Electronic control unit and electric power steering system
The electronic control device for electric power steering systems improves robustness by using dual inverter circuits and pre-drivers on separate board surfaces, minimizing noise interference and ensuring continued operation despite disturbances.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-12-20
- Publication Date
- 2026-03-13
AI Technical Summary
Existing electronic control devices for electric power steering systems lack robustness against disturbances, such as noise and water intrusion, which can affect the reliability of the motor control.
The electronic control device incorporates a control unit with two sets of inverter circuits and pre-drivers arranged on opposite surfaces of the control board, allowing independent current supply to the motor windings, and separate wiring configurations to minimize noise interference and disturbance effects.
This configuration enhances the robustness of the electronic control unit and electric power steering system by reducing the likelihood of simultaneous malfunction of pre-drivers, ensuring continued operation even if one pre-driver fails.
Smart Images

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Abstract
Description
Technical Field
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[0001] The present disclosure relates to an electronic control device and an electric power steering device.
Background Art
[0002] Patent Document 1 discloses an electronic control device for controlling a motor. This electronic control device includes a first pre-driver and a second pre-driver. The first pre-driver and the second pre-driver respectively control the currents supplied to two systems of coils (a first winding group and a second winding group) provided in the motor. Thereby, the redundancy of the system is ensured. Further, in Cited Document 1, on the control board, the first pre-driver, the second pre-driver, etc. are arranged in line symmetry. With this arrangement, the impedance from the microcomputer to the first pre-driver and the impedance from the microcomputer to the second pre-driver are likely to be equal.
Prior Art Documents
Patent Documents
[0003]
Patent Document 1
Summary of the Invention
Problems to be Solved by the Invention
[0004] In FIG. 9 of Patent Document
[0006] One embodiment of an electronic control device according to the present disclosure comprises a motor having a single rotor and two sets of windings that rotate the rotor when current flows through it, and a control unit attached to the motor that controls the current supplied to the two sets of windings, wherein the control unit comprises a control board, a first inverter circuit and a second inverter circuit capable of independently supplying current to the two sets of windings, a first pre-driver that outputs a signal to drive the first inverter circuit, a second pre-driver that outputs a signal to drive the second inverter circuit, and a CPU that controls the first pre-driver and the second pre-driver, wherein the first pre-driver is arranged on the first surface of the control board and the second pre-driver is arranged on the second surface of the control board.
[0007] One embodiment of the electric power steering system relating to this disclosure includes the electronic control device. [Effects of the Invention]
[0008] According to this disclosure, it is possible to provide an electronic control unit and an electric power steering system that have improved robustness against disturbances. [Brief explanation of the drawing]
[0009] [Figure 1] This is a circuit diagram of the electronic control device according to Embodiment 1. [Figure 2] This is a cross-sectional view showing the configuration of the electronic control device according to Embodiment 1. [Figure 3] This is a plan view of the components mounted on the second surface of the control board according to Embodiment 1, as seen from the cover side in the axial direction. [Figure 4] This is a plan view of the components mounted on the first surface of the control board according to Embodiment 1, projected from the cover side in the axial direction. [Figure 5] Figures 3 and 4 are plan views showing some of the components superimposed. [Figure 6]This is a plan view of the first power wiring and the second power wiring on the second surface of the control board according to Embodiment 1, as seen from the cover side in the axial direction. [Figure 7] This is a plan view showing the first power wiring and the second power wiring inside the control board according to Embodiment 1. [Figure 8] This is a plan view showing the components of the first and second surfaces of the control board according to Embodiment 2, superimposed from the cover side in the axial direction. [Modes for carrying out the invention]
[0010] Embodiments of this disclosure will be described below with reference to the drawings. However, the scope of this disclosure is not limited to the embodiments described below and can be modified at will within the scope of the technical idea of this disclosure.
[0011] Embodiment 1. Figure 1 is a circuit diagram of the electronic control unit 1 and electric power steering device 100 in Embodiment 1. Figure 2 is a cross-sectional view of the electronic control unit 1. As shown in Figure 1, the electronic control unit 1 has a control unit 2 and a motor 4. The control unit 2 has a first inverter circuit 3a, a second inverter circuit 3b, a control circuit 5, a first power supply switching element 6a, a second power supply switching element 6b, a rotation sensor 14, etc.
[0012] As shown in Figure 2, the control unit 2 has a control board 20. The first inverter circuit 3a, the second inverter circuit 3b, the control circuit 5, the first power supply switching element 6a, the second power supply switching element 6b, the rotation sensor 14, etc. are mounted on the control board 20. The electric power steering device 100 is configured to use the torque generated by the motor 4 as assist torque when steering the vehicle. A detailed explanation is omitted, but the rotating shaft 42 of the motor 4 is connected to the vehicle's steering system via a reduction gear, etc.
[0013] As shown in Figure 2, the motor 4 comprises a stator 4a and a rotor 4b. The stator 4a has two sets of three-phase windings (three-phase coils). The three phases are U-phase, V-phase, and W-phase. In Figure 1, the first three-phase windings are represented by the symbols Ua, Va, and Wa, and the second three-phase windings are represented by the symbols Ub, Vb, and Wb. Windings Ua, Va, and Wa are delta-connected, and windings Ub, Vb, and Wb are delta-connected. Hereafter, these two sets of three-phase windings may simply be referred to as "three-phase windings Ua~Wb". In Figure 1, the three-phase windings Ua~Wb are delta-connected, but a star connection may also be used.
[0014] As shown in Figure 2, the motor 4 includes a cover 46, a frame 47, a group of terminals 4c, etc. The rotor 4b has a rotating shaft 42. The rotating shaft 42 rotates relative to the stator 4a about the motor axis C. The control board 20 is covered by the cover 46. The frame 47 is cylindrical, and the three-phase windings Ua to Wb of the stator 4a are housed inside the frame 47. The control board 20 has a first surface 20a and a second surface 20b.
[0015] (direction definition) In this specification, the direction along the motor axis C is referred to as the axial direction Z. The axial direction Z also coincides with the thickness direction of the control board 20. As shown in Figure 2, the control board 20 and the rotor 4b are arranged side by side in the axial direction Z. In the axial direction Z, the side on which the control board 20 is located is called the upward (+Z side), and the side on which the rotor 4b is located is called the downward (-Z side). The control board 20 extends so as to intersect (approximately orthogonal to) the axial direction Z. On the control board 20, the first surface 20a is the downward-facing surface, and the second surface 20b is the upward-facing surface. That is, the first surface 20a faces the rotor 4b side, and the second surface 20b faces the cover 46 side. Viewing from the axial direction Z is called a plan view. A view from the axial direction Z is called a plan view. Note that the axial direction Z does not necessarily coincide with the vertical direction. One direction perpendicular to the axial direction Z is called the first orthogonal direction X (see Figure 3, etc.). The direction perpendicular to both the axial direction Z and the first orthogonal direction X is called the second orthogonal direction Y (see Figure 3, etc.).
[0016] FIG. 3 is a plan view of the components mounted on the second surface 20b of the control board 20, as viewed from the cover 46 side in the axial direction Z. As shown in FIG. 3, the control board 20 is substantially rectangular in a plan view and has a first side edge 20c, a second side edge 20d, a third side edge 20e, and a fourth side edge 20f. The first side edge 20c and the second side edge 20d are parallel to the first orthogonal direction X. The third side edge 20e and the fourth side edge 20f are parallel to the second orthogonal direction Y. In the first orthogonal direction X, the side closer to the third side edge 20e is referred to as the +X side, and the side closer to the fourth side edge 20f is referred to as the -X side. In the second orthogonal direction Y, the side closer to the second side edge 20d is referred to as the +Y side, and the side closer to the first side edge 20c is referred to as the -Y side.
[0017] As the motor 4, for example, a brushless DC motor can be adopted. The motor 4 according to the present embodiment is a three-phase brushless motor and includes three-phase windings Ua to Wb (see FIG. 1). As shown in FIG. 2, a housing 41 for preventing foreign matter from entering the inside of the motor 4 is provided above the motor 4. The housing 41 is fitted inside the upper end of a cylindrical frame 47. A through hole is formed in the center of the housing 41, and a bearing 43 is fixed inside this through hole. A rotating shaft 42 is inserted through the bearing 43. The bearing 43 holds the rotating shaft 42 so that the rotating shaft 42 can rotate smoothly. A sensor magnet 45 is attached to the tip of the rotating shaft 42. The sensor magnet 45 has at least one or more N poles and S poles respectively.
[0018] As shown in FIG. 2, the control board 20 is disposed above the housing 41. The stator 4a (three-phase windings Ua to Wb) is disposed below the housing 41. The terminal group 4c electrically connects the control board 20 to the three-phase windings Ua, Va, Wa, Ub, Vb, and Wb. Specifically, the housing 41 has a through hole extending in the axial direction Z. The terminal group 4c is inserted through the through hole of the housing 41. The terminal group 4c includes six terminals respectively corresponding to the three-phase windings Ua to Wb.
[0019] As shown in FIG. 3, six current supply holes 25Ua, 25Va, 25Wa, 25Ub, 25Vb, and 25Wb are formed in the control board 20. The six terminals included in the terminal group 4c are respectively inserted into these six current supply holes 25Ua, 25Va, 25Wa, 25Ub, 25Vb, and 25Wb. Current is supplied from the inverter circuits 3a and 3b of the control board 20 to the three-phase windings Ua to Wb via the current supply holes 25Ua, 25Va, 25Wa, 25Ub, 25Vb, 25Wb and the terminal group 4c. Thereby, the rotating shaft 42 rotates. Hereinafter, the six current supply holes 25Ua, 25Va, 25Wa, 25Ub, 25Vb, 25Wb may be referred to as "current supply holes 25Ua to 25Wb". The six terminals included in the terminal group 4c may be the ends of the three-phase windings Ua to Wb, or may be relay members electrically connected to the ends of the three-phase windings Ua to Wb. The six terminals included in the terminal group 4c may be connected to the current supply holes 25Ua to 25Wb by soldering, for example.
[0020] As shown in FIG. 2, a connector assembly 40 is arranged above the cover 46. A harness (not shown) is connected to the connector assembly 40. The harness inputs information used when the electronic control device 1 controls the motor 4 to the control unit 2. More specifically, sensors 8, a battery 9, etc. mounted on the vehicle are electrically connected to the connector assembly 40 via the harness. The sensors 8 are, for example, a vehicle speed sensor, a torque sensor that detects the steering torque of the steering wheel, etc. The connector assembly 40 electrically connects the sensors 8 and the battery 9 to the control unit 2 collectively. In addition to this, the connector assembly 40 may electrically connect a battery voltage line, a ground line, a vehicle communication signal, etc. to the control unit 2 collectively. Alternatively, a connector separate from the connector assembly 40 may be provided for connecting the battery voltage line, the ground line, etc.
[0021] The connector assembly 40 has a plurality of signal lines 40a and a resin housing 40b that surrounds the end of each signal line 40a. The lower end of each signal line 40a is inserted into a plurality of GND 22, a plurality of power supply holes 23, and a plurality of sensor holes 24 formed on the control board 20 (see Figure 3). In addition, each signal line 40a is electrically connected to a circuit pattern formed on the control board 20.
[0022] The rotation sensor 14 detects the rotation angle of the rotating shaft 42. An MR (magnetoresistance) sensor can be used as the rotation sensor 14. The rotation sensor 14 detects the rotation angle of the rotating shaft 42 by detecting the magnetic field generated by the sensor magnet 45. The rotation sensor 14 is positioned opposite the sensor magnet 45. More specifically, as shown in Figure 2, the rotation sensor 14 is mounted on the first surface 20a of the control board 20. Also, the rotation sensor 14 is positioned so as to overlap with the sensor magnet 45 in a plan view. By positioning it in this way, the accuracy of rotation angle detection by the rotation sensor 14 can be improved, and the controllability of the motor 4 by the electronic control unit 1 can be improved. However, if the desired detection accuracy can be obtained, the rotation sensor 14 may be placed on the second surface 20b of the control board 20. Alternatively, the rotation sensor 14 may be placed at a position offset from the sensor magnet 45 in a plan view.
[0023] As shown in Figure 1, the first inverter circuit 3a corresponds to the first three-phase windings Ua, Va, and Wa, and the second inverter circuit 3b corresponds to the second three-phase windings Ub, Vb, and Wb. The control unit 2 is configured to independently supply power to each of the two sets of three-phase windings Ua to Wb by controlling these two inverter circuits 3a and 3b. The first power supply switching element 6a and the second power supply switching element 6b have relay functions. Specifically, the first power supply switching element 6a switches the supply and interruption of power to the first inverter circuit 3a. The second power supply switching element 6b switches the supply and interruption of power to the second inverter circuit 3b.
[0024] The power input from the battery 9 to the electronic control unit 1 is branched and supplied to the first power supply switching element 6a, the second power supply switching element 6b, and the control circuit 5. The branching point P shown in Figure 1 indicates the position where the power supplied from the battery 9 branches off.
[0025] The control circuit 5 includes a CPU 10, a first pre-driver 11a, a second pre-driver 11b, an input circuit 12, a power supply circuit 13, etc. The power supply circuit 13 uses power supplied from the battery 9 to generate a power supply voltage necessary for the normal operation of each electronic component constituting the control unit 2 (CPU 10, input circuit 12, first pre-driver 11a, second pre-driver 11b, rotation sensor 14, etc.). The input circuit 12 inputs various information received by the control unit 2 from sensors 8 and rotation sensor 14, etc., to the CPU 10. The CPU 10 is configured to calculate various control quantities for controlling the motor 4. The first pre-driver 11a and the second pre-driver 11b drive the first inverter circuit 3a and the second inverter circuit 3b based on the calculation results of the CPU 10.
[0026] Multiple wirings are formed on the control board 20 to connect the CPU 10 and the pre-drivers 11a and 11b. For example, as shown in Figure 1, the control board 20 has a first drive instruction signal wiring 15a, a second drive instruction signal wiring 15b, a first communication signal wiring 16a, a second communication signal wiring 16b, a first detection signal wiring 17a, a second detection signal wiring 17b, etc. The first drive instruction signal wiring 15a and the second drive instruction signal wiring 15b transmit PWM signals to the first pre-driver 11a and the second pre-driver 11b. PWM signals are signals used by the pre-drivers 11a and 11b to drive the inverter circuits 3a and 3b. The first communication signal wiring 16a and the second communication signal wiring 16b are used for data communication between the CPU 10 and the pre-drivers 11a and 11b. The first detection signal wiring 17a and the second detection signal wiring 17b are used for transmitting monitor signals. The monitor signal is a signal detected by the pre-drivers 11a and 11b that indicates the magnitude of the drive current of the inverter circuits 3a and 3b.
[0027] Next, we will briefly explain the operation of each part of the control unit 2. The power supply circuit 13 uses the power from the battery 9 to supply adjusted voltages to the CPU 10, input circuit 12, first pre-driver 11a, second pre-driver 11b, rotation sensor 14, etc. Power from the battery 9 is also supplied to the inverter circuits 3a and 3b via power supply switching elements 6a and 6b.
[0028] Information from the sensors 8 is sent to the CPU 10 via the input circuit 12. Based on this information, the CPU 10 calculates the control amount for supplying power to the motor 4. A command (e.g., a PWM signal) based on the calculation result is transmitted from the CPU 10 to the pre-drivers 11a and 11b. Based on the command from the CPU 10, the pre-drivers 11a and 11b output signals to drive the inverter circuits 3a and 3b. The pre-drivers 11a and 11b also detect the voltage or current of each part within the inverter circuits 3a and 3b. The detection result is transmitted to the CPU 10, for example, via the input circuit 12. Note that in the case of so-called sensorless control, it is not necessary to detect the voltage or current of each part within the inverter circuits 3a and 3b.
[0029] The power supply switching elements 6a and 6b include, for example, two MOSFETs. In this case, the two MOSFETs may be connected in series such that the parasitic diodes of the two MOSFETs are in the forward and reverse directions, respectively. The forward direction is the direction from the battery 9 to the inverter circuits 3a and 3b. The reverse direction is the direction opposite to the forward direction. By connecting the two MOSFETs in this way, the power supply switching elements 6a and 6b can be provided with both the following switching function and protection function. The switching function is the function of supplying and cutting off power to the inverter circuits 3a and 3b. The protection function is the function of protecting the inverter circuits 3a and 3b if the voltage of the battery 9 (+B) and GND are mistakenly connected in reverse when the battery 9 is installed in the vehicle. However, the power supply switching elements 6a and 6b do not necessarily have both the switching function and the protection function. Also, the configuration of the power supply switching elements 6a and 6b may be changed.
[0030] The power supply switching elements 6a and 6b can forcibly shut off the power supply in the event of a failure in the inverter circuits 3a and 3b or the motor 4. The CPU 10 controls the operation of the power supply switching elements 6a and 6b via pre-drivers 11a and 11b. However, the operation of the power supply switching elements 6a and 6b may be controlled by a circuit independent of the CPU 10 and the pre-driver 11a.
[0031] The inverter circuits 3a and 3b supply power to the three-phase windings Ua to Wb of the motor 4 based on the calculation results of the CPU 10. Each inverter circuit 3a and 3b has three upper arms and three lower arms corresponding to the U, V, and W phases, respectively. The first inverter circuit 3a and the second inverter circuit 3b have similar circuit configurations. Furthermore, the circuit configurations for the U, V, and W phases are similar in inverter circuits 3a and 3b. Therefore, the U phase will be described below as a representative of these three phases. In other words, the following description also applies to the V and W phases. Also, Figure 1 shows the components of inverter circuits 3a and 3b that correspond to the U phase. However, in reality, inverter circuits 3a and 3b also have components corresponding to the V and W phases. In other words, the components of inverter circuits 3a and 3b that correspond to the V and W phases are omitted in Figure 1.
[0032] As shown in Figure 1, the first inverter circuit 3a includes a smoothing capacitor 30au, an upper arm switching element 31au, a lower arm switching element 32au, a shunt resistor 33au, and a relay switching element 34au. The arm switching element 31au is located on the upper arm, and the arm switching element 32au is located on the lower arm. These two arm switching elements 31au and 32au are connected in series. The relay switching element 34au is connected between the two arm switching elements 31au and 32au. The relay switching element 34au has a relay function. That is, the relay switching element 34au switches the power supply from the portion between the two arm switching elements 31au and 32au to the winding Ua of the motor 4 on and off. The arm switching elements 31au and 32au are operated by the first pre-driver 11a based on the calculation results of the CPU 10.
[0033] The smoothing capacitor 30au is connected near the arm switching elements 31au and 32au. The smoothing capacitor 30au has the function of suppressing power supply voltage fluctuations and noise during switching. The shunt resistor 33au is directly connected between the arm switching element 32au and GND. The shunt resistor 33au is used to detect the drive current flowing through the motor winding Ua.
[0034] The voltage between the two arm switching elements 31au and 32au, or the voltage at the terminal of the motor 4 winding Ua, is transmitted to the CPU 10. The voltage across the shunt resistor 33au is also transmitted to the CPU 10 via the shunt voltage wiring 19a and the first pre-driver 11a, described later. Based on these transmitted values, the CPU 10 compares the control command value (target value) with the actual current or voltage. Based on this comparison result, the CPU 10 performs feedback control to rotate the motor 4 appropriately. When performing calculations, the CPU 10 also uses the rotation angle detection result from the rotation sensor 14. That is, the CPU 10 calculates the rotational position or rotational speed of the rotating shaft 42 and uses it in calculations. The CPU 10 also performs fault detection for each part.
[0035] The second inverter circuit 3b has the same circuit configuration as the first inverter circuit 3a. That is, the second inverter circuit 3b includes a smoothing capacitor 30bu, an upper arm switching element 31bu, a lower arm switching element 32bu, a shunt resistor 33bu, and a relay switching element 34bu. The connection relationships and functions of each part of the second inverter circuit 3b are the same as those of the first inverter circuit 3a, so the explanation is omitted. In addition, in the following explanation, components common to the two inverter circuits 3a and 3b and the three phases (U phase, V phase, W phase) may be expressed collectively. For example, "upper arm switching element 31" is a collective expression encompassing the six upper arm switching elements (two inverter circuits 3a and 3b and three phases) of the control unit 2. Similarly, "smoothing capacitor 30," "lower arm switching element 32," "shunt resistor 33," and "relay switching element 34" are also expressed comprehensively.
[0036] Next, the arrangement of each component included in the electronic control unit 1 will be explained using Figures 3 to 6. Figure 4 is a plan view projected from above, showing some of the components mounted on the first surface 20a of the control board 20. Figure 5 is a plan view showing some of the components shown in Figures 3 and 4 superimposed. Figure 6 is a plan view showing the arrangement of the first power wiring 26 and the second power wiring 27, which will be described later.
[0037] The control board 20 is a multilayer circuit board having a structure in which multiple conductor layers and multiple insulating layers are laminated. In this embodiment, glass epoxy resin is used as the insulating layer. In this embodiment, the control board 20 has six conductor layers. Of the six conductor layers, the conductor layer located at the bottom (on the first surface 20a side) is referred to as the first layer. Of the six conductor layers, the conductor layer located at the top (on the second surface 20b side) is referred to as the sixth layer. However, the number and material of the layers constituting the control board 20 may be changed.
[0038] In Figure 4, the first pre-driver 11a, the power supply circuit 13, and the rotation sensor 14 are shown by dashed lines. This is because the first pre-driver 11a, the power supply circuit 13, and the rotation sensor 14 are mounted on the first surface 20a. In other words, Figure 4 is a projection of some of the components on the first surface 20a from above (from the second surface 20b side). Some of the components that are visible when projected in this way are shown by dashed lines.
[0039] The inverter circuits 3a and 3b handle large currents supplied to the three-phase windings Ua to Wb of the motor 4. As a result, noise is emitted from the inverter circuits 3a and 3b due to the switching of large currents. The control signals handled by the control circuit 5 (CPU 10, pre-drivers 11a, 11b, etc.) are susceptible to the noise emitted from the inverter circuits 3a and 3b. Therefore, when the control circuit 5 and inverter circuits 3a and 3b are mounted on the same control board 20, it is desirable to increase the distance between them. In this embodiment, as shown in Figure 5, the components of the control circuit 5 are arranged in the +X side region of the control board 20, and the inverter circuits 3a and 3b are arranged in the -X side region of the control board 20. This increases the distance between the inverter circuits 3a and 3b and the control circuit 5, making the control circuit 5 less susceptible to noise.
[0040] Next, the arrangement of the various wirings on the control board 20 will be explained using Figures 5 to 7. As mentioned earlier, the control unit 2 and the external battery 9 and sensors 8 are electrically connected via a connector assembly 40. As shown in Figure 5, multiple GND holes 22, multiple power supply holes 23, and multiple sensor holes 24 are formed in the area near the outer edge of the control board 20. The ends of the multiple signal lines 40a of the connector assembly 40 are inserted into these GND holes 22, power supply holes 23, and sensor holes 24. More specifically, a signal line 40a electrically connected to the negative terminal (GND) of the battery 9 is inserted into the GND hole 22. A signal line 40a electrically connected to the positive terminal (+B) of the battery 9 is inserted into the power supply hole 23. A signal line 40a electrically connected to the sensors 8 is inserted into the sensor hole 24. Each signal line 40a and each hole 22 to 24 may be connected by a press-fit mechanism. Alternatively, each signal line 40a and each hole 22-24 may be connected by soldering.
[0041] As shown in Figures 6 and 7, the control board 20 has a first power wiring 26 and a second power wiring 27 formed on it. Figure 6 is a plan view showing the positions of the first power wiring 26 and the second power wiring 27 on the second surface 20b of the control board 20. Figure 7 is a plan view showing the positions of the first power wiring 26 and the second power wiring 27 inside the control board 20. The first power wiring 26 is a wiring pattern connected to a plurality of GND holes 22 and at the same potential as GND. The second power wiring 27 is a wiring pattern connected to a plurality of power supply holes 23 and at the same potential as the power supply potential (+B) of the battery 9. The first power wiring 26 extends from the GND holes 22 toward the inverter circuits 3a and 3b. The second power wiring 27 extends from the power supply holes 23 toward the inverter circuits 3a and 3b.
[0042] The first power wiring 26 and the second power wiring 27 carry a large current to drive the motor 4. For this reason, it is preferable to increase the line width (cross-sectional area) of the first power wiring 26 and the second power wiring 27. In this embodiment, the first power wiring 26 and the second power wiring 27, which are substantially the same shape, are formed on each of the six conductor layers of the control board 20. Furthermore, the first power wiring 26 formed on each of the six conductor layers are electrically connected by through vias (not shown). Similarly, the second power wiring 27 formed on each of the six conductor layers are electrically connected by through vias (not shown). With this structure, the total cross-sectional area of the first power wiring 26 and the second power wiring 27 can be increased.
[0043] Furthermore, it is preferable to arrange the first power wiring 26 and the second power wiring 27 so as to avoid the area where the control circuit 5 is located (area A shown in Figure 5). Therefore, as shown in Figures 6 and 7, a portion of the first power wiring 26 and the second power wiring 27 are arranged parallel to the first side edge 20c of the control board 20. This increases the mountable area for the control circuit 5.
[0044] In this embodiment, power from the battery 9 is supplied to inverter circuits 3a and 3b, respectively. For this purpose, the first power wiring 26 is branched, and the two branched sections are connected to the first inverter circuit 3a and the second inverter circuit 3b, respectively. Similarly, the second power wiring 27 is branched, and the two branched sections are connected to the first inverter circuit 3a and the second inverter circuit 3b, respectively. In a plan view, the first power wiring 26 and the second power wiring 27 are arranged to intersect each other. However, at the intersection of the first power wiring 26 and the second power wiring 27, the positions of the conductor layers are different. Therefore, the insulation state of the first power wiring 26 and the second power wiring 27 is ensured.
[0045] The arrangement of the first power wiring 26 and the second power wiring 27 will now be described in more detail. As shown in Figure 6, on the second surface 20b of the control board 20, the second power wiring 27 and the first inverter circuit 3a appear not to be connected. However, as shown in Figure 7, the second power wiring 27 and the first inverter circuit 3a are connected in the conductor layer located inside the control board 20. Also, in Figure 7, the first power wiring 26 appears to be interrupted near the first inverter circuit 3a. However, as shown in Figure 6, on the second surface 20b, the first power wiring 26 extends continuously from the GND hole 22 to the inverter circuits 3a and 3b. Note that the first power wiring 26 may be at the same potential as the power supply potential (+B) of the battery 9, and the second power wiring 27 may be at the same potential as GND. In other words, the positions of the GND hole 22 and the power supply hole 23 may be swapped in Figure 6, etc.
[0046] The inverter circuits 3a and 3b control the on / off states of the upper arm switching element 31 and the lower arm switching element 32. This allows current to be selectively supplied to the three-phase windings Ua to Wb of the motor 4 via the current supply holes 25Ua to 25Wb of the control board 20.
[0047] As shown in Figure 4, the six shunt resistors 33au, aw, av, bu, bw, and bv are positioned close to the six current supply holes 25Ua to 25Wb. The six current supply holes 25Ua to 25Wb are arranged approximately point-symmetrically with respect to the rotation sensor 14. This reduces the influence of noise generated from the current supply holes 25Ua to 25Wb and their corresponding wiring on the detection signal of the rotation sensor 14.
[0048] Next, the arrangement of wiring and other components included in the control circuit 5 will be described. As shown in Figure 2, the first pre-driver 11a is mounted on the first side 20a of the control board 20, and the CPU 10 and the second pre-driver 11b are mounted on the second side 20b of the control board 20. As shown in Figure 3, multiple drive instruction signal wires 15b, multiple communication signal wires 16b, multiple detection signal wires 17b, etc., are arranged between the CPU 10 and the second pre-driver 11b. The communication signal wires 16b and drive instruction signal wires 15b are connected to the +Y side of the CPU 10. The detection signal wires 17b are connected to the -X side of the CPU 10. The drive instruction signal wires 15b, communication signal wires 16b, and detection signal wires 17b are arranged so as not to cross each other.
[0049] As shown in Figure 4, the first pre-driver 11a is connected to a plurality of drive instruction signal wires 15a, a plurality of communication signal wires 16a, and a plurality of detection signal wires 17a. As shown in Figures 3 and 4, the drive instruction signal wire 15a has a portion 15a1 located on the first surface 20a (i.e., the first layer) and a portion 15a2 located on the second surface 20b (i.e., the sixth layer). Similarly, the communication signal wire 16a has a portion 16a1 located on the first surface 20a and a portion 16a2 located on the second surface 20b. The detection signal wire 17a has a portion 17a1 located on the first surface 20a and a portion 17a2 located on the second surface 20b.
[0050] As shown in Figure 3, the respective portions 15a2, 16a2, and 17a2 of the drive instruction signal wiring 15a, the communication signal wiring 16a, and the detection signal wiring 17a, located on the second surface 20b, are connected to the CPU 10. The control board 20 has multiple vias 21a, 21b, 21c, and 21d that connect the first to the sixth layers. Two portions 15a1 and 15a2 of the drive instruction signal wiring 15a are connected by via 21a. Two portions 16a1 and 16a2 of the communication signal wiring 16a are connected by via 21b. Two portions 17a1 and 17a2 of the detection signal wiring 17a are connected by via 21c. Therefore, the drive instruction signal wiring 15a, the communication signal wiring 16a, and the detection signal wiring 17a electrically connect the first pre-driver 11a and the CPU 10 (see also Figure 5).
[0051] As shown in Figure 5, the communication signal wiring 16a and the drive instruction signal wiring 15a are connected to the -Y side of the CPU 10. The detection signal wiring 17a is connected to the -X side of the CPU 10. The drive instruction signal wiring 15a, the communication signal wiring 16a, and the detection signal wiring 17a are arranged so as not to cross each other. Note that each wiring 15a, 15b, 16a, 16b, 17a, and 17b may be formed on any of the six conductor layers (from the first to the sixth layer) of the control board 20.
[0052] As shown in Figure 5, multiple first drive voltage wires 18a and multiple first shunt voltage wires 19a are arranged between the first pre-driver 11a and the first inverter circuit 3a. Multiple second drive voltage wires 18b and multiple second shunt voltage wires 19b are arranged between the second pre-driver 11b and the second inverter circuit 3b. The drive voltage wires 18a and 18b transmit the drive voltage for driving the inverter circuits 3a and 3b. The shunt voltage wires 19a and 19b transmit the voltage across the shunt resistors 33au, aw, av, bu, bw, and bv. This voltage across the resistors is used to monitor the magnitude of the drive current supplied to the motor 4.
[0053] The second shunt voltage wiring 19b has a portion 19b1 located on the first surface 20a (see Figure 4) and a portion 19b2 located on the second surface 20b (see Figure 3). The two portions 19b1 and 19b2 of the second shunt voltage wiring 19b are connected to each other by vias 21d.
[0054] Noise affecting the shunt voltage wirings 19a and 19b used for current detection can lead to a decrease in the control accuracy of the motor 4. Furthermore, the inverter circuits 3a and 3b handle large currents and are therefore prone to generating switching noise. For this reason, the shunt voltage wirings 19a and 19b are positioned at both ends of the control board 20 in the second orthogonal direction Y. More specifically, as shown in Figure 5, a portion of the shunt voltage wiring 19a is positioned near the first side edge 20c, and a portion of the shunt voltage wiring 19b is positioned near the second side edge 20d. This reduces the influence of switching noise on current detection.
[0055] Furthermore, the drive voltage wirings 18a and 18b are also prone to generating noise. Therefore, the drive voltage wirings 18a and 18b are positioned in the central part of the control board 20 in the second orthogonal direction Y. More specifically, a portion of the drive voltage wirings 18a and 18b are positioned between the inverter circuits 3a and 3b. This arrangement increases the distance between the drive voltage wirings 18a and 18b and the shunt voltage wirings 19a and 19b, thereby reducing the influence of noise on current detection.
[0056] Here, the electronic control unit 1 has redundancy by having two pre-drivers 11a and 11b that can drive the motors 4 independently. In other words, even if one of the two pre-drivers 11a and 11b malfunctions, the other can continue to drive the motors 4. However, if the two pre-drivers 11a and 11b are placed on the same surface of the control board 20, the likelihood of disturbances affecting both pre-drivers 11a and 11b simultaneously increases. Examples of disturbances include water intrusion into the electronic control unit 1 and noise from outside the electronic control unit 1. If the pre-drivers 11a and 11b malfunction simultaneously due to these disturbances, the redundancy will not be effective, and the function of driving the motors 4 will be impaired.
[0057] In contrast, in this embodiment, the two pre-drivers 11a and 11b are arranged separately on both sides of the control board 20. This suppresses the simultaneous influence of disturbances on the two pre-drivers 11a and 11b. Therefore, even if a disturbance causes a malfunction in one pre-driver, the remaining pre-driver is less likely to malfunction. In other words, the motor 4 can continue to be driven by the remaining pre-driver.
[0058] As described above, the electronic control device 1 according to this embodiment comprises a motor 4 having a single rotor 4b and two sets of windings Ua to Wb that rotate the rotor 4b when current flows through it, and a control unit 2 attached to the motor 4 that controls the current supplied to the two sets of windings Ua to Wb, respectively. The control unit 2 comprises a control board 20, a first inverter circuit 3a and a second inverter circuit 3b capable of independently supplying current to the two sets of windings Ua to Wb, a first pre-driver 11a that outputs a signal to drive the first inverter circuit 3a, a second pre-driver 11b that outputs a signal to drive the second inverter circuit 3b, and a CPU 10 that controls the first pre-driver 11a and the second pre-driver 11b. The first pre-driver 11a is located on the first surface 20a of the control board, and the second pre-driver 11b is located on the second surface 20b of the control board 20. With this configuration, an electronic control device 1 with improved robustness against disturbances can be provided.
[0059] Furthermore, in this embodiment, the wirings 15a, 16a, and 17a connecting the CPU 10 and the first pre-driver 11a, and the wirings 15b, 16b, and 17b connecting the CPU 10 and the second pre-driver 11b, are arranged so that they do not intersect each other when projected in the thickness direction of the control board 20 (see Figure 5). As a result, the effect of crosstalk between each wiring can be reduced, and signal quality is improved.
[0060] Furthermore, the control board 20 has a first side edge 20c and a second side edge 20d, the first inverter circuit 3a has first shunt resistors 33au, 33aw, and 33av for monitoring the current supplied to the motor 4, and the second inverter circuit 3b has second shunt resistors 33bu, 33bw, and 33bv for monitoring the current supplied to the motor 4. The control board 20 has a first shunt voltage wiring 19a that transmits the voltage across the first shunt resistors 33au, 33aw, and 33av to the first pre-driver 11a, and a second shunt voltage wiring 19b that transmits the voltage across the second shunt resistors 33bu, 33bw, and 33bv to the second pre-driver 11b. As shown in Figure 5, at least a portion of the first shunt voltage wiring 19a is positioned between the first inverter circuit 3a and the first side edge 20c, and at least a portion of the second shunt voltage wiring 19b is positioned between the second inverter circuit 3b and the second side edge 20d. This configuration ensures sufficient distance between the shunt voltage wirings 19a and 19b and the inverter circuits 3a and 3b. Therefore, the influence of switching noise generated from the inverter circuits 3a and 3b on the detection results of the voltage across the shunt resistors 33au to 33bv can be reduced.
[0061] Furthermore, the control board 20 has a first drive voltage wiring 18a connecting the first pre-driver 11a and the first inverter circuit 3a, and a second drive voltage wiring 18b connecting the second pre-driver 11b and the second inverter circuit 3b. At least a portion of the first drive voltage wiring 18a and at least a portion of the second drive voltage wiring 18b are arranged between the first inverter circuit 3a and the second inverter circuit 3b. With this configuration, a distance can be secured between the drive voltage wirings 18a, 18b and the shunt voltage wirings 19a, 19b. Therefore, the influence of noise generated from the drive voltage wirings 18a, 18b on the detection result of the voltage across the shunt resistors 33au~33bv can be reduced.
[0062] Furthermore, the same type of IC may be used for the first pre-driver 11a and the second pre-driver 11b. In this case, the variation between the two systems caused by differences in IC performance can be reduced. The "two systems" refer to the first system including the first pre-driver 11a and the second system including the second pre-driver 11b.
[0063] Furthermore, the control board 20 has a power supply section (GND hole 22 and power hole 23) to which power is supplied from the battery 9, and the power supply section is located at the edge of the control board 20 (near the first side edge 20c). The control board 20 has a first power wiring 26 that is electrically connected to the negative terminal of the battery 9 and a second power wiring 27 that is electrically connected to the positive terminal of the battery 9, and at least a portion of the first power wiring 26 and at least a portion of the second power wiring 27 are arranged along the edge of the control board 20 (near the first side edge 20c). This configuration makes it possible to increase the area of region A for mounting the control circuit 5. Note that the power supply section, the first power wiring 26, and the second power wiring 27 may be located near the edge of the control board 20 other than the first side edge 20c.
[0064] Furthermore, according to this embodiment, it is possible to provide an electric power steering device 100 with improved robustness against disturbances.
[0065] Embodiment 2. Next, an electric power steering system according to Embodiment 2 will be described. Since the basic configuration of the electric power steering system according to this embodiment is the same as that of the electric power steering system of Embodiment 1, the differences will be the main points to be explained.
[0066] As shown in Figure 8, in this embodiment, the shunt resistors 33au, aw, av, bu, bw, and bv are located near the center of the control board 20 in the second orthogonal direction Y. The shunt voltage wirings 19a and 19b are also located near the center of the control board 20 in the second orthogonal direction Y. Part of the shunt voltage wirings 19a and 19b are located between the inverter circuits 3a and 3b. The drive voltage wiring 18a is located between the first inverter circuit 3a and the first side edge 20c in the second orthogonal direction Y. The drive voltage wiring 18b is located between the second inverter circuit 3b and the second side edge 20d in the second orthogonal direction Y.
[0067] As described above, in this embodiment, the first inverter circuit 3a has first shunt resistors 33au, 33aw, and 33av for monitoring the current supplied to the motor 4, and the second inverter circuit 3b has second shunt resistors 33bu, 33bw, and 33bv for monitoring the current supplied to the motor 4. The control board 20 has a first shunt voltage wiring 19a that transmits the voltage across the first shunt resistors 33au, 33aw, and 33av to the first pre-driver 11a, and a second shunt voltage wiring 19b that transmits the voltage across the second shunt resistors 33bu, 33bw, and 33bv to the second pre-driver 11b. As shown in Figure 8, at least a portion of the first shunt voltage wiring 19a and at least a portion of the second shunt voltage wiring 19b are arranged between the first inverter circuit 3a and the second inverter circuit.
[0068] Furthermore, the control board 20 has a first side edge 20c and a second side edge 20d. The control board 20 has a first drive voltage wiring 18a connecting the first pre-driver 11a and the first inverter circuit 3a, and a second drive voltage wiring 18b connecting the second pre-driver 11b and the second inverter circuit 3b. At least a portion of the first drive voltage wiring 18a is positioned between the first inverter circuit 3a and the first side edge 20c, and at least a portion of the second drive voltage wiring 18b is positioned between the second inverter circuit 3b and the second side edge 20d. This configuration ensures a distance between the drive voltage wirings 18a, 18b and the shunt voltage wirings 19a, 19b. Therefore, the influence of noise generated from the drive voltage wirings 18a, 18b on the detection result of the voltage across the shunt resistors 33au~33bv can be reduced.
[0069] The technical scope of this disclosure is not limited to the embodiments described above, and various modifications can be made without departing from the spirit of this disclosure.
[0070] For example, the electronic control unit 1 may be used for purposes other than the electric power steering system 100. Furthermore, the above-described embodiments or modifications may be combined as appropriate. [Explanation of Symbols]
[0071] 1…Electronic control unit 2…Control unit 3a…First inverter circuit 3b…Second inverter circuit 4…Motor 4b…Rotor 9…Battery 11a…First pre-driver 11b…Second pre-driver 18a…First drive voltage wiring 18b…Second drive voltage wiring 19a…First shunt voltage wiring 19b…Second shunt voltage wiring 20…Control board 20a…First side 20b…Second side 20c…First side edge 20d…Second side edge 26…First power wiring 27…Second power wiring 33au, 33av, 33aw…First shunt resistor 33bu, 33bv, 33bw…Second shunt resistor 100…Electric power steering device Ua~Wb…Winding
Claims
1. A motor having a single rotor and two sets of windings that rotate the rotor when current flows through it, The motor is equipped with a control unit that controls the current supplied to the two sets of windings, The control unit is Control board and A first inverter circuit and a second inverter circuit capable of independently supplying current to the two sets of windings, A first pre-driver that outputs a signal to drive the first inverter circuit, A second pre-driver that outputs a signal for driving the second inverter circuit, The system includes a CPU that controls the first pre-driver and the second pre-driver, The first pre-driver is arranged on the first surface of the control board. The second pre-driver is an electronic control device located on the second surface of the control board.
2. The electronic control device according to claim 1, wherein the wiring connecting the CPU and the first pre-driver and the wiring connecting the CPU and the second pre-driver are arranged so as not to intersect each other when projected in the thickness direction of the control board.
3. The control board has a first side edge and a second side edge, The first inverter circuit has a first shunt resistor for monitoring the current supplied to the motor, The second inverter circuit has a second shunt resistor for monitoring the current supplied to the motor. The control board is provided with a first shunt voltage wiring that transmits the voltage across the first shunt resistor to the first pre-driver, and a second shunt voltage wiring that transmits the voltage across the second shunt resistor to the second pre-driver. At least a portion of the first shunt voltage wiring is positioned between the first inverter circuit and the first side edge. The electronic control device according to claim 1 or 2, wherein at least a portion of the second shunt voltage wiring is arranged between the second inverter circuit and the second side edge.
4. The control board has a first drive voltage wiring that connects the first pre-driver and the first inverter circuit, and a second drive voltage wiring that connects the second pre-driver and the second inverter circuit. The electronic control device according to claim 1 or 2, wherein at least a portion of the first drive voltage wiring and at least a portion of the second drive voltage wiring are arranged between the first inverter circuit and the second inverter circuit.
5. The first inverter circuit has a first shunt resistor for monitoring the current supplied to the motor, The second inverter circuit has a second shunt resistor for monitoring the current supplied to the motor. The control board is provided with a first shunt voltage wiring that transmits the voltage across the first shunt resistor to the first pre-driver, and a second shunt voltage wiring that transmits the voltage across the second shunt resistor to the second pre-driver. The electronic control device according to claim 1 or 2, wherein at least a portion of the first shunt voltage wiring and at least a portion of the second shunt voltage wiring are arranged between the first inverter circuit and the second inverter circuit.
6. The control board has a first side edge and a second side edge, The control board has a first drive voltage wiring that connects the first pre-driver and the first inverter circuit, and a second drive voltage wiring that connects the second pre-driver and the second inverter circuit. At least a portion of the first drive voltage wiring is positioned between the first inverter circuit and the first side edge. The electronic control device according to claim 1 or 2, wherein at least a portion of the second drive voltage wiring is arranged between the second inverter circuit and the second side edge.
7. The electronic control device according to claim 1 or 2, wherein the first pre-driver and the second pre-driver are ICs of the same type.
8. The control board has a power supply unit that is powered by a battery, The power supply unit is located at the end of the control board, The control board has a first power wiring that is electrically connected to the negative terminal of the battery, and a second power wiring that is electrically connected to the positive terminal of the battery. The electronic control device according to claim 1 or 2, wherein at least a portion of the first power wiring and at least a portion of the second power wiring are arranged along the end of the control board.
9. An electric power steering system comprising the electronic control device described in claim 1 or claim 2.
Citation Information
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