Vehicle deceleration support control device
The deceleration support control device addresses the challenge of controlling vehicle speed by initiating deceleration earlier and switching modes automatically, enhancing safety and ease of operation by adjusting to different deceleration targets and conditions.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2023-08-07
- Publication Date
- 2026-04-15
AI Technical Summary
Conventional deceleration support devices require the driver to control vehicle speed by adjusting the accelerator pedal, making it difficult to achieve the desired speed, especially when decelerating for various targets and road conditions, such as uphill slopes or intersections, while also steering.
A deceleration support control device that includes an accelerator opening sensor, deceleration target detection, and a control unit to initiate deceleration control earlier, switching between accelerator and non-accelerator modes based on target type and conditions, automatically adjusting vehicle speed to a desired target.
Enhances the effectiveness of deceleration support by allowing easier control of vehicle speed to the required speed without manual accelerator adjustments, improving safety and ease of operation.
Smart Images

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Abstract
Description
Technical Field
[0001] The present invention relates to a deceleration support control device for vehicles such as automobiles.
Background Art
[0002] As one of the driving support controls for vehicles such as automobiles, when detecting a deceleration target in front of the vehicle, that is, a target that needs to be approached by reducing the vehicle speed by deceleration, such as an intersection without a traffic signal, deceleration support control for automatically decelerating the vehicle is known.
[0003] For example, Patent Document 1 below describes a deceleration support device configured to perform deceleration support when a deceleration target is detected, the deceleration support start condition is satisfied, and the accelerator is not on, that is, when the accelerator pedal is not depressed.
Prior Art Documents
Patent Documents
[0004]
Patent Document 1
Summary of the Invention
[0005] 〔Problems to be Solved by the Invention〕 As a deceleration support device, it is known that even when the accelerator is on, that is, when the accelerator pedal is depressed and the return operation of the accelerator pedal is started and the reduction of the accelerator opening is started, deceleration support is performed according to the accelerator opening. According to this type of deceleration support device, deceleration control can be started early to improve the effect of deceleration support.
[0006] However, when deceleration support is performed according to the accelerator opening when the accelerator is on, the driver has to control the vehicle speed by controlling the amount of depression of the accelerator pedal. Therefore, depending on the type of deceleration target and the driving situation of the vehicle, it is not easy to control the vehicle speed to the required vehicle speed.
[0007] For example, if the vehicle is slowed down by something that requires it to stop, such as a red light, the vehicle speed must be controlled so that it reaches zero when it reaches the target. Also, if the road is uphill, the vehicle's deceleration may be higher than the driver's desired deceleration due to the deceleration caused by the road's slope in addition to the deceleration provided by the deceleration assist. Furthermore, if the driver is steering while reducing the accelerator opening, the driver must control the vehicle's speed by controlling the accelerator opening while simultaneously controlling the direction of travel through steering.
[0008] The present invention provides an improved deceleration support control device that enhances the effectiveness of deceleration support by initiating deceleration control earlier, and that can more easily control the vehicle speed to the required speed compared to conventional devices, regardless of the type of vehicle being decelerated.
[0009] [Means for solving the problem and the effects of the invention] According to the present invention, the vehicle includes an accelerator opening detection device (accelerator opening sensor 64) for detecting the accelerator opening (Acc), a deceleration target detection device (56) for detecting a deceleration target (such as a T-junction 80) in front of the vehicle (16), a deceleration device (30) for decelerating the vehicle, and a control unit (driving support ECU 50) for controlling the deceleration device. The control unit controls the deceleration device when a deceleration target is detected (S10) in a situation where the accelerator opening exceeds a reference value (Accc) (S40). The greater the decrease in accelerator opening, the higher the vehicle's deceleration. A vehicle deceleration support control device (10) is provided, configured to perform deceleration support control in an accelerator opening mode that decelerates the vehicle according to the accelerator opening (S80).
[0010] The control unit (driving support ECU 50) calculates a target deceleration (Gbt) to bring the vehicle's speed (V) when the vehicle reaches the position of the deceleration target to a target vehicle speed (Vt) determined by the type of deceleration target, sets a mode change timing (tc) according to the type of deceleration target, and when it determines that it is time to change modes (S70), it changes modes (S90) from the accelerator opening mode to the non-accelerator opening mode, which decelerates the vehicle based on the target deceleration (S100).
[0011] According to the above configuration, a target deceleration is calculated to bring the vehicle's speed to a target speed determined by the type of deceleration target when the vehicle reaches the position of the deceleration target, and the timing of the mode change is set according to the type of deceleration target. Furthermore, when it is determined that it is time to change modes, the deceleration support control switches from the accelerator opening mode to the non-accelerator opening mode, which decelerates the vehicle based on the target deceleration. Mode changed It will be done.
[0012] Therefore, the vehicle's deceleration is first controlled according to the accelerator opening in accelerator opening mode, and when it is determined that it is time to change modes, The deceleration support control mode has been changed. In non-accelerator-opening mode, it is automatically controlled based on the target deceleration. Therefore, the mode From accelerator opening mode to non-accelerator opening mode With this modification, the driver can control the vehicle speed to the desired speed without having to control the amount the accelerator pedal is pressed. Therefore, by initiating deceleration control earlier, the effectiveness of deceleration assistance is improved, and the vehicle speed can be controlled to the desired speed more easily than before.
[0013] Furthermore, according to the above configuration, a target deceleration is calculated to bring the vehicle speed to a target speed determined by the type of deceleration target, and the timing of the mode change is set according to the type of deceleration target. Therefore, the vehicle speed can be easily controlled to the required speed regardless of the type of deceleration target, and the mode can be changed at a timing appropriate to the type of deceleration target.
[0014] [Aspects of the Invention] In one embodiment of the present invention, the control unit (driving support ECU 50) is configured to determine when it has determined that the object to be decelerated is an object that requires the vehicle (16) to be stopped (S22), and when it has determined that a predetermined time has elapsed since the object to be decelerated was first detected, it determines that it is time to change modes (S70).
[0015] According to the above embodiment, when it is determined that the object to be decelerated is an object that requires the vehicle to be stopped, the accelerator opening mode is switched to the non-accelerator opening mode after a predetermined time has elapsed since the object to be decelerated was first detected. Deceleration support control The mode can be changed.
[0016] In another embodiment of the present invention, the control unit (driving support ECU 50) is configured to variably set a predetermined time according to at least one of the type of deceleration target and the driving conditions of the vehicle (S22, S24, S30).
[0017] According to the above embodiment, the timing of the mode change from accelerator opening mode to non-accelerator opening mode can be variably set according to at least one of the type of vehicle to be decelerated and the vehicle's driving conditions.
[0018] Furthermore, in another embodiment of the present invention, the control unit (driving support ECU 50) is configured to change the mode earlier (S36) when it determines that steering operation is being performed (S30) compared to when it does not determine that steering operation is being performed.
[0019] According to the above embodiment, when steering is being performed, the timing of the mode change can be made earlier compared to when no steering is being performed, and the timing at which the vehicle begins to decelerate based on the target deceleration can be made earlier. Therefore, the driver can concentrate on steering operations earlier without controlling the accelerator opening compared to when the timing of the mode change is not made earlier.
[0020] Further, in another aspect of the present invention, when it is determined that there are a plurality of deceleration targets (S32), the control unit (driving support ECU 50) is configured to accelerate the timing of mode change (S36) compared to the case where it is determined that there is one deceleration target.
[0021] According to the above aspect, when there are a plurality of deceleration targets, the timing of mode change can be accelerated compared to the case where there is one deceleration target, and the timing at which the vehicle starts to decelerate based on the target deceleration can be accelerated. Therefore, the driver can be made not to control the accelerator opening earlier than when the timing of mode change is not accelerated.
[0022] Other objects, other features, and attendant advantages of the present invention will be readily understood from the description of the embodiments of the present invention described while referring to the following drawings.
Brief Description of the Drawings
[0023] [Figure 1] It is a schematic configuration diagram showing a deceleration support device according to an embodiment. [Figure 2] It is a flowchart showing a deceleration support control routine of an embodiment. [Figure 3] It is a flowchart showing a subroutine for determining the ratio Rec in the first embodiment. [Figure 4] It is a flowchart showing a subroutine for determining the ratio Rec in the second embodiment. [Figure 5] It is a diagram showing an example of changes in the vehicle speed V when a deceleration target is detected in front of the vehicle in the case of the accelerator being on. [Figure 6] It is a diagram showing a situation of approaching a T-junction as a deceleration target of the vehicle.
Modes for Carrying Out the Invention
[0025] The vehicle deceleration support control device 10 according to the embodiment shown in Figure 1 is applied to a vehicle 16 having wheels 14FL, 14FR, 14RL, and 14RR. The vehicle 16 may be a vehicle capable of autonomous driving. In this embodiment, the left and right front wheels 14FL and 14FR are steering wheels and drive wheels, and the left and right rear wheels 14RL and 14RR are non-steering wheels and driven wheels. The front wheels 14FL and 14FR are steered via a rack bar 22 and tie rods 24L and 24R by an electric power steering device 20 driven in response to the driver's operation of the steering wheel 18. In the following description, the electronic control device will be referred to as ECU (an abbreviation for Electronic Control Unit).
[0026] The deceleration support control device 10 includes a deceleration device 30 for decelerating the vehicle 16, and a driver assistance ECU 50 as a control unit for controlling the deceleration device. The deceleration device 30 includes a braking device 32 that applies frictional braking force to the wheels 14FL to 14RR, and a braking ECU 34 that controls the braking device. The braking device 32 includes a hydraulic circuit 36, frictional braking force generating devices 38FR, 38FL, 38RR, and 38RL provided on the wheels 14FL to 14RR, and a master cylinder 42 that pumps brake fluid in response to the driver's operation of pressing the brake pedal 40. Although not shown in detail in Figure 1, the hydraulic circuit 36 includes a reservoir, oil pump, various valve devices, etc., and functions as a brake actuator.
[0027] The braking system 32 applies a braking force to the wheels 14FL to 14RR that is proportional to the pressure in the corresponding wheel cylinders of the friction braking force generating devices 38FR to 38RL. The pressure in the wheel cylinders is normally controlled according to the pressure in the master cylinder 42 (master cylinder pressure Pm), which is driven in response to the driver's depression of the brake pedal 40. That is, the master cylinder pressure Pm is detected by the pressure sensor 44, and the braking ECU 34 controls the pressure in each wheel cylinder based on the master cylinder pressure Pm. Furthermore, the pressure in each wheel cylinder is controlled by the braking ECU 34 as needed by controlling the oil pump and various valve devices, so that automatic braking is performed regardless of the amount the driver depresses the brake pedal 40.
[0028] The vehicle 16 has a drive unit 60, such as an engine, that provides driving force to the left and right front wheels 14FL and 14FR, which are the drive wheels. The amount the driver presses the accelerator pedal 62 is detected as the accelerator opening Acc by the accelerator opening sensor 64. The output of the drive unit 60 is normally controlled by the drive ECU 66 based on the accelerator opening Acc, and is controlled independently of the accelerator opening Acc as needed. The drive unit 60 may be any device that can provide driving force to the drive wheels, such as an electric motor or a hybrid system. The drive wheels may be the left and right rear wheels 14RL and 14RR, or even all four wheels 14FL to 14RR.
[0029] Furthermore, as shown by the dashed line in Figure 1, the drive unit 60 may include a regenerative device 66 that generates regenerative braking force by converting the rotational energy of the drive wheels into electrical energy. The regenerative device 66 is controlled by the drive ECU 66 based on control commands from the braking ECU 34. When generating regenerative braking force, the regenerative device 66 functions as part of the reduction gear 30.
[0030] Each ECU is equipped with a microcomputer as its main component, which includes a CPU, ROM, RAM, read / write non-volatile memory (N / M), and an interface (I / F). The CPU implements various functions by executing instructions (programs, routines) stored in ROM. Furthermore, these ECUs are connected to each other via CAN (Controller Area Network) for data exchange (communication). Therefore, detection values from sensors (including switches) connected to a particular ECU are transmitted to other ECUs. Note that multiple ECUs may be integrated into a single ECU.
[0031] The driver assistance ECU 50 is a central control unit that performs driver assistance controls such as deceleration support control, follow distance control, and lane departure prevention control. In the embodiment, the driver assistance ECU 50 works in cooperation with other ECUs to perform deceleration support control by automatic braking, as will be described in detail later.
[0032] The driver assistance ECU 50 is connected to a camera sensor 52 and a radar sensor 54. The camera sensor 52 and radar sensor 54 may each include multiple camera devices and multiple radar devices. The camera sensor 52 and radar sensor 54 function as a deceleration target detection device 56 that detects deceleration targets at least in front of the vehicle 16. LiDAR (Light Detection And Ranging) may be used instead of or in addition to the radar sensor 14.
[0033] The objects that require deceleration may include red lights, stop signs and road markings, intersections without traffic signals (crossroads, T-junctions, and junctions where the road the vehicle is traveling on is not a priority road), stopped vehicles, curves, and preceding vehicles. In this application, red lights, stop signs and road markings, and intersections without traffic signals are referred to as stopping targets as needed. A stopping target is an object that requires a vehicle to stop.
[0034] Furthermore, the driver assistance ECU 50 is connected to a steering angle sensor 70, a vehicle speed sensor 72, and a deceleration support switch 74. The steering angle sensor 70 detects the steering angle θ as the amount of steering wheel 18 operated by the driver. The vehicle speed sensor 72 detects the vehicle speed V as the travel speed of the vehicle 16. The deceleration support switch 74 is operated by the driver, and when the deceleration support switch is ON, the driver assistance ECU 50 performs deceleration support control as described later. Although not shown in Figure 1, the driver assistance ECU 50 may be connected to a display device that shows the status of driver assistance control such as deceleration support control.
[0035] When the driver assistance ECU 50 detects a deceleration target in a situation where the accelerator opening Acc exceeds a reference value Acccc (0 or a positive constant), it controls the deceleration device 30 by The greater the decrease in accelerator opening, the higher the vehicle's deceleration. Deceleration support control is performed in accelerator opening mode, which decelerates the vehicle 16 according to the accelerator opening. In Figure 2, accelerator opening mode is labeled as ACC mode.
[0036] The driver assistance ECU 50 calculates a target deceleration Gbt to bring the vehicle's speed when the vehicle 16 reaches the position of the deceleration target to a target speed Vt determined by the type of deceleration target, and sets the timing for mode change according to the type of deceleration target. If the deceleration target is a preceding vehicle, the position of the deceleration target is the position of the preceding vehicle when it is first detected. Furthermore, when the driver assistance ECU 50 determines that it is time to change modes, it changes the mode of deceleration support control from the accelerator opening mode to the non-accelerator opening mode, which decelerates the vehicle based on the target deceleration. In Figure 2, the non-accelerator opening mode is labeled as the non-ACC mode.
[0037] The target vehicle speed Vt, which is determined by the type of deceleration target, is the speed Vf of the preceding vehicle when the deceleration target is the preceding vehicle. Furthermore, the target vehicle speed Vt is 0 when the deceleration target is a stopping object, i.e., a red light, a stop sign and road marking, or an intersection without traffic lights.
[0038] For example, if Vp is the vehicle speed of vehicle 16 when the deceleration target is detected, and Dr is the distance between vehicle 16 and the deceleration target, the target deceleration Gbt is calculated according to the following equation (1). The distance Dr between vehicle 16 and the deceleration target is estimated based on the detection result of the deceleration target detection device 56. Gbt = (Vp - Vt) / Dr (1)
[0039] Furthermore, when the accelerator opening Acc is greater than or equal to the reference value Acc, and the deceleration target detection device 56 detects a vehicle to be decelerated, the deceleration control mode is set to the accelerator opening mode, and the vehicle 16 is decelerated according to the accelerator opening. When the mode of deceleration support control changes, it is changed from the accelerator opening mode to the non-accelerator opening mode, which decelerates the vehicle 16 based on the target deceleration Gbt.
[0040] In this embodiment, the ROM of the driver assistance ECU 50 stores a deceleration support control program corresponding to the flowchart shown in Figure 2. The CPU of the driver assistance ECU 50 performs deceleration support control according to this program.
[0041] <Deceleration support control> Next, the deceleration support control routine in the embodiment will be described with reference to the flowchart shown in Figure 2. The deceleration support control according to the flowchart shown in Figure 2 is repeatedly executed at predetermined time intervals when the deceleration support switch 74 is ON.
[0042] In the following explanation, the deceleration support control shown in the flowchart in Figure 2 will simply be referred to as "this control." Prior to the start of this control, the flag Foff, which indicates whether or not the mode of the deceleration support control has been changed, is reset to 0 (indicating that the mode has not been changed).
[0043] First, in step S10, the CPU determines whether or not there is a vehicle to be decelerated in front of the vehicle 16, that is, whether or not a vehicle to be decelerated has been detected by the vehicle to be decelerated detection device 56. If the CPU determines that there is no vehicle to be decelerated, it terminates this control temporarily; if it determines that there is no vehicle to be decelerated, it proceeds to step S20. In particular, if the CPU determines that there is no vehicle to be decelerated when the flag Foff is 1, it resets the flag Foff to 0.
[0044] Furthermore, if the vehicle to be decelerated is a preceding vehicle, and the relative speed Vr of vehicle 16 with respect to the preceding vehicle is a negative value, a negative determination is made in step S10. Also, if a negative determination is made, such as when the preceding vehicle changes its course, and there is a target deceleration Vbt calculated in step S20 described later, the target deceleration Vbt is deleted. In addition, if the road is a curved road, the curved road may be determined to be a vehicle to be decelerated if the radius of curvature of the curved road is less than or equal to the reference radius. The reference radius may be set variably according to the vehicle speed, such that it becomes smaller as the vehicle speed increases.
[0045] In step S20, the CPU calculates a target deceleration Gbt to bring the vehicle speed V of the vehicle 16 when it reaches the position to be decelerated to a target vehicle speed Vt determined by the type of deceleration target, and sets the timing for changing modes according to the type of deceleration target.
[0046] The time from when the object to be decelerated is first detected until vehicle 16 is decelerated at the target deceleration Gbt and reaches the position of the object to be decelerated is defined as te, and the time from when the object to be decelerated is first detected until the timing of the mode change is defined as tc. The ratio of time tc to time te, Rec, is predetermined for each object to be decelerated.
[0047] In this embodiment, time te is calculated based on the detection result of the deceleration target detection device 56, and ratio Rec is determined according to the flowchart shown in Figure 3 or Figure 4. Furthermore, time tc is determined as the product of time te and ratio Rec, thereby determining the timing of mode change according to the type of deceleration target.
[0048] In this embodiment, the ratio Rec for a preceding vehicle on a level road is 1, and the ratio Rec for a preceding vehicle on an uphill road is 0.8. The ratio Rec for a stationary object is 0.7 when the driver is not steering, and 0.5 when the driver is steering. Whether or not the driver is steering can be determined in a manner known in the art based on the steering angle θ and the steering angular velocity θd, which is the rate of change thereof.
[0049] In step S40, the CPU determines whether the accelerator is pressed, that is, whether the accelerator opening Acc exceeds the reference value Acc. If the CPU makes a positive determination, it proceeds to step S60; if it makes a negative determination, it proceeds to step S50.
[0050] In step S50, the CPU performs deceleration control while the accelerator is off, that is, deceleration control when the accelerator opening Acc is less than or equal to a reference value Accc. For example, the CPU calculates the target braking force Fbt of the vehicle 16 based on the target deceleration Gbt, and controls the reduction device 30 so that the braking force Fb of the vehicle becomes the target braking force Fbt, thereby performing deceleration control so that the vehicle's deceleration becomes the target deceleration Gbt.
[0051] In step S60, the CPU determines whether the flag Foff is 1, that is, whether the deceleration support control mode has been changed. If the CPU determines it to be positive, it proceeds to step S100; if it determines it to be negative, it proceeds to step S70.
[0052] In step S70, the CPU determines whether a change in the deceleration support control mode is necessary based on whether the elapsed time since the deceleration target was first detected is equal to or greater than time tc. If the CPU makes a positive determination, it proceeds to step S90; if it makes a negative determination, it proceeds to step S80.
[0053] In step S80, the CPU controls the vehicle's deceleration according to the accelerator opening, such that the greater the decrease in the accelerator opening Acc, the greater the deceleration of the vehicle 16. This mode of deceleration support control is referred to as ACC mode in Figure 2 and Figure 5 described later. Note that when the accelerator opening Acc increases, no vehicle deceleration control is performed.
[0054] In step S90, the CPU sets the flag Foff to 1, and in step S100, the CPU controls the deceleration so that the vehicle's deceleration reaches the target deceleration Gbt, similar to the deceleration control when the accelerator is off. This mode of deceleration support control is referred to as the non-ACC mode in Figure 2 and Figure 5 described later.
[0055] In step S110, the CPU determines whether the termination condition for deceleration support control has been met, that is, whether the deceleration control should be terminated. If the CPU determines it is negative, it terminates the control; if it determines it is positive, it proceeds to step S120. The CPU may also determine that the termination condition for deceleration support control has been met when it is determined that the vehicle speed V of vehicle 16 is less than or equal to the target vehicle speed Vt, or when it is determined that the duration of the deceleration control is te or longer.
[0056] In step S120, the CPU resets the flag Foff to 0, and if the target deceleration Gbt, time te, and time tc have been calculated, it clears them and then terminates this control.
[0057] Furthermore, if the drive unit 60 includes a regenerative braking unit 66, in the deceleration control in steps S50, S80, and S100, at least a portion of the braking force may be regenerative braking force generated by the regenerative braking unit 66.
[0058] <Control of ratio Rec determination in the first embodiment> Next, the subroutine for determining the ratio Rec in the first embodiment will be described with reference to the flowchart shown in Figure 3.
[0059] In step S22, the CPU determines whether the vehicle to be decelerated is a preceding vehicle. If the CPU determines it is not a preceding vehicle, it proceeds to step S30; if it determines it is a preceding vehicle, it proceeds to step S24.
[0060] In step S24, the CPU determines whether the road on which the vehicle 16 is traveling is an uphill road. If the CPU determines it is not an uphill road, it sets the ratio Rec to 1 in step S26; if it determines it is an uphill road, it sets the ratio Rec to 0.8 in step S28. The determination of whether the road is an uphill road may be made based on information from a navigation device not shown in Figure 1, for example, or based on the relationship between the braking and driving force of the vehicle 16 and the vehicle's acceleration and deceleration.
[0061] In step S30, the CPU determines whether the vehicle to be decelerated is being steered by the driver at an intersection. If the CPU determines it is not, it sets the ratio Rec to 0.7 in step S34; if it determines it is, it sets the ratio Rec to 0.5 in step S36.
[0062] <Control of ratio Rec determination in the second embodiment> Next, the subroutine for determining the ratio Rec in the second embodiment will be described with reference to the flowchart shown in Figure 4. As can be seen from comparing Figure 4 with Figure 3, steps S22 to S28 and steps S34 and S36 are performed in the same way as the corresponding steps in the first embodiment.
[0063] In step S30, the CPU makes the same determination as in the first embodiment. If it makes a positive determination, it proceeds to step S36; if it makes a negative determination, it proceeds to step S32.
[0064] In step S32, the CPU determines whether there are multiple factors causing the mode change. If the CPU determines it is negative, it proceeds to step S34; if it determines it is positive, it proceeds to step S36. For example, if the road ahead of the vehicle is curved and there is a red light ahead, it may be determined that there are multiple factors causing the mode change.
[0065] <Examples of operation of the first and second embodiments> Next, regarding the case where a deceleration target is detected in front of the vehicle 16 by the deceleration target detection device 56 while the accelerator is pressed, examples of the operation of the first and second embodiments will be described, referring to Figure 5 as necessary.
[0066] Figures 5(A) through (C) show examples of changes in the vehicle speed V of vehicle 16 for cases C1 through C3 described below. In Figure 5, the dashed and dotted lines show examples where the average deceleration of the deceleration control by the accelerator opening mode is smaller and larger than the target deceleration Gbt calculated when the deceleration target is detected, respectively.
[0067] C1. When the vehicle to be decelerated is the preceding vehicle (Figure 5(A)) If the road is not an uphill road, a positive and negative determination are made in steps S22 and S24, respectively, and in step S26, the ratio Rec is determined to be 1. Therefore, since time tc is the same as time te, the deceleration support control is performed in accelerator opening mode, and the mode is not changed from non-accelerator opening mode to accelerator opening mode.
[0068] The deceleration of vehicle 16 is controlled according to the accelerator opening Acc until the elapsed time reaches time te. When the elapsed time reaches time te, a positive determination is made in step S110, and the deceleration support control ends. In Figure 5, the dashed line shows the change in vehicle speed V when the vehicle's deceleration is controlled in non-accelerator opening mode, based on the target deceleration Gbt calculated when the deceleration target is detected.
[0069] Furthermore, if the vehicle being decelerated is a preceding vehicle and the road is an uphill slope, time tc is set to 0.8te. Therefore, although not shown in Figure 5(A), the deceleration of vehicle 16 is controlled according to the accelerator opening Acc until the elapsed time reaches time tc. When the elapsed time reaches time tc, the mode is changed to the non-accelerator opening mode, and the deceleration is controlled to reach the target deceleration Gbt until the elapsed time reaches time te.
[0070] C2. When the object to be decelerated is a target object to be stopped (Figure 5(B)) Figure 6 shows an example where the object to be slowed down is a stopping target, with a T-junction 80 in front of the vehicle 16 as the object to be slowed down, and the vehicle 16 is traveling on a non-priority road 82 and approaching a priority road 84.
[0071] If the object to be decelerated is a stopping target, a negative determination is made in steps S22 and S30, and in step S34, the ratio Rec is determined to be 0.7, and the time tc is set to 0.7te. Therefore, as shown by the dashed and dotted lines in Figure 5(B), the deceleration of the vehicle 16 is controlled according to the accelerator opening Acc until the elapsed time reaches time tc. When the elapsed time reaches time tc, the mode is changed to the non-accelerator opening mode, and the deceleration is controlled to become the target deceleration Gbt until the elapsed time reaches time te and the vehicle speed V becomes 0.
[0072] C3. When the vehicle to be decelerated is being steered by the driver at an intersection (Figure 5(C)) In step S22, a negative determination is made, in step S30, a positive determination is made, and in step S36, the ratio Rec is determined to be 0.5, and the time tc is set to 0.5te. Therefore, as shown by the dashed and dotted lines in Figure 5(C), the deceleration of the vehicle 16 is controlled in the same way as in the case of C2, except that the mode change from accelerator opening mode to non-accelerator opening mode is faster than in the case of C2.
[0073] C4. When the deceleration target is multiple stopping targets (Figure 5(C)) In steps S22 and S30 of Figure 4, a negative determination is made, in step S32, a positive determination is made, and in step S36, the ratio Rec is determined to be 0.5, and the time tc is set to 0.5te. Therefore, the deceleration of the vehicle 16 is controlled in the same way as in the case of C3.
[0074] As can be seen from the above explanation, according to the embodiment, when the vehicle 16 reaches the position to be decelerated, a target deceleration Gbt is calculated to make the vehicle speed V of the vehicle, which is determined by the type of deceleration target, equal to the target vehicle speed Vt, and the timing for changing modes is set according to the type of deceleration target. Furthermore, when it is determined that it is time to change modes, the mode is changed from the accelerator opening mode to the non-accelerator opening mode, which decelerates the vehicle based on the target deceleration.
[0075] Therefore, the vehicle's deceleration is first controlled according to the accelerator opening in accelerator opening mode, and when it is determined that it is time to change modes, The deceleration support control mode has been changed. In non-accelerator-opening mode, it is automatically controlled based on the target deceleration. Therefore, the mode From accelerator opening mode to non-accelerator opening mode With this change, the driver can control the vehicle speed to the desired speed without having to control the amount the accelerator pedal is pressed. This improves the effectiveness of deceleration assistance by initiating deceleration control earlier, and makes it easier to control the vehicle speed to the desired speed compared to conventional methods.
[0076] Furthermore, according to the embodiment, a target deceleration is calculated to bring the vehicle speed to a target speed determined by the type of deceleration target, and the timing of the mode change is set according to the type of deceleration target (S20). Therefore, the vehicle speed can be easily controlled to the required speed regardless of the type of deceleration target, and the mode can be changed at a timing according to the type of deceleration target.
[0077] Furthermore, according to the embodiment, when it is determined that the object to be decelerated is a stopping target, i.e., an object that needs to be stopped (S22), it is determined that it is time to change modes when a predetermined time tc has elapsed since the object to be decelerated was first detected (S70). Therefore, when a predetermined time has elapsed since the object to be decelerated was detected, the mode is changed from accelerator opening mode to non-accelerator opening mode. Deceleration support control The mode can be changed.
[0078] Furthermore, according to the embodiment, the predetermined time tc is variably set according to the type of deceleration target and the vehicle's driving conditions (S22, S24, S30). Therefore, the timing of the mode change from accelerator opening mode to non-accelerator opening mode can be variably set according to the type of deceleration target and the vehicle's driving conditions.
[0079] Furthermore, according to the embodiment, when it is determined that steering operation is being performed (S30), the timing of the mode change is earlier than when it is not determined that steering operation is being performed (S36). Therefore, when steering operation is being performed, the timing of the mode change is advanced, and the timing at which the vehicle begins to decelerate based on the target deceleration is advanced. Consequently, the driver can concentrate on steering operation earlier than when the timing of the mode change is not advanced, without having to control the accelerator opening.
[0080] Furthermore, according to the embodiment, when it is determined that there are multiple objects to be decelerated, the timing of the mode change is earlier than when it is determined that there is only one object to be decelerated. Therefore, when there are multiple objects to be decelerated, the timing of the mode change is earlier than when there is only one object to be decelerated, and the timing at which the vehicle begins to decelerate based on the target deceleration can be brought forward. Consequently, the driver does not need to control the accelerator opening earlier compared to when the timing of the mode change is not brought forward.
[0081] Although the present invention has been described in detail with respect to specific embodiments, it will be apparent to those skilled in the art that the present invention is not limited to the embodiments described above, and that various other embodiments are possible within the scope of the present invention.
[0082] For example, in the above-described embodiment, the predetermined time tc is set variably according to both the type of vehicle to be decelerated and the vehicle's driving conditions (S22, S24, S30). However, the predetermined time may be set variably according to either the type of vehicle to be decelerated or the vehicle's driving conditions. Furthermore, the vehicle's driving conditions in the embodiment refer to the vehicle driving on an uphill road, but may include other driving conditions such as the distance to the preceding vehicle and weather conditions.
[0083] For example, the order in which steps S22 and S30 are executed in the first embodiment described above may be reversed, and the order in which steps S22 and steps S30 and S32 are executed in the second embodiment may be reversed.
[0084] Furthermore, the values of ratio Rec in the above-described embodiments are illustrative and not limited to the above values. Also, while ratio Rec is 1 when the vehicle to be decelerated is a preceding vehicle, it may be a value less than 1 and greater than 0.8. [Explanation of symbols]
[0085] 10...Vehicle deceleration support control device, 14FL~14RR...Wheels, 16...Vehicle, 30...Deceleration device, 34...Brake ECU, 50...Driving support ECU, 56...Deceleration target detection device, 64...Accelerator opening sensor, 66...Drive ECU, 70...Steering angle sensor
Claims
1. A vehicle deceleration support control device includes an accelerator opening detection device for detecting the accelerator opening, a deceleration target detection device for detecting a deceleration target in front of the vehicle, a deceleration device for decelerating the vehicle, and a control unit for controlling the deceleration device, wherein the control unit is configured to perform deceleration support control in an accelerator opening mode that decelerates the vehicle according to the accelerator opening, such that the greater the decrease in accelerator opening, the greater the vehicle's deceleration, when a deceleration target is detected in a situation where the accelerator opening exceeds a reference value, by controlling the deceleration device, The control unit is configured to calculate a target deceleration to bring the vehicle's speed when it reaches the position of the vehicle to be decelerated to a target speed determined by the type of vehicle to be decelerated, set a timing for mode change according to the type of vehicle to be decelerated, and when it is determined that it is the timing for mode change, change the mode from the accelerator opening mode to a non-accelerator opening mode that decelerates the vehicle based on the target deceleration.
2. Vehicle deceleration support control device according to claim 1, wherein the control unit is configured to determine that when it determines that the object to be decelerated is an object that requires the vehicle to be stopped, it determines that it is time to change modes when it determines that a predetermined time has elapsed since the object to be decelerated was first detected.
3. Vehicle deceleration support control device according to claim 2, wherein the control unit is configured to variably set the predetermined time according to at least one of the type of deceleration target and the driving conditions of the vehicle.
4. Vehicle deceleration support control device according to claim 1, wherein the control unit is configured to change the mode earlier when it determines that steering operation is being performed compared to when it does not determine that steering operation is being performed.
5. Vehicle deceleration support control device according to claim 1, wherein the control unit is configured to change the mode earlier when it is determined that there are multiple deceleration targets compared to when it is determined that there is one deceleration target.
Citation Information
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