Brake control system
The braking control device addresses the challenge of maintaining driving performance and ride comfort during cornering by coordinating regenerative and friction braking forces, enhancing grip limits and reducing posture changes through adaptive force distribution.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2023-08-31
- Publication Date
- 2026-04-15
AI Technical Summary
Existing vehicle braking systems face challenges in maintaining optimal driving performance and ride comfort during cornering braking, particularly due to pitching motions that affect the load distribution on wheels and vehicle posture changes.
A braking control device that coordinates regenerative and friction braking forces, adjusting their distribution based on the vehicle's turning index to enhance handling performance and ride comfort through first and second distribution adjustments, tailored for different driving modes.
The system effectively improves handling performance and ride comfort during cornering by optimizing the distribution of braking forces, ensuring the vehicle's grip limits are enhanced and posture changes are minimized.
Smart Images

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Abstract
Description
Technical Field
[0001] The present invention relates to a braking control device for a vehicle that performs regenerative cooperative control.
Background Art
[0002] Conventionally, techniques related to regenerative cooperative control for applying regenerative braking force and frictional braking force to vehicle wheels using a regenerative braking device and a frictional braking device are known. For example, Patent Document 1 describes a vehicle control device that changes the ratio of regenerative braking force and frictional braking force when a braking operation is performed by a driver and when performing vehicle motion control. In this vehicle control device, for example, when performing turning braking of the vehicle, by reducing the ratio of the regenerative braking force in the wheels on the inner side of the turn, it is possible to prevent the in-wheel motor from exceeding the control range. Also, in this vehicle control device, when performing turning braking of the vehicle, by reducing the ratio of the frictional braking force in the wheels on the outer side of the turn, the power to be recovered is increased and the loss due to friction is reduced.
Prior Art Documents
Patent Documents
[0003]
Patent Document 1
Summary of the Invention
Problems to be Solved by the Invention
[0004] When the vehicle brakes, pitching motion occurs in the vehicle, and the posture change of the vehicle causes a change in the load applied to the ground contact surfaces of the front and rear wheels. As a result, when braking is performed simultaneously with turning of the vehicle, it may not be possible to sufficiently satisfy the motion performance required by the driver during turning, or it may affect the riding comfort of the driver due to the posture change.
[0005] This invention has been made in view of these problems, and its objective is to provide a braking control device that can appropriately adjust the driving performance and ride comfort during cornering braking of a vehicle performing regenerative braking coordinated control. [Means for solving the problem]
[0006] To achieve the above objective, the braking control device of the present invention uses a regenerative braking device that applies regenerative braking force to the front and rear wheels of a vehicle and a friction braking device that applies friction braking force to the front and rear wheels to perform regenerative coordinated control that outputs the required braking force required for braking the vehicle in coordination with the regenerative braking force and the friction braking force. During the execution of the regenerative coordinated control, the device performs either a first distribution adjustment, in which the larger the index value representing the degree of turning of the vehicle, the larger the regenerative braking force applied to the front wheels is, while the regenerative braking force applied to the rear wheels is increased, while the friction braking force applied to the front wheels is increased, while the friction braking force applied to the rear wheels is decreased, or a second distribution adjustment, in which the larger the index value, the larger the regenerative braking force applied to the front wheels is, while the regenerative braking force applied to the rear wheels is increased, while the friction braking force applied to the front wheels is decreased, while the friction braking force applied to the rear wheels is increased.
[0007] With this configuration, when the first distribution adjustment is performed, the larger the index value representing the degree of turning, the higher the grip limit of the front wheels, thereby improving the vehicle's handling performance. Furthermore, when the second distribution adjustment is performed, the larger the index value representing the degree of turning, the higher the grip limit of the rear wheels, suppressing vehicle spin and improving handling performance. In addition, by making the rear of the vehicle more prone to sinking, it becomes possible to adjust the vehicle's pitch angle to approach 0 degrees. Therefore, according to the braking control device of the present invention, the handling performance and ride comfort can be appropriately adjusted during cornering braking of a vehicle performing regenerative braking.
[0008] Furthermore, if the vehicle's driving mode is a sport mode that prioritizes improved handling performance over ride comfort, it is preferable to perform the first distribution adjustment. In this case, it is preferable that the index value is at least one of the vehicle's steering angle and lateral angular velocity. This configuration makes it possible to increase the grip limit of the front wheels in sport mode and improve handling performance during cornering braking. In addition, by using the steering angle or lateral acceleration as the index value, it is possible to achieve distribution adjustment according to the degree of turning of the vehicle.
[0009] Furthermore, if the vehicle's driving mode is a sport mode that prioritizes improved handling performance over ride comfort, it is preferable to perform the second distribution adjustment. In this case, the index value is preferably at least one of the vehicle's yaw rate and the rear wheel slip angle. This configuration increases the rear wheel grip limit in sport mode and suppresses vehicle spin. Also, by using the yaw rate or rear wheel slip angle as the index value, it is possible to achieve distribution adjustment according to the degree of vehicle spin.
[0010] Furthermore, if the vehicle's driving mode is a comfort mode that prioritizes ride comfort over improved driving performance, it is preferable to perform the second distribution adjustment. In this case, it is preferable that the index value is at least one of the vehicle's steering angle and lateral angular velocity. This configuration allows the rear of the vehicle to tend to sink in comfort mode, bringing the vehicle's pitch angle closer to 0 degrees. As a result, it is possible to suppress changes in posture during cornering, which are easily perceived as affecting ride comfort, and improve the driver's ride comfort. In addition, by using the steering angle or lateral acceleration as the index value, it is possible to achieve distribution adjustment according to the degree of vehicle cornering. [Effects of the Invention]
[0011] According to the braking control device of the present invention, it becomes possible to appropriately adjust the driving performance and ride comfort during cornering braking of a vehicle that performs regenerative braking coordinated control. [Brief explanation of the drawing]
[0012] [Figure 1] This is a schematic diagram showing a vehicle equipped with a braking control device according to an embodiment. [Figure 2] This is an explanatory diagram showing an example of the time evolution of required braking force, regenerative braking force, and friction braking force in regenerative braking coordinated control. [Figure 3] This is a schematic diagram illustrating the pitching motion of a vehicle during operation. [Figure 4] This is a schematic diagram illustrating the pitching motion of a vehicle during braking. [Figure 5] This is an explanatory diagram illustrating the instantaneous center of rotation of a vehicle. [Figure 6] This is a schematic diagram illustrating the amount of load transfer due to reaction torque. [Figure 7] This is an explanatory diagram plotting an example of the pitch angle when the regeneration ratio, friction ratio, front ratio, and rear ratio are changed. [Figure 8] This is an explanatory diagram showing an example of the time change of the pitch angle when regenerative coordinated control is performed. [Figure 9] This is an explanatory diagram showing an example of the pitching motion of the vehicle body when frictional braking force is applied only to the front wheels in the embodiment of the vehicle. [Figure 10] This is an explanatory diagram showing an example of the pitching motion of the vehicle body when frictional braking force is applied only to the rear wheels in the embodiment of the vehicle. [Figure 11] This is a schematic diagram illustrating how braking force is adjusted using the first distribution adjustment during vehicle cornering braking. [Figure 12] This is a schematic diagram illustrating how braking force is adjusted using the second distribution adjustment during vehicle cornering braking. [Modes for carrying out the invention]
[0013] An embodiment of the present invention will be described below with reference to the drawings.
[0014] (vehicle) FIG. 1 is a schematic configuration diagram showing a vehicle equipped with a braking control device according to an embodiment. Vehicle 1 is a four-wheel drive electric vehicle that transmits power from a front motor 10f as a driving power source to the left and right front wheels 2f and transmits power from a rear motor 10r as a driving power source to the left and right rear wheels 2r to run. The front motor 10f outputs a driving force to the left and right front wheels 2f via a transaxle 12f including a transmission and a differential gear. The rear motor 10r outputs a driving force to the left and right rear wheels 2r via a transaxle 12r including a transmission and a differential gear. A battery 14 as a power source configured as a secondary battery such as a lithium ion battery is mounted on the vehicle 1, and the power from the battery 14 is supplied to the front motor 10f and the rear motor 10r via a power conversion device such as an inverter not shown. The front motor 10f and the rear motor 10r are driven and controlled by a control device 16 (braking control device).
[0015] Further, the vehicle 1 is provided with a braking device that applies a braking force to the front wheels 2f and the rear wheels 2r. The braking device includes a regenerative braking device 20 and a friction braking device 30. The regenerative braking device 20 includes the front motor 10f and the rear motor 10r, the battery 14, and a power conversion device such as an inverter not shown. The front motor 10f and the rear motor 10r are forced to drive by the rotational force of the front wheels 2f and the rear wheels 2r during decelerating running in an accelerator-off state of the vehicle 1 to generate regenerative power, and apply a regenerative braking force to the front wheels 2f and the rear wheels 2r. The regenerative power generated by the front motor 10f and the rear motor 10r is supplied to the battery 14.
[0016] The friction braking device 30 is a disk brake device that applies a friction braking force to each of the front wheels 2f and each of the rear wheels 2r by the frictional force generated by pressing a brake pad 34 driven by an actuator not shown against a disk rotor 32 provided corresponding to each of the front wheels 2f and each of the rear wheels 2r. Note that the actuator may be either hydraulic or electric. The friction braking device 30 is driven and controlled by the control device 16.
[0017] The control device 16 is configured to include an input / output device, a storage device (such as ROM, RAM, non-volatile RAM, etc.), a central processing unit (CPU), etc., and performs comprehensive control of the vehicle 1. The control device 16 inputs detection amounts detected by various sensors (not shown) such as accelerator opening, brake stroke, vehicle speed, and wheel speed, and various operation information. Based on the various input detection amounts and various operation information, the control device 16 calculates information necessary for controlling the vehicle 1, such as the required driving force and the required braking force required for the running of the vehicle 1, and controls various devices of the vehicle 1 based on the calculated information. For example, the control device 16 executes regenerative cooperative control that outputs the required braking force required for braking the vehicle 1 in cooperation with regenerative braking force and frictional braking force by using the regenerative braking device 20 and the frictional braking device 30.
[0018] (An example of regenerative cooperative control) FIG. 2 is an explanatory diagram showing an example of the time change of the required braking force, regenerative braking force, and frictional braking force in regenerative cooperative control. The control device 16 calculates the required braking force Fb according to the amount of brake depression by the driver, and based on the calculated required braking force Fb, sets the regenerative braking force Fkf applied from the front motor 10f to the front wheel 2f, the Fkr applied from the rear motor 10r to the rear wheel 2r, the frictional braking force Fmf applied from each frictional braking device 30 to the front wheel 2f, and the frictional braking force Fmr applied to the rear wheel 2r.
[0019] Specifically, the control device 16 sets the regenerative braking ratio k, friction ratio m, front ratio f, and rear ratio r, expressed by the following equations (1) to (4), so that the sum of the regenerative braking forces Fkf, Fkr and friction braking forces Fmf, Fmr satisfies the required braking force Fb. The regenerative braking ratio k and friction ratio m are the distribution ratios of the regenerative braking forces Fkf, Fkr and the friction braking forces Fmf, Fmr, and are set between a value of 0 and a value of 1 so that their sum is a value of 1. The front ratio f and rear ratio r are the distribution ratios of the braking force applied to the front wheels 2f (Fkf, Fmf) and the braking force applied to the rear wheels 2r (Fkr, Fmr), and are set between a value of 0 and a value of 1 so that their sum is a value of 1. The specific method for setting the above distribution ratios will be described later. However, the regenerative braking forces Fkf and Fkr are set within the range of the upper limit of the regenerative power generation amount, which is set according to the charge level (SOC: state of charge) and temperature of the battery 14. In the example shown in Figure 2, when the driver presses the brake pedal (time t1), regenerative braking forces Fkf and Fkr are output within the upper limit of the regenerative power generation amount in accordance with the change in the required braking force Fb, and the difference between the regenerative braking forces Fkf and Fkr and the required braking force Fb is output as friction braking forces Fmf and Fmr.
[0020] k=(Fkf+Fkr) / (Fkf+Fkr+Fmf+Fmr) …(1) m=(Fmf+Fmr) / (Fkf+Fkr+Fmf+Fmr) …(2) f=(Fkf+Fmf) / (Fkf+Fkr+Fmf+Fmr) …(3) r=(Fkr+Fmr) / (Fkf+Fkr+Fmf+Fmr) …(4)
[0021] (Substitution control) Furthermore, when the vehicle speed of vehicle 1 falls below a predetermined substitution determination speed (time t2) during the execution of regenerative cooperative control, the control device 16 performs substitution control to substitute the portion of the requested braking force Fb that was previously handled by regenerative braking forces Fkf and Fkr with friction braking forces Fmf and Fmr. The predetermined substitution determination speed should be set to a speed at which it can be determined that the vehicle is approaching a stop, and at which the substitution from regenerative braking forces Fkf and Fkr to friction braking forces Fmf and Fmr can be completed before the vehicle comes to a stop. However, it is preferable that the substitution from regenerative braking forces Fkf and Fkr to friction braking forces Fmf and Fmr be performed over a period of time that does not cause slippage in braking. When the substitution control is completed at time t3, the portion of the requested braking force Fb that was previously handled by regenerative braking forces Fkf and Fkr is entirely replaced by friction braking forces Fmf and Fmr. This allows the front motor 10f and rear motor 10r to output creep torque, enabling them to quickly output driving force when the vehicle 1 comes to a stop at time t4 and restarts.
[0022] (Vehicle pitching motion) Next, the pitching motion of vehicle 1 will be explained. Figure 3 is a schematic diagram illustrating the pitching motion of vehicle 1 during driving, and Figure 4 is a schematic diagram illustrating the pitching motion of vehicle 1 during braking. Here, in order to explain the general concept of the change in the pitch direction of vehicle 1 and the resulting load transfer during driving and braking, Figure 4 shows an example in which only frictional braking forces Fmf and Fmr are applied to vehicle 1.
[0023] As shown in Figure 3, when driving forces Fdf and Fdr are applied to the front wheels 2f and rear wheels 2r, an inertial force Fi acts on the rear of the vehicle 1. As a result, a pitch moment Mp acts on the center of gravity G of the vehicle 1, causing the front to tilt upward, resulting in a so-called squat posture change. Also, as shown in Figure 4, when frictional braking forces Fmf and Fmr are applied, an inertial force Fi acts on the front of the vehicle 1. As a result, a pitch moment Mp acts on the center of gravity G of the vehicle 1, causing the front to tilt downward, resulting in a so-called nose dive posture change. At this time, the inclination of the straight line L1 extending in the longitudinal direction through the center of gravity G of the vehicle 1 before and after the posture change is the pitch angle θp. In this embodiment, the pitch angle θp is assumed to increase in the positive direction as the vehicle 1 changes posture toward nose dive, and to decrease in the positive direction (increase in the negative direction) as the vehicle 1 changes posture toward squat.
[0024] (Anti-angle and anti-force) Furthermore, anti-forces act on vehicle 1 according to the anti-angle θa predetermined as part of the vehicle specifications. The anti-angle θa includes the anti-nose-up angle θaU, the anti-squat angle θaS, the anti-nose-dive angle θaD, and the anti-tail-lift angle θaL. Each anti-angle θa is determined by the geometry of the suspension 18 (front suspension 18f and rear suspension 18r) connected to the front wheels 2f and rear wheels 2r of vehicle 1.
[0025] When vehicle 1 is driven, an anti-nose-up force FaU, which is the vertical component of the driving force Fdf, acts on the front side of vehicle 1 according to the anti-nose-up angle θaU, and an anti-squat force FaS, which is the vertical component of the driving force Fdr, acts on the rear side of vehicle 1 according to the anti-squat angle θaS. Since the anti-nose-up force FaU is a downward force and the anti-squat force FaS is an upward force, changes in the squatting posture of vehicle 1 are suppressed.
[0026] On the other hand, when vehicle 1 is braking, an anti-nose dive force FaD, which is the vertical component of the friction braking force Fmf, acts on the front side of vehicle 1 according to the anti-nose dive angle θaD, and an anti-tail lift force FaL, which is the vertical component of the friction braking force Fmr, acts on the rear side of vehicle 1 according to the anti-tail lift angle θaL. Since the anti-nose dive force FaD is an upward force and the anti-tail lift force FaL is a downward force, changes in the vehicle 1's nose-up attitude are suppressed.
[0027] (Load transfer) As described above, when a squat posture change occurs, the front suspension 18f extends and the rear suspension 18r contracts in vehicle 1. On the other hand, when a nose dive posture change occurs, the front suspension 18f contracts and the rear suspension 18r extends in vehicle 1. The force corresponding to this extension and contraction is the load transfer amount ΔW acting on the inboard portion of vehicle 1 located above the suspension 18 when pitching motion occurs. In this embodiment, the load transfer amount ΔW during regenerative cooperative control is calculated by the method described below, and the regenerative braking force Fkf, Fkr and frictional braking force Fmf, Fmr in regenerative cooperative control are set based on the relationship between the load transfer amount ΔW and the pitch angle θp. In the following description, the inboard portion of vehicle 1 located above the suspension 18 is referred to as the "sprung mass," and the outboard portion located below the suspension 18 is referred to as the "unsprung mass."
[0028] (Instantaneous center of rotation) Here, the pitching motion of the vehicle 1 on the spring during regenerative cooperative control can be considered as a behavior caused by the pitch moment acting on the center of gravity G, with the instantaneous center of rotation of each force acting on the vehicle 1 (pitching instantaneous center) as the fulcrum. Figure 5 is a schematic explanatory diagram showing the instantaneous center of rotation of the vehicle 1. As shown in the figure, the regenerative braking forces Fkf and Fkr are forces output from the front motor 10f and rear motor 10r installed on the spring. Therefore, in this embodiment, the intersection of the extension line L2 extending along the anti-nose-up angle θaU and the extension line L3 extending along the anti-squat angle θaS is set as the first instantaneous center of rotation A of the pitching motion when the regenerative braking forces Fkf and Fkr are applied. On the other hand, the friction braking forces Fmf and Fmr are forces output from the friction braking device 30 installed below the spring. Therefore, in this embodiment, the intersection of the extension line L4 extending along the anti-nose dive angle θaD and the extension line L5 extending along the anti-tail lift angle θaL is set as the second instantaneous rotation center B of the pitching motion when frictional braking forces Fmf and Fmr are applied.
[0029] (Calculation of load transfer) Next, we will explain the method for calculating the load transfer amount ΔW on the spring of vehicle 1 based on the first instantaneous rotation center A and the second instantaneous rotation center B. During regenerative braking of vehicle 1, the load transfer amount acting on the spring of vehicle 1 with the first instantaneous rotation center A as the pivot point is the load transfer amount ΔWA1 due to inertial force, the load transfer amount ΔWA2 due to reaction torque (see Figure 6), and the load transfer amount ΔWA3 due to anti-force. Furthermore, during frictional braking of vehicle 1, the load transfer amount acting on the spring of vehicle 1 with the second instantaneous rotation center B as the pivot point is the load transfer amount ΔWB1 due to inertial force and the load transfer amount ΔWB2 due to anti-force.
[0030] (Load transfer due to inertial force during regenerative braking) The load transfer amount ΔWA1 due to inertial force when regenerative braking forces Fkf and Fkr are applied to vehicle 1 is calculated according to the following equation (5). In equation (5), "M" is the weight of vehicle 1, and "Gx" is the longitudinal deceleration (longitudinal acceleration with deceleration side as positive) acting on vehicle 1. Also, "L" is the wheelbase, which is the distance between the front wheels 2f and the rear wheels 2r, "hg" is the height of the center of gravity G, and "ha" is the height of the first instantaneous center of rotation A.
[0031] ΔWA1 = MGx(hg-ha) / L …(5)
[0032] (Load transfer due to reaction torque during regenerative braking) Figure 6 is a schematic diagram illustrating the load transfer amount ΔWA2 due to reaction torque. When regenerative braking forces Fkf and Fkr are applied to vehicle 1, a reaction torque Fc is generated that attempts to rotate the differential case 5 of the differential gear mounted on the vehicle frame 1a on the springs in the opposite direction, without going through the suspension 18. Vehicle 1 is configured such that this reaction torque Fc is transmitted from the differential case 5 to the vehicle frame 1a as a braking torque, without going through the suspension 18. As a result, a load transfer amount ΔWA2 is generated on the springs of vehicle 1, caused by the reaction torque Fc, in a direction in which the front side is lifted and the rear side is pushed down. The load transfer amount ΔWA2 is calculated according to the following equation (6). In equation (6), "Rt" is the radius of the front wheel 2f and the rear wheel 2r.
[0033] ΔWA2 = MGx·Rt / L…(6)
[0034] (Anti-force during regenerative braking) During regenerative braking of vehicle 1, an anti-force is generated corresponding to the regenerative braking forces Fkf and Fkr, as shown in Figure 5. The anti-force generated during regenerative braking is a force in the opposite direction to the anti-nose-up force FaU (Figure 3) at the front and a force in the opposite direction to the anti-squat force FaS (Figure 3) at the rear. Therefore, in the following explanation of regenerative braking, the anti-nose-up angle θaU will be referred to as the "regenerative front anti-angle θkfa," and the anti-force generated by the regenerative braking force Fkf will be referred to as the "regenerative front anti-force Fkfa." Similarly, the anti-squat angle θaS will be referred to as the "regenerative rear anti-angle θkra," and the anti-force generated by the regenerative braking force Fkr will be referred to as the "regenerative rear anti-force Fkra." The regenerative front anti-force Fkfa and the regenerative rear anti-force Fkra are calculated using the following equations (7) and (8). The sum of the regenerative front antiforce Fkfa and the regenerative rear antiforce Fkra equals the load transfer amount ΔWA3.
[0035] Fkfa = Fkf·tan(θkfa) …(7) Fkra = Fkr·tan(θkra) …(8)
[0036] (Load transfer due to inertial force caused by frictional braking) The load transfer amount ΔWB1 due to the inertial force generated when frictional braking forces Fmf and Fmr are applied to vehicle 1 can be calculated according to the following equation (9). In equation (9), "hb" is the height of the second instantaneous center of rotation B.
[0037] ΔWB1 = MGx(hg-hb) / L …(9)
[0038] (Anti-force due to frictional braking force) Furthermore, as shown in Figure 5, when vehicle 1 is braked by friction, an anti-force is generated corresponding to the friction braking forces Fmf and Fmr. The anti-force generated during friction braking is the anti-nose dive force FaD and the anti-tail lift force FaL (Figure 4). In the following explanation of friction braking, the anti-nose dive angle θaD will be referred to as the "friction front anti-angle θmfa," and the anti-force generated by the friction braking force Fmf will be referred to as the "friction front anti-force Fmfa." Similarly, the anti-tail lift angle θaL will be referred to as the "friction rear anti-angle θmra," and the anti-force generated by the friction braking force Fmr will be referred to as the "friction rear anti-force Fmra." The friction front anti-force Fmfa and the friction rear anti-force Fmra are calculated by the following equations (10) and (11). The sum of these friction front anti-force Fmfa and friction rear anti-force Fmra is the load transfer amount ΔWB2.
[0039] Fmfa = Fmf·tan(θmfa) …(10) Fmra = Fmr·tan(θmra) …(11)
[0040] (Total amount of load transfer on the spring) The first load transfer, which is the sum of the above load transfer amounts ΔWA1, ΔWA2, and ΔWA3, and the second load transfer, which is the sum of the load transfer amounts ΔWB1 and ΔWB2, are added together while considering the regeneration ratio k and the friction ratio m, and the load transfer amount ΔW on the spring is calculated as shown in equation (12). In equation (12), "MGx", which is the longitudinal force acting on vehicle 1, can be calculated as the sum of the regenerative braking forces Fkf and Fkr and the friction braking forces Fmf and Fmr. Also, in equation (12), if the absolute value of the pitch angle θp is sufficiently small, the anti-angle θa may be used as an approximate value for "tan(θ)".
[0041] ΔW=kΔWA1+kΔWA2+ΔWA3+mΔWB1+ΔWB2=kMGx(hg-ha) / L+kMGx·Rt / L-Fkf·tan(θkfa)-Fkr·tan(θkra)+mMGx(hg-hb) / L-Fmf·tan(θmfa)-Fmr·tan(θmra) …(12)
[0042] (Calculation of pitch angle) The pitch angle θp is calculated by the following equation (13). In equation (13), "Kpf" is the spring constant of the front suspension 18f, and "Kpr" is the spring constant of the rear suspension 18r. Since "Kpf", "Kpr", and "L" in equation (13) are constants determined by the vehicle specifications, the pitch angle θp will change according to the load transfer amount ΔW calculated by equation (12).
[0043] θp=ΔW / (2(Kpf+Kpr)·L) …(13)
[0044] (Example of calculation result for pitch angle θp) Next, we will explain an example of the calculation result of the pitch angle θp calculated by the above equations (12) and (13). Table 1 shows an example of the anti-angle θa of vehicle 1. In vehicle 1 of this embodiment, the regenerative rear anti-angle θkra is greater than the regenerative front anti-angle θkfa, and the friction rear anti-angle θmra is greater than the friction front anti-angle θmfa. Also, the friction front anti-angle θmfa is greater than the regenerative front anti-angle θkfa, and the friction rear anti-angle θmra is greater than the regenerative rear anti-angle θkra. Furthermore, the friction rear anti-angle θmra is the largest among all anti-angles θa, and the friction rear anti-angle θmra is set to have a large difference from the remaining anti-angles θa compared to the differences between the remaining anti-angles θa. In other words, in vehicle 1, the friction rear anti-force Fmra acts most strongly.
[0045] [Table 1]
[0046] Figure 7 is an explanatory diagram plotting an example of the pitch angle θp when the regenerative braking ratio k, friction ratio m, front ratio f, and rear ratio r are changed. The pitch angle θp values shown in the shaded area of Figure 7 were calculated based on equations (12) and (13) using the vehicle specifications shown in Table 1, assuming that the deceleration and required braking force Fb (=Fkf+Fkr+Fmf+Fmr) are constant. In Figure 7, it is assumed that the height hg of the center of gravity G, the height ha of the first instantaneous rotation center A, and the height hg of the second instantaneous rotation center B do not change when vehicle 1 is braking. In this case, the variables in equation (12) are only the regenerative braking forces Fkf, Fkr and the friction braking forces Fmf, Fmr, and the pitch angle θp can be treated as a value that changes according to the regenerative braking forces Fkf, Fkr and the friction braking forces Fmf, Fmr. Furthermore, if the heights hg, ha, and hb vary depending on the posture of vehicle 1, these values can be obtained using a sensor (not shown) that detects the vehicle's position.
[0047] As shown in the figure, in vehicle 1, the pitch angle θp increases as the regeneration ratio k increases, and the pitch angle θp decreases as the friction ratio m increases. This is because the friction front anti-angle θmfa is larger than the regenerative front anti-angle θkfa, and the friction rear anti-angle θmra is larger than the regenerative rear anti-angle θkra. In other words, increasing the friction ratio m tends to increase the friction side anti-force (Fmfa, Fmra) relatively, and the pitch angle θp tends to decrease. On the other hand, increasing the regeneration ratio k does not tend to increase the regenerative side anti-force (Fkfa, Fkra) relatively, and the pitch angle θp does not tend to decrease.
[0048] Furthermore, in vehicle 1, the larger the front ratio f, the larger the pitch angle θp, and the larger the rear ratio r, the smaller the pitch angle θp. This is because the regenerative rear anti-force angle θkra is larger than the regenerative front anti-force angle θkfa, and the friction rear anti-force angle θmra is larger than the friction front anti-force angle θmfa. In other words, increasing the rear ratio r tends to increase the rear anti-force (Fkra, Fmra) relatively, and the pitch angle θp tends to decrease. On the other hand, increasing the front ratio f does not tend to increase the front anti-force (Fkfa, Fmfa) relatively, and the pitch angle θp does not tend to decrease.
[0049] Figure 8 is an explanatory diagram showing an example of the time change of the pitch angle θp when regenerative cooperative control is performed. The pitch angle θp shown in Figure 8 is the result of analysis when the behavior of regenerative braking forces Fkf, Fkr and friction braking forces Fmf, Fmr in vehicle 1 is as shown in Figure 2, and the front ratio f and rear ratio r are changed between values from 0 to 1. As shown in the figure, although the pitch angle θp changes in accordance with the change in the required braking force Fb shown in Figure 2, the tendency for the pitch angle θp to increase as the front ratio f increases and the pitch angle θp to decrease as the rear ratio r increases remains unchanged. Also, as shown in the change of the pitch angle θp between time t2 and time t3, for example, it can be seen that when the substitution control is started and the friction ratio m increases, the pitch angle θp tends to decrease.
[0050] As described above, in vehicle 1, the pitch angle θp increases as either the front ratio f or the regeneration ratio k increases, and the pitch angle θp decreases as either the rear ratio r or the friction ratio m increases. Furthermore, the trend of change in the pitch angle θp in vehicle 1 remains the same even when the required braking force Fb changes, as shown in Figure 8. In other words, vehicle 1 has vehicle specifications such that, regardless of the magnitude of the required braking force Fb, the contribution of the load transfer amounts ΔWA3 and ΔWB2 of the anti-force to the trend of change in the pitch angle θp is greater than the contribution of the other load transfer amounts ΔWA1, ΔWA2, and ΔWB1 to the trend of change in the pitch angle θp.
[0051] (Changes in the center of gravity during braking) Next, we will explain the change in the position of the center of gravity G due to the change in the vehicle's attitude during braking. Figure 9 is an explanatory diagram showing an example of the pitching motion of the vehicle body when frictional braking forces Fmf and Fmr are applied only to the front wheels 2f of the vehicle 1 of the embodiment. Figure 10 is an explanatory diagram showing an example of the pitching motion of the vehicle body when frictional braking forces Fmf and Fmr are applied only to the rear wheels 2r of the vehicle 1 of the embodiment. In the example shown in Figure 9, a frictional front-side antiforce Fmfa acts on the vehicle 1. However, as mentioned above, since the frictional front-side antiforce Fmfa is relatively small, the vehicle 1 is prone to a nose-dive attitude change in which the front sinks downward and the rear lifts upward. In this case, the position of the center of gravity G in the vertical direction tends to remain almost unchanged. On the other hand, in the example shown in Figure 10, the center of gravity G of the vehicle 1 moves downward from the position before braking shown by the dashed line, and the pitch angle θp is closer to 0 degrees than in the example shown in Figure 9. This is because the frictional rear antiforce Fmra is greater than the frictional front antiforce Fmfa, causing the rear of the vehicle to sink lower than in the example shown in Figure 9.
[0052] (Contact surface load movement) When the pitching motion described above occurs, the amount of load transfer on the contact surfaces of the front wheels 2f and rear wheels 2r, known as the contact surface load transfer ΔWG, is calculated using the following equation (14). The contact surface load transfer ΔWG calculated using equation (14) corresponds to the total load transfer of the vehicle 1, which is calculated by adding the unsprung load transfer to the load transfer on the sprung mass ΔW calculated using equation (12). In the example shown in Figure 10, the position of the center of gravity G moves downward compared to the example shown in Figure 9, so the height hg of the center of gravity G in equation (14) (see Figure 5) becomes smaller. Therefore, the contact surface load transfer ΔWG2 in the example shown in Figure 10 is smaller than the contact surface load transfer ΔWG1 in the example shown in Figure 9. Thus, when the height of the center of gravity G changes, the value of the contact surface load transfer ΔWG changes.
[0053] ΔWG = MGx·hg / L …(14)
[0054] (Regenerative braking coordination during turning) Next, we will explain the regenerative cooperative control of vehicle 1 during cornering braking, utilizing the changes in the position of the center of gravity G and the change in the amount of load transfer on the contact surface ΔWG. In regenerative cooperative control of vehicle 1 during cornering braking, the control device 16 performs either the first distribution adjustment or the second distribution adjustment of braking force shown in Table 2, depending on the driving mode, in order to improve the vehicle 1's dynamic performance and ride comfort. In either the first or second distribution adjustment, the control device 16 controls the vehicle so that the required braking force Fb is at least equal to the sum of the individual braking forces (Fkf + Fkr + Fmf + Fmr).
[0055] [Table 2]
[0056] First, as shown in Table 2, the vehicle 1 is configured to allow selection of driving modes, including a sport mode and a comfort mode. In this embodiment, the sport mode is a driving mode that prioritizes improved driving performance over the ride comfort of the vehicle 1, and the comfort mode is a driving mode that prioritizes ride comfort over the driving performance of the vehicle 1. The driving mode can be changed by the driver operating a selector switch located in the driver's seat (not shown). The control device 16 then performs either the first distribution adjustment or the second distribution adjustment when the driving mode is set to sport mode, according to an index value representing the degree of turning of the vehicle 1, and performs the second distribution adjustment when the driving mode is set to comfort mode.
[0057] The index values representing the degree of turning of vehicle 1 include, for example, steering angle, lateral acceleration, yaw rate, and slip angle of the rear wheel 2r. The control device 16 calculates the steering angle based on the steering input amount (not shown) of vehicle 1. The control device 16 also acquires the lateral acceleration detected by an acceleration sensor (not shown) and the yaw rate detected by a yaw rate sensor (not shown). Furthermore, the control device 16 calculates the slip angle of the rear wheel 2r based on the vehicle speed detected by a vehicle speed sensor (not shown), the acceleration at the center of gravity G of vehicle 1, the steering angle, and vehicle specifications.
[0058] (First distribution adjustment in Sport mode) First, we will explain the case where the driving mode is set to sport mode and the first distribution adjustment is performed, referring to Figure 11. Figure 11 is a schematic diagram illustrating how the braking force is adjusted by the first distribution adjustment during cornering braking of vehicle 1. In the figure, the dashed arrows indicate the magnitudes of the regenerative braking force Fkf, Fkr and friction braking force Fmf, Fmr before the first distribution adjustment is performed, and the solid arrows indicate the magnitudes of the regenerative braking force Fkf, Fkr and friction braking force Fmf, Fmr after the first distribution adjustment is performed.
[0059] In this case, the control device 16 sets the above index value to at least one of the steering angle and lateral acceleration. The control device 16 then performs a first distribution adjustment in which, as the larger at least one of the steering angle and lateral acceleration, the regenerative braking force Fkf of the front wheels 2f is reduced while the regenerative braking force Fkr of the rear wheels 2r is increased, and the friction braking force Fmf of the front wheels 2f is increased while the friction braking force Fmr of the rear wheels 2r is decreased.
[0060] As a result, the frictional braking force Fmr on the rear side decreases, which in turn decreases the frictional rear anti-force Fmra. Also, even if the regenerative braking force Fkr on the rear side increases, the regenerative rear anti-force Fkra does not tend to increase as much as the frictional rear anti-force Fmra. Consequently, the rear of vehicle 1 tends to sink relatively less (and lift more easily). On the other hand, on the front side, compared to the rear side, even if the frictional braking force Fmf increases, the frictional front anti-force Fmfa does not tend to increase as much. Therefore, when the first distribution adjustment is performed, vehicle 1 is more likely to experience nose-dive changes without a large change in the height of the center of gravity G as shown in Figure 9.
[0061] As a result, the contact surface load transfer amount ΔWG (ΔWG1) increases, and the load applied to the contact surface of the front wheel 2f increases. Therefore, as shown in Figure 11, the friction circle Cf of the front wheel 2f becomes larger than before the first distribution adjustment. The friction circle schematically represents the grip limit of the wheel. In the figure, the friction circle before distribution adjustment is shown as a dashed circle, and the friction circle after distribution adjustment is shown as a solid circle, with the lower part of the figure representing the deceleration region. In this way, by increasing the friction circle Cf of the front wheel 2f, the grip limit of the front wheel 2f as a steering wheel increases, improving the dynamic performance of the vehicle 1 during cornering and braking.
[0062] (Second distribution adjustment in Sport mode) Next, we will explain the case where the driving mode is set to sport mode and the second distribution adjustment is performed, referring to Figure 12. Figure 12 is a schematic diagram illustrating how the braking force is adjusted by the second distribution adjustment when vehicle 1 is braking while turning. The definitions of each arrow and circle in the figure are the same as in Figure 11. The control device 16 sets the above index value to at least one of the yaw rate and the slip angle of the rear wheel 2r. The control device 16 then performs the second distribution adjustment, which increases the regenerative braking force Fkf while decreasing the regenerative braking force Fkr, and decreases the friction braking force Fmf while increasing the friction braking force Fmr, as the larger at least one of the yaw rate and the slip angle of the rear wheel 2r is.
[0063] As a result, the frictional braking force Fmr on the rear side increases, which in turn increases the frictional rear anti-force Fmra. Furthermore, the regenerative rear anti-force Fkra does not decrease as easily as the frictional rear anti-force Fmra, even when the regenerative braking force Fkr decreases. Moreover, since the regenerative rear anti-force Fkra is inherently smaller than the frictional rear anti-force Fmra, any change in it has little effect. Consequently, the rear of vehicle 1 tends to sink more easily. Therefore, when the second distribution adjustment is performed, vehicle 1 is prone to a change in attitude where the height of the center of gravity G shifts downward, as shown in Figure 10 above, and the pitch angle θp approaches 0 degrees.
[0064] As a result, the contact surface load transfer amount ΔWG(ΔWG2) decreases, and the load applied to the contact surface of the rear wheel 2r increases. Therefore, as shown in Figure 12, the friction circle Cr of the rear wheel 2r becomes larger than before the second distribution adjustment. In this way, by increasing the friction circle Cr of the rear wheel 2r, the grip limit of the rear wheel 2r is increased, slippage of the rear wheel 2r is suppressed, and spinning of the vehicle 1 is suppressed.
[0065] (Selection between first and second power distribution adjustments in Sport mode) In sport mode, the choice between performing the first and second distribution adjustments can be made by selecting which of the friction circles Cf and Cr to increase depending on the vehicle's motion characteristics, or by selecting based on other conditions. For example, during a predetermined time from the start of a turn, the first distribution adjustment may be performed according to the steering angle and lateral acceleration among the above indicator values, and after a predetermined time has elapsed from the start of the turn, the second distribution adjustment may be performed according to the yaw rate and the slip angle of the rear wheels 2r. This increases the grip limit of the front wheels 2f in the initial stages of the turn, enabling smoother turning, while increasing the grip limit of the rear wheels 2r in the mid-to-late stages of the turn, when the vehicle 1 is prone to spinning, thereby suppressing spin. Alternatively, for example, predetermined thresholds may be set for each indicator value, and the first distribution adjustment may be performed when the steering angle and lateral acceleration exceed the predetermined thresholds, and the second distribution adjustment may be performed when the yaw rate and the slip angle of the rear wheels 2r exceed the predetermined thresholds. In that case, the system may switch to the second distribution adjustment if the yaw rate and the slip angle of the rear wheels 2r exceed the predetermined thresholds while the first distribution adjustment is being performed.
[0066] (Second allocation adjustment in Comfort Mode) Furthermore, when the driving mode is Comfort Mode, the control device 16 sets the above index value to at least one of the steering angle and lateral acceleration. The control device 16 then performs a second distribution adjustment, which increases the regenerative braking force Fkf while decreasing the regenerative braking force Fkr, and decreases the friction braking force Fmf while increasing the friction braking force Fmr, as the larger at least one of the steering angle and lateral acceleration becomes. In this way, by performing the second distribution adjustment in Comfort Mode, the vehicle 1 is prone to a change in posture in which the height of the center of gravity G moves downward, as shown in Figure 10, and the pitch angle θp becomes relatively close to 0 degrees. Therefore, the larger the steering angle or lateral acceleration, and the more the driver is likely to feel a change in ride comfort, the more the nose dive tendency of the vehicle 1 is suppressed, and the driver's ride comfort is improved.
[0067] As described above, the control device 16 (braking control device) of the embodiment performs either the first distribution adjustment or the second distribution adjustment during the execution of regenerative cooperative control. With this configuration, when the first distribution adjustment is performed, the larger the index value representing the degree of turning, the higher the grip limit of the front wheels 2f, making it possible to improve the driving performance of the vehicle 1. When the second distribution adjustment is performed, the larger the index value representing the degree of turning, the higher the grip limit of the rear wheels 2r, making it possible to suppress spinning of the vehicle 1 and improve its driving performance. Furthermore, by making the rear side of the vehicle 1 more prone to sinking, it becomes possible to adjust the pitch angle θp of the vehicle 1 to approach 0 degrees. Therefore, according to the control device 16 of the embodiment, it is possible to appropriately adjust the driving performance and ride comfort during cornering braking of the vehicle 1 performing regenerative cooperative control.
[0068] In addition, in both the first and second distribution adjustments, if the regenerative braking force Fkf, Fkr or friction braking force Fmf, Fmr of either the front wheel 2f or the rear wheel 2r is increased, the regenerative braking force Fkf, Fkr or friction braking force Fmf, Fmr of the other wheel is adjusted to decrease. This reduces the impact on the front ratio f, rear ratio r, regenerative ratio k, and friction ratio m. As a result, it becomes easier to control the attitude of the vehicle 1 according to the front ratio f, rear ratio r, regenerative ratio k, and friction ratio m, and the decrease in regenerative power generation can be suppressed. It is preferable that in both the first and second distribution adjustments, each braking force is adjusted so that the front ratio f, rear ratio r, regenerative ratio k, and friction ratio m are maintained.
[0069] Furthermore, if the driving mode of vehicle 1 is sport mode, which prioritizes improved handling performance over ride comfort, the first distribution adjustment is performed using at least one of the steering angle and lateral angular velocity as the indicator value. This configuration allows for distribution adjustment according to the degree of turning of vehicle 1 in sport mode, while increasing the grip limit of the front wheels 2f and improving handling performance during cornering braking. Additionally, by using steering angle or lateral acceleration as the indicator value, distribution adjustment according to the degree of turning of the vehicle can be achieved.
[0070] Furthermore, if the driving mode of vehicle 1 is Sport mode, which prioritizes improved handling performance over ride comfort, the second distribution adjustment is performed using at least one of the yaw rate and the slip angle of the rear wheel 2r as the indicator value. This configuration allows for distribution adjustment according to the degree of spin of vehicle 1, while also increasing the grip limit of the rear wheel 2r in Sport mode to suppress spin of vehicle 1. Additionally, by using the yaw rate or the slip angle of the rear wheel as the indicator value, distribution adjustment according to the degree of spin of the vehicle can be achieved.
[0071] Furthermore, if the driving mode of vehicle 1 is comfort mode, which prioritizes ride comfort over improved handling performance, the second distribution adjustment is performed using at least one of the steering angle and lateral angular velocity as the index value. This configuration makes it possible to adjust the distribution according to the degree of turning of vehicle 1, while bringing the pitch angle of vehicle 1 closer to 0 degrees and suppressing changes in posture during turns, which are likely to cause changes in ride comfort. In addition, by using the steering angle or lateral acceleration as the index value, it is possible to adjust the distribution according to the degree of turning of the vehicle.
[0072] This concludes the description of the embodiments, but the embodiments of the present invention are not limited to these embodiments. For example, in this embodiment, the index value representing the degree of turning of the vehicle 1 is one of the steering angle, lateral acceleration, yaw rate, and slip angle of the rear wheel 2r, but the index value may include other values, such as the slip angle of the front wheel 2f. Furthermore, the control device 16 may perform the first distribution adjustment and the second distribution adjustment using at least one of the above index values, regardless of whether the driving mode of the vehicle 1 is sport mode or comfort mode. [Explanation of symbols]
[0073] 1 vehicle 2nd Front Wheel 2r rear wheel 10f Front Motor 10r Rear Motor 16 Control device (braking control device) 18 Suspension 18f Front Suspension 18r Rear Suspension 20 Regenerative braking device 30 Friction braking device A: Center of rotation at the first moment B. Center of rotation at the second instant. Cf, Cr Friction Circle f Front ratio Fb Required braking force Fc reaction torque Fdf, Fdr driving force Fi inertia force Fkf, Fkr regenerative braking force FKFA regenerative front-side antiforce Fkra Regenerative Rear Antiforce Fmf, Fmr Friction braking force Fmfa Friction Front Side Antiforce Fmra Friction Rear Antiforce G center of gravity k Regeneration ratio L1 straight line L2, L3, L4, L5 extension line m friction ratio r Rear ratio ΔW, ΔWA1, ΔWA2, ΔWA3, ΔWB1, ΔWB2 Load transfer amount ΔWG, ΔWG1, ΔWG2 Ground surface load movement amount θa Anti-angle θkfa Regenerative front anti-angle (anti-nose-up angle) θkra regenerative rear anti-squat angle (anti-squat angle) θmfa Friction front anti-angle (anti-nose dive angle) θmra Friction rear anti-angle (anti-tail lift angle) θp pitch angle
Claims
1. A braking control device that performs regenerative coordinated control, using a regenerative braking device that applies regenerative braking force to the front and rear wheels of a vehicle and a friction braking device that applies friction braking force to the front and rear wheels, outputs the required braking force required for braking the vehicle by coordinating the regenerative braking force and the friction braking force, During the execution of the aforementioned regenerative cooperative control, The larger the index value representing the degree of turning of the vehicle, the larger the regenerative braking force applied to the front wheels and the larger the regenerative braking force applied to the rear wheels, and the larger the frictional braking force applied to the front wheels and the smaller the frictional braking force applied to the rear wheels, in the first distribution adjustment, The larger the aforementioned index value, the greater the regenerative braking force applied to the front wheels while decreasing the regenerative braking force applied to the rear wheels, and the greater the frictional braking force applied to the rear wheels while decreasing the frictional braking force applied to the front wheels. A braking control device that performs one of the following actions.
2. The braking control device according to claim 1, which performs the first distribution adjustment when the driving mode of the vehicle is a sport mode that prioritizes improved driving performance over ride comfort.
3. The braking control device according to claim 1, which performs the second distribution adjustment when the driving mode of the vehicle is a comfort mode that prioritizes ride comfort over improved driving performance.
4. The braking control device according to claim 2 or 3, wherein the index value is at least one of the steering angle and lateral angular velocity of the vehicle.
5. The braking control device according to claim 1, which performs the second distribution adjustment when the driving mode of the vehicle is a sport mode that prioritizes improved driving performance over ride comfort.
6. The braking control device according to claim 5, wherein the index value is at least one of the yaw rate of the vehicle and the slip angle of the rear wheel.
Citation Information
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