EP2025075978_02042026_PF_FP_ABST
Patent Text Reader

Abstract

The invention relates to a method for adjusting a sensorless stepper motor of a wet-running brush adjuster (2). A spindle (10) of a spindle drive which is integrated into the brush adjuster (2), the spindle interacting with a spindle nut (8) which has permanent magnets and is driven by a rotary field generated by a stator (6) of the stepper motor, is moved against a stop (18) of a force distribution element (16) in a first direction of rotation of the spindle nut (8), thereby acting on two associated sliding brushes (B1, B2) indirectly via at least one compression spring (14) and the force distribution element (16). In the process, the spindle drive comes to a standstill, a defined unadulterated maximum compression spring force is applied to the sliding brushes (B1, B2) by the brush adjuster (2) in the stop position, the standstill is detected, and the rotary field of the stepper motor is then operated in a second direction of rotation of the spindle nut (8) opposite the first direction of rotation until the spindle (10) assumes a desired position. The invention also relates to a computer program, to a computer program product, to a system, and to an electric vehicle.
Need to check novelty before this filing date? Find Prior Art

Description

[0001] 202401085

[0002] 1

[0003] Description

[0004] Method for adjusting a sensorless stepper motor of a wet-running brush actuator, computer program, computer program product, system and electric vehicle

[0005] The invention relates to an operating method or method for adjusting an angle sensorless or sensorless stepper motor of a wet-running brush actuator.

[0006] The invention further relates to a computer program and a computer program product, each of which depicts this method, a system with a brush holder and a control unit for actuating the brush holder, wherein the control unit comprises such a computer program or computer program product, and an electric vehicle with such a computer program or computer program product or such a system.

[0007] One of the problems underlying the invention is to ensure reliable external excitation of an electric motor rotor. A further problem underlying the invention is to ensure this external excitation in an energy-efficient manner.

[0008] This problem is solved by an operating procedure or a procedure with the features of claim 1.

[0009] When using such an angle-sensorless or sensorless stepper motor, it must be ensured that so-called step losses do not occur. Alternatively, it must be ensured that such step losses can be compensated for or eliminated. Since, in the proposed brush holder, there is a correlation between the adjustable number of steps or rotations and the associated contact pressure of the respective grinding brush against the corresponding slip ring, these step losses lead to an unintended reduction in this contact pressure. 202401085

[0010] 2

[0011] However, a shortening of the brushes due to wear, which relaxes the pressure spring, also results in an unwanted lowering or reduction of this pressure.

[0012] The proposed operating procedure compensates for these two effects that reduce contact pressure. This procedure for adjusting, readjusting, or calibrating the stepper motor can be performed regularly, i.e., at definable or defined intervals.

[0013] In the proposed stop position according to the invention, which represents or describes a reference position of the stepper motor, the force exerted by the brush holder on the grinding brushes is known, regardless of any wear of the grinding brushes that occurs over a period of use or lifetime of the proposed brush holder.

[0014] In this stop position, the force exerted by the brush holder on the grinding brushes is at its maximum and undistorted. It is essentially determined by the compressed spring or compression spring, through which the force is indirectly transmitted from the spindle to the grinding brushes.

[0015] In this specified stop position, it is ensured that the force exerted by the brush holder on the grinding brushes cannot be distorted by the aforementioned step losses. And as soon as the standstill of the spindle drive or the stepper motor has been detected, a desired position of the spindle can be set by appropriately controlling the stepper motor – in steps of the stepper motor – against the effect of the compression spring or the brush force.

[0016] The length of the grinding brushes is irrelevant. This means that brush wear that develops or becomes apparent over time is also irrelevant. 202401085

[0017] 3

[0018] The proposed method is not about determining or quantifying step losses per se, but rather about regularly eliminating them by moving to this endpoint. Therefore, the proposed method does not require precise knowledge of the potential or possible step losses.

[0019] Accordingly, the relative stop position of the spindle relative to a rotor shaft or rotor shaft axis, which develops over time, is irrelevant, as it moves in the direction of the rotor shaft or rotor shaft axis over time. Rather, the decisive factor is the stop position itself – in the sense of an absolute position – in which the spindle rests against the stop of the force distribution element.

[0020] Based on this stop position, force control or control of the brush adjuster can be corrected repeatedly, i.e., regularly, or freed from distortion caused by the aforementioned step losses.

[0021] For the sake of completeness, reference is made here to the applicant's German patent application under file number 10 2023 211 551 .4, which discloses an active force application in the form of a dynamically adaptive and quality-based control of brush force. This disclosure is hereby expressly incorporated by reference.

[0022] The proposed method enables the precise implementation of such quality-based force control, or control of such a brush actuator, along a so-called contact quality limit. Such a brush actuator will be described in detail below.

[0023] A contact quality limit is understood to be a critical state – in the sense of a threshold value in the form of a fixed value, a characteristic curve, or a characteristic map – with regard to the contact pressure, at which no 202401085

[0024] 4. Sufficient contact between the respective slip ring and the associated grinding brush is ensured.

[0025] The condition at which the contact quality limit is reached, and at which either the contact pressure of the respective grinding brush is no longer sufficient for a sufficient current flow, or at which such a current flow is completely prevented by the lifting of the grinding brush(es), can be detected by a controller or rotor current controller, e.g. in a so-called inverter control unit or such a control unit.

[0026] The contact quality between the respective grinding brushes and the associated slip rings can be detected or monitored using various physical quantities, such as: the course of an excitation current in the form of a ripple current, also called hum current, which arises as such shortly before an interruption of the contact, a developing or established contact resistance resulting from a voltage drop and a flowing or monitorable excitation current, and / or broadband electromagnetic radiation emitted by the arrangement of the respective grinding brushes and the associated slip rings, the frequency and amplitude of which can be detected or monitored.

[0027] From an energy perspective – and in line with what has been said above – it is proposed to ensure sufficient contact between the respective slip rings and the associated grinding brushes.

[0028] It is proposed that the inventive method be regularly initiated or caused by the vehicle system over the lifetime of an electric vehicle whose electric motor is externally excited by means of the brush controller and 202401085

[0029] 5 is carried out. That is, at defined time intervals, which as such can be expressed or determined in a defined mileage – for example, mileage – and / or in driving cycles of the electric vehicle.

[0030] Alternatively, the vehicle system could issue a prompt to the driver, suggesting that the stepper motor or brush adjuster be set, recalibrated, or the method according to the invention be performed. The driver could then initiate, arrange, start, or have the method according to the invention carried out at a later time.

[0031] It is proposed that the inventive method is initiated or carried out between two driving cycles of such an electric vehicle, while the electric vehicle is stationary and the rotor is externally excited.

[0032] In the simplest case, a driving cycle is understood to be a period of time to which a speed profile of the electric vehicle with speed values ​​greater than zero is assigned.

[0033] And when such an electric vehicle is idling or stationary, it is advantageous that no large currents or rotor currents and power are required, which as such would cause high wear on the grinding brushes.

[0034] With the proposed brush holder - also called brush module - the pressure of the respective grinding brush against the associated grinding ring can be variably adjusted as required, depending on the direction of travel and the travel distance of the spindle.

[0035] The spindle drive enables active control of this contact pressure. Instead of contact pressure, one could also speak of compression or force application. 202401085

[0036] 6

[0037] The spindle drive converts or transmits a rotational movement of a spindle nut – which functions as a rotor with magnets of the (angle) sensorless stepper motor – into a translational movement of the spindle.

[0038] As a result of this translational movement, at least one compression spring deforms, so that a force is exerted on the associated grinding brush indirectly via this compression spring. This deformation of the compression spring can be measured gradually or in steps.

[0039] Adjusting the rotational steps or microsteps of the rotating field generated by the electric stepper motor, i.e., either increasing or decreasing them.

[0040] It is proposed that the brush holder be operated in such a way that the respective grinding brush is pressed or pushed against the assigned grinding ring based on quality.

[0041] Quality-based contact pressure of the associated grinding brush(es) means that, in order to achieve sufficient contact, no more pressure is actively applied to the grinding brush(es) than is necessary.

[0042] With such a contact pressure, one can therefore speak – from an energy perspective – of the best possible or optimal contact, in which – for a given load-dependent excitation current – ​​a minimum of wear on the grinding brushes is achieved. This wear consists of a superposition of mechanically abrasive and electrically erosive wear and is a function of the contact pressure on the grinding brushes.

[0043] Such quality-based pressure reduces the wear on these grinding brushes to a minimum. 202401085

[0044] 7

[0045] This also advantageously minimizes the friction of an electric motor and thus also the friction of a drivetrain of an electric vehicle, against which the electric motor works as the drive unit of the electric vehicle.

[0046] The proposed brush adjuster enables robust, quality-based control of brush force or pressure of the grinding brushes, and does so with minimal energy consumption.

[0047] The proposed brush holder also enables safe current transmission for torque generation.

[0048] It is proposed that the spindle drive be designed to be backlash-free. It is also proposed that the spindle drive be self-locking. This ensures that power consumption is minimized and limited to the time required for adjusting the brush holder. Furthermore, if the stepper motor fails during operation or a driving cycle, the basic functionality of the external excitation of the electric motor or vehicle drive is maintained. Thus, this spindle drive guarantees the operational reliability of the electric motor or vehicle drive, preventing the vehicle from stalling due to a lack of external excitation of the rotor.

[0049] Furthermore, translation of the spindle towards the stepper motor is prevented as a result of an external force, which is transmitted as such from the respective slip ring or rotor shaft to the associated grinding brush during a dynamic driving operation or driving cycle.

[0050] Limiting the power consumption of the proposed brush holder to the time range of its adjustment means that active control of the force application is only provided for or carried out during this period of energization of the stepper motor. Beyond this, i.e., when the brush holder remains unenergized, the force application by the brush holder is purely passive. 202401085

[0051] 8

[0052] It is further proposed that the force distribution element be fork-shaped and interact with a first grinding brush via a first fork section and with a second grinding brush via a second fork section. Instead of fork sections, one could also refer to arms of the force distribution element.

[0053] It is proposed that the force distribution element be tiltable or inclinable relative to the spindle by forming a joint with the spindle.

[0054] By allowing the force distribution element to tilt relative to the spindle, it is possible to counteract different wear of the grinding brushes or different brush wear when force is applied evenly to the grinding brushes.

[0055] At least one compression spring can be provided between the spindle and the force distribution element. Additionally or alternatively, a compression spring can be provided between the force distribution element and the associated grinding brush.

[0056] Additionally or alternatively, the force distribution element itself can be designed or shaped to be elastic in such a way that it also forms a compression spring. Through appropriate material selection in conjunction with a suitable geometric design of the force distribution element, a defined stiffness of the fork sections or arms can be achieved, thus combining the function of uniform force application or distribution with the function of a compression spring element in one and the same element or component.

[0057] Furthermore, a separately excited electric motor with such a brush holder is proposed. 202401085

[0058] Further advantages and features will become apparent from the dependent claims and the exemplary embodiments. These are shown, partly schematically:

[0059] Fig. 1 shows a proposed brush holder in a sectional view,

[0060] Fig. 2 shows a section of the brush holder shown in Fig. 1 in a first state,

[0061] Fig. 3 shows a section of the brush holder shown in Fig. 1 in a second state,

[0062] Fig. 4 shows a section of the brush holder shown in Fig. 1 in a third state,

[0063] Fig. 5 shows a section of the brush holder shown in Fig. 1 in a fourth state,

[0064] Fig. 6a) an overview of different states of such a brush holder according to the invention,

[0065] Fig. 6b) an overview of different states of such a brush holder according to the invention in an alternative representation,

[0066] Fig. 7 shows the brush holder shown in Fig. 1 in a further sectional view and

[0067] Fig. 8 shows a sectional view along the section line A - A in Fig. 7.

[0068] Figures 1 to 8 each illustrate a bidirectionally acting brush actuator 2 – also called brush module 2 – which serves to externally excite a rotor of an electric motor in the form of a synchronous machine arranged on a rotor shaft for driving a vehicle or electric vehicle. The electric motor is combined with a reduction gear, which 202401085

[0069] 10. It is oil-lubricated and oil-cooled. A gear oil also lubricates and cools the electric motor and is circulated within an oil cooling circuit that includes the gearbox and the electric motor.

[0070] The proposed brush holder 2 is wet-running in the area of ​​an oil-lubricated bearing point of the rotor shaft and is radially oriented to the rotor shaft. It is fixed to, or arranged on, the housing of the electric motor. An oil seal is omitted at this bearing point, allowing the gear oil from inside the electric motor housing to escape through the bearing point and reach the brush holder 2. This arrangement of the brush holder 2 is sealed off from the surrounding environment by a housing cover.

[0071] Such a brush holder 2 is attached or fastened to the housing of the electric motor via mounting points APi, AP2, AP3 (see e.g. Fig. 7).

[0072] The proposed brush holder 2 has an electric stepper motor or stepper motor unit 4 with a stator 6 and a rotor 8 arranged internally to the stator 6, which is designed in the form of a spindle nut carrying magnets and which, in conjunction with a spindle 10 with which it interacts, forms a spindle drive integrated into the stepper motor 4.

[0073] The stepper motor unit 4 is longitudinally movable or movable along the depicted

[0074] The X-axis movable spindle 10 acts indirectly via at least one compression spring 14 and an electrically non-conductive or insulating force distribution element 16 – made of, for example, plastic – against an associated first and second grinding brush Bi, B2 to press against an associated slip ring SR1, SR2 of the rotor shaft (not shown here). Depending on the direction and travel of the spindle 10, the pressure of the grinding brushes Bi, B2 against the associated slip rings SR1, SR2 can be variably adjusted as required. The spindle drive is backlash-free and self-locking. 202401085

[0075] 11

[0076] This brush holder 2 or its stepper motor can be electrically contacted via a socket BU on the housing of the stepper motor or the stepper motor unit 4.

[0077] The two grinding brushes Bi and B2 are each movably arranged within an associated brush holder and brush guide element, and radially to the rotor shaft. Grinding brush Bi is, for example, negatively polarized, and grinding brush B2 is therefore positively polarized.

[0078] In the embodiments according to Figures 1 to 5, 7 and 8, a compression spring 14 in the form of a helical spring is provided or arranged between a stop section 12 of the spindle 10 and a fork-shaped or fork-like force distribution element 16. This compression spring 14 normally keeps the spindle 10 or the stop section 12 apart from the force distribution element 16. The force distribution element 16 is connected to the compression spring 14 with some play.

[0079] The connection between the compression spring 14 and the force distribution element 16 is designed such that the force distribution element 16 can be tilted relative to the spindle 10. This allows uneven wear of the grinding brushes Bi, B2 to be compensated for, with the tilting or inclination adjusting according to the wear pattern.

[0080] The two free, brush-side ends of the force distribution element 16 are each rounded and lie against the force distribution element 16, forming a point contact and / or line contact and / or surface contact.

[0081] Figure 7 shows an oil connection that leads into a forking or branching oil line, through which oil is supplied to the two grinding brushes Bi and B2. This ensures that the grinding brushes Bi and B2 are always adequately supplied with oil when the electric motor is operating and when the electric vehicle is moving forward. 202401085

[0082] 12

[0083] A helical spring, for example shown in Figs. 1 and 7 above the stop section 12 and acting from above against this stop section 12, or

[0084] The compression spring clamps the spindle 10 against the spindle nut 8, thereby ensuring that the spindle drive is free of play.

[0085] The brush holders 2 shown in Figs. 1 to 8 each describe a transverse force-free design of a brush holder 2. That is, the spindle 10 does not experience any operational transverse force.

[0086] In another embodiment – ​​not shown here – the force distribution element 16 can be designed or shaped to be elastic in such a way that it itself forms a compression spring or compression spring element – ​​with a defined stiffness, in particular of the individual fork sections or arms – and forms or represents a series compression spring connection with the previously described helical spring or compression spring 14. Alternatively, such a force distribution element 16 can also replace or render such a helical spring or compression spring 14 superfluous. In the latter case, this would save installation space.

[0087] It is intended to regularly adjust, readjust or calibrate the stepper motor 4 of this brush holder 2 in order to eliminate step errors, also called step losses, that occur in the meantime and / or to counteract wear of the grinding brushes Bi , B2.

[0088] Such step errors or step losses occur when the stepper motor 4 is briefly overloaded by an external load torque and the rotor - in the form of the spindle nut 8 - can no longer follow the rotating field of the stator 6, so that steps are skipped as a result and the information about the actual or current position or orientation of the rotor 8 is lost.

[0089] In Fig. 2, the spindle 10 is spaced apart from a stop 18 of the force distribution element 16. Fig. 2 shows a state in which the spindle 10 is normally located, i.e., in a normal operating condition of the brush holder 2. 202401085

[0090] 13

[0091] To correct such step errors or step losses, i.e., to (re-)adjust or calibrate the electric stepper motor 4, it is proposed that – between two driving cycles of the electric vehicle – while the electric vehicle is stationary and the rotor is externally excited, the spindle 10 – acting indirectly via the compression spring 14 and the force distribution element 16 against the two associated grinding brushes Bi, B2 – is moved in a first direction of rotation of the spindle nut 8 against this stop 18 of the force distribution element 16 (see Fig. 3).

[0092] The spindle drive, and thus the stepper motor 4, comes to a standstill. This standstill is detected by a control unit or control device controlling the stepper motor 4 – for example, an inverter control unit. This stop position of the spindle 10, or the stepper motor 4, acts as a reference position from which the rotating field of the stepper motor is operated in a second direction of rotation of the spindle nut 8, opposite to the first direction of rotation, until the spindle 10 assumes a desired position. In this position, the grinding brushes Bi, B2 experience the desired, demand-dependent pressure from the spindle 10 against their respective slip rings SR1, SR2 of the rotor shaft.

[0093] In this stop position of the spindle 10, in which the spindle 10 rests against the stop 18 of the force distribution element 16, the force exerted by the brush holder 2 on the two grinding brushes Bi, B2 is defined and at its maximum. This force is essentially determined by the compression of the compression spring 14.

[0094] And this defined maximum force is unambiguous and undistorted in this stop position of spindle 10, i.e., free from the aforementioned step losses. This force is also unambiguous and undistorted regardless of the wear condition of the two grinding brushes Bi and B2. Thus, the stepper motor 4 is in this stop position – regardless of the wear condition of the two grinding brushes 202401085

[0095] 14

[0096] Bi, B2 - free from the aforementioned step losses. The stepper motor 4 is therefore considered adjusted, (re)adjusted, or calibrated in this end position.

[0097] And as the spindle 10 is moved away from this stop position in steps of the stepper motor 4, the compression spring 14 relaxes and the force exerted by the brush holder 2 on the two grinding brushes Bi, B2 is reduced to a desired, demand-dependent force, depending on the travel distance of the spindle 10. And the resulting force is - as a result of the adjustment or (re-)adjustment or

[0098] Stepper motor calibration - unadulterated.

[0099] From this stop position, the steps of the stepper motor are counted correctly again, so that the grinding brushes Bi , B2 against the slip rings SR1, SR2 can be adjusted accurately and variably as required.

[0100] This proposed operating method thus eliminates the need for a position encoder - a so-called incremental encoder or absolute encoder - which detects the exact rotational position or orientation of the spindle nut 8 in order to control the stepper motor accordingly - and to correct the resulting step losses.

[0101] To determine brush wear, it is proposed to operate the rotating field of the stepper motor 4 from this first stop position (Fig. 3) in a second direction of rotation of the spindle nut 8, opposite to the first direction of rotation, until the spindle 10 moves against a stop of a housing section G2 of the stepper motor 4 (Fig. 5). The spindle drive or the stepper motor 4 also comes to a standstill in this case, and this standstill is also detected by the control unit or control device controlling the stepper motor 4.

[0102] In Fig. 4, however, the spindle 10 is spaced apart from this stop of the housing section G2. Fig. 4 also shows a state in which the 202401085

[0103] 15

[0104] Spindle 10 is normally located in the normal operating position of the brush holder 2.

[0105] This second stop position of the spindle 10 or the stepper motor 4 (Fig. 5) also functions as a reference position, in which, however, the spindle 10 exerts either no force or at least a reduced force on the grinding brushes Bi, B2. This depends on the selected length of the compression spring 14.

[0106] In Fig. 1, the spindle 10 is also shown resting against the upper or second stop or in the second stop position, so that with respect to Fig. 1 - depending on the selected length of the compression spring 14 and / or the upper or second stop of the spindle 10 - the compression spring 14 can be unpressurized or uncompressed, or it can experience a minimum compression.

[0107] In the latter case as well – analogous to the first stop position – the force exerted by the spindle 10 on the grinding brushes Bi, B2 is undistorted and free of step losses. It is minimal.

[0108] The travel distance of spindle 10 from the first to the second stop position is recorded and defined as a reference distance, then stored in the control unit. Based on this reference distance, and in conjunction with future measurements of this travel distance, which increases with brush wear over time, conclusions can be drawn about brush wear or the actual wear of the grinding brushes Bi, B2. This is done by calculating the difference between such a future travel distance, after the two grinding brushes Bi, B2 have experienced a certain amount of wear, and this reference distance.

[0109] It is proposed to determine this reference distance with both grinding brushes Bi and B2 in an unworn or new condition. 202401085

[0110] 16

[0111] Both the first and second stop positions can be approached by time-based or step-based pre-control of the rotating field generated by the stator 6.

[0112] A time-based pre-control of the rotating field is understood to mean an applicable or definable time specification or time span within which the spindle 10, driven by the spindle nut 8, will have reached the respective stop position.

[0113] In contrast, step-based pre-control of the rotating field refers to an applicable or definable step specification with which the spindle 10 - driven by the spindle nut 8 - is moved against the respective stop position.

[0114] Once the spindle 10 has reached its respective stop or stop position, it remains at that stop or in that stop position. This means that the spindle nut 8 can no longer follow the pre-controlled rotating field, causing the stepper motor 4 to stop. This, in turn, leads to the aforementioned step losses.

[0115] By implementing a so-called sensorless or angle-sensorless step loss detection system, for example in the aforementioned inverter control unit, these first and second end positions can be detected. Upon detection of step losses in one of these end positions, it can be concluded that the stepper motor 4 has stopped. Consequently, the feedforward control of the rotating field against the respective end position can be immediately interrupted or switched off.

[0116] To detect or identify these end positions, the stepper motor 4 can be operated in so-called partial steps. In contrast to a full step, not all phases of the stepper motor 4 are energized, resulting in a voltage induced by the spindle nut 8 in the unenergized phases of the stepper motor 4 – a so-called back EMF, also known as 202401085.

[0117] 17. This is simply called inducing back EMF (EMF) – it can be monitored, determined, or recorded. And when the stepper motor 4 is at a standstill, i.e., in one of these end positions, this inducing back EMF is absent, so that the standstill can be concluded.

[0118] Such stall detection of a stepper motor is known to experts and will therefore not be described further here.

[0119] Fig. 6a) schematically illustrates different states A, B1 , B2, A* A**, C, D1 and D2 of such a brush holder 2. These individual states A, B1 , B2, A* A**, C, D1 and D2 describe a developing compression spring force F, which is the relevant factor in the individual considerations.

[0120] In Fig. 6a), the compression spring has the same length with respect to all the states shown: A, B1, B2, A*, A**, C, D1, and D2. However, with respect to the two states A* and A**, the upper end point of the spindle moves slightly downwards. As a result, the difference analyses shown remain unchanged and valid. The two states A* and A** each show a compression spring which, compared to states A, B1, B2, C, D1, and D2, remains under pressure, albeit reduced, even at the upper end point of the spindle.

[0121] In Fig. 6b), however, the compression spring is designed to be comparatively longer with respect to the states A* and A** shown, so that in these states A* and A**, the compression spring remains under pressure, albeit reduced, even at the upper end point of the spindle, compared to the other states A, B1, B2, C, D1, and D2. Such a longer compression spring experiences a correspondingly higher compression or strain in the two states D1 and D2.

[0122] State D1 illustrates the brush holder 2 described in this disclosure in a so-called new state - i.e., with unused 202401085

[0123] 18 closed grinding brushes Bi , B2 - and in the first stop position, in which the spindle 10 rests against the stop 18 of the force distribution element 16.

[0124] State D2, on the other hand, illustrates this brush holder 2 with a certain amount of brush wear. Therefore, the stop position in state D2 is closer to the illustrated rotor shaft or rotor shaft axis.

[0125] In these two states D1 and D2, the force applied or exerted by the brush holder 2, with which the grinding brushes Bi and B2 are pressed against the associated grinding rings SR1 and SR2, is at its maximum and unadulterated (F = Fmax in each case). "Unadulterated" here means that the force exerted by the spindle 10 in this first stop position is uniquely determined and has two components.

[0126] On the one hand, the spindle 10 acts indirectly on the grinding brushes Bi, B2 via the compressed compression spring 14 in conjunction with the force distribution element 16. On the other hand, the spindle 10 also acts indirectly on the grinding brushes Bi, B2 via the stop 10, against which it is electrically driven. These two force components superimpose. However, until shortly before this first stop position, only the force component exerted via the compression spring 14 acts on the grinding brushes Bi, B2.

[0127] For the adjustment, readjustment, or calibration of the brush holder 2 – with regard to the force it exerts – it is therefore sufficient to focus only on the resulting maximum compression spring force 14 in this first stop position, which is clearly defined or determinable. Thus, the force or force component exerted via the stop 10 is neglected when considering this adjustment, readjustment, or calibration of the brush holder 2.

[0128] In this initial stop position, there are no step losses that could reduce or distort the contact pressure. 202401085

[0129] 19

[0130] The two states B1 and B2, however, illustrate an embodiment of a brush adjuster not described within the scope of this disclosure, in which the force distribution element is raised by the spindle in such a way that a so-called contact quality limit is reached and thus a so-called zero-force reference position of the brush adjuster.

[0131] For the sake of completeness, reference is made here to the applicant's German patent application under file number 10 2024 206 925.6, which discloses such a brush holder and a proposed method for determining such a zero-force reference position. This disclosure is hereby expressly incorporated by reference.

[0132] State B1 illustrates such a brush holder in a so-called new condition, i.e., with unworn grinding brushes and in this zero-force reference position of the brush holder.

[0133] State B2, on the other hand, illustrates this brush holder with a certain amount of brush wear. Therefore, in state B2, this zero-force reference position is closer to the illustrated rotor shaft or rotor shaft axis.

[0134] In these two states B1 and B2, the brush holder exerts no force on the grinding brushes Bi and B2. The applied or exerted force is zero or at least nearly zero (F = 0).

[0135] State A also illustrates the brush holder 2 described in this disclosure, but in the second stop position, in which the spindle 10 rests against the stop of the housing section G2.

[0136] The two states A* and A**, however, each describe a state in which the compression spring 14 is not depressurized or uncompressed in the second stop position, but rather experiences a minimum compression. State A* refers to an unworn pair of grinding brushes Bi, B2, 202401085

[0137] 20 whereas condition A** refers to a worn pair of grinding brushes Bi, B2.

[0138] State C illustrates a normal state in which the brush holder 2, or such a brush holder, is in normal operation. In this state, the spindle 10 is spaced away from both the stop 18 of the force distribution element 16 and the stop of the housing section G2 of the stepper motor 4. In this state C, the force applied or exerted by the brush holder 2, with which the grinding brushes Bi, B2 are pressed against the associated slip rings SR1, SR2, lies between zero and the maximum possible force (0 < F < Fmax).

[0139] The image on the far right illustrates the distance of each spindle 10 from the housing section G2 of the stepper motor 4 (lengths or length segments L1, L2, L3, L4, L5, L4*, L5*). These are also the respective measurable travel distances from which brush wear can be determined.

[0140] With reference to the brush holders 2 described in this disclosure, brush wear results from the difference between L5 and L4 or L5* and L4* with reference to the two states D1 and D2.

[0141] And with reference to the aforementioned German patent application of the applicant with file number 10 2024 206 925.6 and the embodiments of the brush holders described therein, brush wear results from the difference between L2 and L1 with reference to states B1 and B2.

[0142] These individual difference lengths result from a determined difference in rotary or angular steps of stepper motor 4 multiplied by a gear ratio of the spindle drive (gear ratio = axial stroke along the X-axis per partial revolution or angular step of stepper motor 4). 202401085

[0143] 21

[0144] Fig. 7 shows the brush holder 2 illustrated in Fig. 1 in a further sectional view.

[0145] In the sectional view according to Fig. 8, it can be seen that a housing section Gi of the stepper motor is designed or shaped as a guide section for the spindle 10, with which the spindle 10 is positively engaged and relative to which the spindle 10 can be moved longitudinally along the depicted X-X axis. This housing section Gi, or guide section, ensures that the spindle 10 cannot rotate over its entire stroke. It is precisely because of this that the spindle drive, or the stepper motor 4, comes to an immediate standstill in the first and second end positions, which is detected as such by the control unit (so-called stall detection).

[0146] Furthermore, a computer program for carrying out the procedure of the type described above is proposed, which maps the procedure.

[0147] Furthermore, a computer program product comprising program code means stored on a computer-readable data carrier is proposed to carry out the procedure of the type described above when the program code means are executed on a computer.

[0148] Furthermore, a system comprising a brush holder and a control unit for actuating the brush holder is proposed, wherein the control unit comprises a computer program product of the type described above.

[0149] Furthermore, an electric vehicle is proposed that incorporates a computer program product of the type described above and / or a system of the type described above.

[0150] The control unit described above comprises a digital microprocessor unit (CPU) connected to a memory system and a bus system, a main memory (RAM), and a storage medium. The CPU is 202401085

[0151] 22. The CPU is designed to execute instructions stored as a program in a memory system, to acquire input signals from the data bus, and to output signals to the data bus. The memory system can have various storage media in the form of magnetic, solid-state, and other non-volatile media, on which a corresponding computer program for carrying out the method and its advantageous embodiments is stored. The program can be designed in such a way that it embodies or is capable of executing the method aspects described herein, so that the CPU can execute the steps of such methods and thus control both the electric vehicle and the proposed brush controller.

[0152] A computer program (product) suitable for carrying out the proposed method is one which has program code means to perform all steps of any one of the claims or method claims when the program is executed in the CPU.

[0153] The computer program or computer program product can be easily integrated into existing control electronics and used to control and / or regulate both the electric vehicle and the proposed brush controller.

[0154] This includes a computer program product with program code stored on a computer-readable data carrier to perform the method according to any one of the claims when the computer program product is executed in the CPU. The computer program product can also be integrated into the control electronics as a retrofit option.

[0155] Although the preceding description explains exemplary designs, it should be noted that a large number of variations are possible. Furthermore, it should be noted that the exemplary designs are merely examples and are not intended to restrict the scope of protection, applications, or structure in any way. Rather, the preceding description provides the skilled person with a guideline for the 202401085

[0156] 23

[0157] Implementation of at least one exemplary embodiment is provided, whereby various modifications, in particular with regard to the function and arrangement of the described components, can be made without leaving the scope of protection as defined by the claims and these equivalent combinations of features.

Claims

202401085 24 Patent claims 1. Method for adjusting a sensorless stepper motor of a wet-running brush holder (2), in which a spindle (10) of a spindle drive integrated into the brush holder (2) – cooperating with a spindle nut (8) of the spindle drive carrying permanent magnets, wherein the spindle nut (8) is driven by a rotating field generated by a stator (6) of the stepper motor, – is moved indirectly via at least one compression spring (14) and a force distribution element (16) against two associated grinding brushes (Bi, B2) in a first direction of rotation of the spindle nut (8) against a stop (18) of the force distribution element (16) and the spindle drive comes to a standstill, wherein in this stop position the brush holder (2) applies an undistorted, defined maximum compression spring force to the grinding brushes (Bi, B2), wherein this standstill is detected and wherein the rotating field of the stepper motor is then moved in a second,The spindle nut (8) is operated in the opposite direction of rotation to the first direction of rotation until the spindle (10) assumes a desired position in which the grinding brushes (Bi, B2) experience a demand-dependent, unadulterated pressure against each of their respective associated slip rings (SR1, SR2) of a rotor shaft.

2. Method according to claim 1, wherein the method is initiated on the vehicle system side after a defined mileage of an electric vehicle whose electric motor is externally excited by means of the brush holder (2).

3. Method according to one of the preceding claims, wherein the method is initiated while an electric vehicle is stationary, the electric motor of which is externally excited by means of the brush holder (2). 202401085 25 4. Computer program which implements a method according to one of the preceding claims.

5. Computer program product comprising program code means stored on a computer-readable data carrier for carrying out the method according to any one of the preceding claims 1 to 3 when the program code means are executed on a computer.

6. System comprising a brush holder (2) and a control unit for actuating the brush holder (2), wherein the control unit comprises a computer program product according to claim 5.

7. Electric vehicle with a computer program product according to claim 5.

Citation Information

Patent Citations

  • Method for pressing at least one first and / or one second grinding brush against an associated slip ring arranged on a rotor shaft of an electric motor for externally exciting a rotor of the electric motor arranged on the rotor shaft, computer program, computer program product, system and vehicle

    DE102023211551A1

  • Method for determining a zero-force reference position of a wet-running brush actuator, computer program, computer program product, system and electric vehicle

    DE102024206925A1

  • Carbon brush and brush holder device with intelligent measurement and control function

    CN114421249A

  • Electrical machine, e.g. starter motor, has bistable brush mountings constructed as switches for connection of electrical power

    DE10018467A1

  • Device for measuring pressure force of brush holder of electric machine, has pressuring unit for exerting pressure force on brush to be accommodated in brush holder, where pressure force of pressure unit is measured by force sensor

    DE102011076310A1