USER INTERFACE APPARATUS OF NON-UNIFORM DISPLACEMENT ENGINE CONTROL SYSTEM AND CONTROL METHOD OF THE USER INTERFACE APPARATUS OF NON-UNIFORM DISPLACEMENT ENGINE CONTROL SYSTEM
20170080922 ยท 2017-03-23
Inventors
Cpc classification
B60W30/20
PERFORMING OPERATIONS; TRANSPORTING
F02D2200/604
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D2250/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60W10/08
PERFORMING OPERATIONS; TRANSPORTING
B60K2006/4825
PERFORMING OPERATIONS; TRANSPORTING
F02D41/0082
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D2041/228
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60K6/547
PERFORMING OPERATIONS; TRANSPORTING
B60W2030/206
PERFORMING OPERATIONS; TRANSPORTING
B60W30/182
PERFORMING OPERATIONS; TRANSPORTING
B60W20/10
PERFORMING OPERATIONS; TRANSPORTING
B60W10/06
PERFORMING OPERATIONS; TRANSPORTING
B60W50/082
PERFORMING OPERATIONS; TRANSPORTING
B60Y2400/61
PERFORMING OPERATIONS; TRANSPORTING
B60W20/15
PERFORMING OPERATIONS; TRANSPORTING
F02D2200/606
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60W2710/06
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60W20/15
PERFORMING OPERATIONS; TRANSPORTING
B60W10/08
PERFORMING OPERATIONS; TRANSPORTING
B60W30/20
PERFORMING OPERATIONS; TRANSPORTING
B60W10/06
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A user interface apparatus for controlling a vehicle comprising a non-uniform displacement engine comprising at least two sizes of cylinders having different displacements, a motor connected to a driving shaft of the engine, and a motor controller for controlling the motor, the user interface apparatus includes an input for selecting a control mode of the non-uniform displacement engine and the motor, an interface controller communicating with the motor controller such that the motor is controlled in the selected control mode, and a display device for displaying information about the selected control mode, wherein the user interface apparatus has a control mode for controlling the motor to compensate for a difference in torque due to different displacements of the cylinders such that a sum of engine torque and motor torque in explosion stroke of each cylinder is uniform.
Claims
1. A user interface apparatus for controlling a vehicle comprising a non-uniform displacement engine comprising at least two sizes of cylinders having different displacements, a motor connected to a driving shaft of the engine, and a motor controller for controlling the motor, the user interface apparatus comprising: an input for selecting a control mode of the non-uniform displacement engine and the motor; an interface controller communicating with the motor controller such that the motor is controlled in the selected control mode; and a display device for displaying information about the selected control mode, wherein the user interface apparatus has a control mode for controlling the motor to compensate for a difference in torque due to different displacements of the cylinders such that a sum of engine torque and motor torque in explosion stroke of each cylinder is uniform.
2. The user interface apparatus of claim 1, wherein the input selects a fixed mode function of selecting one from among predetermined control modes and a variable mode function of adjusting the control modes.
3. The user interface apparatus of claim 1, wherein the interface controller stores information about a default mode and, in a case in which no control mode is selected or the selected control mode is released, transmits a command for switching to the default mode to the motor controller.
4. The user interface apparatus of claim 3, wherein the default mode is a mode for not driving the motor or controlling the motor so as to create predetermined driving torque.
5. The user interface apparatus of claim 3, wherein the interface controller receives information about a state of charge (SOC) of a battery from a battery controller and, in a case in which the received information about the SOC of the battery is within a predetermined range or a command for releasing the selection of the control mode is received from the input, performs control of switching to the default mode.
6. The user interface apparatus of claim 2, wherein a non-uniform control option and a uniform control option are selected in the variable mode function.
7. The user interface apparatus of claim 6, wherein a bias amount of regenerative torque or driving torque of the motor is set in the non-uniform control option.
8. The user interface apparatus of claim 6, wherein a power level of the engine and the motor is set in the uniform control option.
9. The user interface apparatus of claim 1, wherein the display device displays at least one selected from a group consisting of selected control modes, a SOC of a battery, a power level, driving torque and regenerative torque of the motor and information about uniform control or non-uniform control.
10. The user interface apparatus of claim 3, wherein the control mode comprises: a first mode for controlling the motor such that energy regeneration is achieved in explosion strokes of high displacement cylinders and controlling the motor such that power assistance is achieved by motor torque in explosion strokes of low displacement cylinders; a second mode for controlling the motor such that the motor is not driven in the explosion strokes of the high displacement cylinders and controlling the motor such that power assistance is achieved by motor torque in the explosion strokes of the low displacement cylinders; and a third mode for controlling the motor such that energy regeneration is achieved in the explosion strokes of the high displacement cylinders and controlling the motor such that the motor is not driven in the explosion strokes of the low displacement cylinders.
11. A control method of a user interface apparatus for controlling a vehicle comprising a non-uniform displacement engine comprising at least two kinds of cylinders having different displacements, a motor connected to a driving shaft of the engine, and a motor controller for controlling the motor, the control method comprising: (a) selecting a control mode of the non-uniform displacement engine and the motor through an input; (b) enabling an interface controller to communicate with the motor controller such that the motor is controlled in the selected control mode; and (c) controlling the motor in the selected control mode through the motor controller, Wherein the control mode comprises a control mode for controlling the motor to compensate for a difference in torque due to different displacements of the cylinders such that a sum of engine torque and motor torque in explosion stroke of each cylinder is uniform.
12. The control method of claim 11, further comprising selecting a fixed mode function of selecting one from among predetermined control modes and a variable mode function of adjusting the control modes before step (a).
13. The method of claim 11, wherein the interface controller stores information about a default mode and, in a case in which no control mode is selected or the selected control mode is released, transmits a command for switching to the default mode to the motor controller.
14. The method of claim 13, wherein the default mode is a mode for not driving the motor or controlling the motor so as to create predetermined driving torque.
15. The method of claim 13, wherein the interface controller receives information about an SOC of a battery from a battery controller and, in a case in which the received information about the SOC of the battery is within a predetermined range or a command for releasing the selection of the control mode is received from the input, performs control of switching to the default mode.
16. The method of claim 12, wherein a non-uniform control option and a uniform control option are selected in the variable mode function.
17. The method of claim 16, wherein a bias amount of regenerative torque or driving torque of the motor is set in the non-uniform control option.
18. The method of claim 16, wherein a power level of the engine and the motor is set in the uniform control option.
19. The method of claim 11, further comprising: displaying selectable control modes through a display device before step (a); and displaying at least one selected from a group consisting of selected control modes, a SOC of a battery, a power level, driving torque and regenerative torque of the motor and information about uniform control or non-uniform control through the display device after step (a).
20. The method of claim 13, wherein the control mode comprises: a first mode for controlling the motor such that energy regeneration is achieved in explosion strokes of high displacement cylinders and controlling the motor such that power assistance is achieved by motor torque in explosion strokes of low displacement cylinders; a second mode for controlling the motor such that the motor is not driven in the explosion strokes of the high displacement cylinders and controlling the motor such that power assistance is achieved by motor torque in the explosion strokes of the low displacement cylinders; and a third mode for controlling the motor such that energy regeneration is achieved in the explosion strokes of the high displacement cylinders and controlling the motor such that the motor is not driven in the explosion strokes of the low displacement cylinders.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0032] The above and other features of the present disclosure will now be described in detail with reference to certain exemplary embodiments thereof illustrated in the accompanying drawings which are given hereinbelow by way of illustration only, and thus are not limitative of the present disclosure, and wherein:
[0033]
[0034]
[0035]
[0036]
[0037]
[0038]
[0039]
[0040]
[0041]
[0042] It should be understood that the appended drawings are not necessarily to scale, presenting a somewhat simplified representation of various preferred features illustrative of the basic principles of the disclosure. The specific design features of the present disclosure as disclosed herein, including, for example, specific dimensions, orientations, locations, and shapes, will be determined in part by the particular intended application and use environment.
[0043] In the figures, reference numbers refer to the same or equivalent parts of the present disclosure throughout the several figures of the drawing.
DETAILED DESCRIPTION
[0044] Hereinafter reference will now be made in detail to various embodiments of the present disclosure, examples of which are illustrated in the accompanying drawings and described below. While the disclosure will be described in conjunction with exemplary embodiments, it will be understood that the present description is not intended to limit the disclosure to those exemplary embodiments. On the contrary, the disclosure is intended to cover not only the exemplary embodiments, but also various alternatives, modifications, equivalents and other embodiments, which may be included within the spirit and scope of the disclosure as defined by the appended claims.
[0045] The present disclosure proposes a new-concept non-uniform displacement engine control system that performs control using a motor in a system including a non-uniform displacement engine including cylinders having different displacements, thereby achieving different displacements based on driving conditions, and a method for the same. In particular, the present disclosure has another characteristic in that a system depending upon the conventional inefficient use of mechanical energy is configured to utilize electrical energy, which is more efficient, thereby improving overall system efficiency.
[0046] In addition, the present disclosure has another characteristic in that a charge intention mode or a discharge intention mode is selectively used based on a state of charge (SOC) of a battery, whereby it is possible to maintain the state of charge of the battery to be uniform by variably controlling the charge amount or the discharge amount based on the current state of the battery.
[0047] The present disclosure is configured such that high displacement cylinders and low displacement cylinders are arranged to execute a high displacement mode and a low displacement mode based on driving conditions, thereby improving fuel efficiency and power performance using the increase in potential energy and kinetic energy of displacement. In addition, the proportion of a vibration/noise generation area that can be controlled by the motor is increased, thereby improving the use of a more advantageous driving point.
[0048] In an embodiment of the present disclosure, the non-uniform displacement engine has a four cylinder structure including two cylinders of one kind, or size, having the same displacement as each other and two cylinders of another kind, or size, having the same displacement as each other. However, the present disclosure is not limited thereto, and it should be noted that extension and modification are possible so long as the technical concepts of the present disclosure are not changed.
[0049] Hereinafter, a motor-assisted non-uniform displacement engine control system according to an embodiment of the present disclosure and a method for the same will be described in detail with reference to the accompanying drawings.
[0050]
[0051] As shown in
[0052] Driving shafts of the engine and the motor are connected to each other via a power switching device, such as a clutch. However, the present disclosure is not limited thereto. The driving shafts of the engine and the motor may be directly connected to each other. In addition, the system may include a battery for supplying electrical energy to the motor and a motor controller for controlling the operation of the motor.
[0053] In the present disclosure, the battery may be used as an electrical energy supply means. However, the present disclosure is not limited thereto as long as the electrical energy supply means can supply the electrical energy necessary to drive the motor while storing the electrical energy.
[0054] In addition, although not shown, the system may include an engine controller for controlling the engine. The engine controller and the motor controller may be controlled by a higher-level controller. In addition, the engine controller and the motor controller may be integrated into a single controller.
[0055] In addition, driving torque from the engine and the motor may be transmitted to driving wheels via a transmission.
[0056] Meanwhile, as shown in
[0057] The non-uniform displacement engine is characterized by different displacements for respective cylinders, and selects the merits and demerits of high displacement and low displacement based on a controllable strategy, or algorithm, in order to improve fuel efficiency and power performance. In addition, according to the present disclosure, which may be configured as a system assisted by the motor, it is possible to compensate for the characteristics of each cylinder utilizing the motor. Moreover, it is possible to improve driving efficiency and to optimize energy efficiency through energy recovery. In particular, unlike the related art in which excessive mechanical energy is used in order to ensure stable idling, it is possible to ensure stable idling utilizing the electrical energy of the motor. In addition, it is possible to mitigate vibration and noise utilizing the motor.
[0058] For example, as shown in
[0059] Non-uniform displacement may be set based on the characteristics of the system. The cylinders are symmetrically arranged in ignition (explosion) order such that a vibration component caused by the difference in displacement can be offset.
[0060] That is, in explosion order 1-3-4-2 or 1-2-4-3, cylinders located at corresponding positions, i.e. the first and fourth cylinders and the second and third cylinders may have the same displacement, and other cylinder groups may have different displacements.
[0061] For example, the first and fourth cylinders may have high displacement, and the second and third cylinders may have lower displacement that the first and fourth cylinders. This case is shown in
[0062] According to this cylinder arrangement, it is possible to offset a vibration component based on the arrangement of the cylinders at corresponding positions, thereby improving vibration and noise characteristics.
[0063] In the case in which the engine is configured as a four-cylinder engine having a total displacement of 1.5 L according to a first embodiment, as an example of the present disclosure, the first and fourth cylinders may have a displacement of 0.4 L for each of the two cylinders, which is a relative high displacement, and the second and third cylinders may have a low displacement of 0.35 L for each of the two cylinders, which is a relatively low displacement.
[0064] According to the first embodiment, the four-cylinder engine may be ignited in order 1-3-4-2, and cylinders having different displacements may be arranged so as to correspond to the opposite cylinders in the ignition order, in order to offset a vibration component which may be caused due to non-uniform displacement.
[0065] Meanwhile,
[0066] As shown in
[0067] The explosion stroke of each cylinder means a period set based on the same criterion, such as crank angles before and after the explosion of each cylinder or the distance from a top dead center (TDC) to the upper end of a piston that is set.
[0068] The difference in displacement among the cylinders causes non-uniform driving of the engine, resulting in vibration and noise.
[0069] Meanwhile, an embodiment of the present disclosure includes motor control for compensating for non-uniform engine driving characteristics.
[0070]
[0071]
[0072] Particularly, in motor control mode {circle around (1)}, as shown in
[0073] Consequently, it is possible to improve driving efficiency and fuel efficiency at a high efficiency point utilizing increments in kinetic energy of the high displacement cylinders and to improve responsiveness in a transition state and power performance utilizing the increase in potential energy.
[0074] Meanwhile, in motor control modes {circle around (2)} to {circle around (4)}, the motor is controlled differently in respective explosion strokes of the non-uniform displacement engine. In motor control mode {circle around (2)}, power assistance and energy regeneration are proportionally controlled in order to minimize a vibration component. Motor control mode {circle around (3)} is used for traveling at the maximum power, and motor control mode {circle around (4)} is used for traveling at the minimum power.
[0075] That is, in motor control modes {circle around (2)} to {circle around (4)}, the motor is selectively controlled by the motor controller. The motor control may be performed in order to compensate for the difference in torque due to the different displacements of the cylinders. In the explosion stroke of each cylinder, therefore, the motor may be controlled such that the sum of the engine torque and the motor torque is uniform using driving or energy regeneration of the motor. Motor control modes {circle around (2)} to {circle around (4)} are respectively shown in
[0076] Specifically, in motor control mode {circle around (2)}, a target displacement is set, and a driving torque of the engine and the motor is set based on the target displacement, such that the motor has uniform output characteristics in all explosion strokes. As shown in
[0077] Motor control mode {circle around (3)} is used for traveling at the maximum power of the non-uniform displacement engine. The motor is controlled such that the low displacement cylinders are assisted by the motor to achieve the maximum power of the given non-uniform displacement. In motor control mode {circle around (3)}, the motor may be controlled such that the same power performance from the explosion strokes of the high displacement cylinders is achieved in the explosion strokes of the low displacement cylinders through power assistance by the motor. As shown in
[0078] Meanwhile, motor control mode {circle around (4)} is used for traveling at the minimum power of the non-uniform displacement engine. The motor is controlled such that the excessive energy from the high displacement cylinders is recovered by the motor to achieve the minimum power of the given non-uniform displacement. In motor control mode {circle around (4)}, as shown in
[0079] Motor control modes {circle around (1)} to {circle around (4)} may be selectively used by the motor controller. For example, the motor controller may store motor control modes {circle around (2)} to {circle around (4)}, which are different from one another, and may select any one thereamong to control the motor.
[0080] In an embodiment of the present disclosure, it is possible to variably configure the substantial driving characteristics of the vehicle according to the utilization of the motor based on the high displacement and the low displacement of the non-uniform displacement engine. In particular, it is possible to elaborately perform variable displacement control within a set range of displacement through the use of the motor control modes.
[0081]
[0082] Meanwhile, the present disclosure provides a user interface apparatus 200 of the non-uniform displacement engine control system. The user interface apparatus 200 may wake up when the vehicle is started. The user interface apparatus 200 receives necessary driving power from a low-voltage battery for driving electronic devices in the vehicle. The user interface apparatus 200 may include an input 221 for user input, a display device 222 for displaying information about driving states and the like, and an interface controller 210 for controlling the input 221 and the display device 222.
[0083] The basic control flow of the user interface apparatus 200 is shown in
[0084] Meanwhile, in an embodiment of the present disclosure, the interface controller 210 may communicate with a battery controller 300, which manages the battery for driving the motor. The battery controller 300 transmits information about a state of charge (SOC) of the battery to the interface controller 210. The SOC of the battery may be used as information to determine a control mode. That is, charge and discharge tendencies may be different in the control modes {circle around (1)} to {circle around (4)}, and thus the SOC of the battery may be managed using such tendencies.
[0085] For example, when the SOC of the battery is too low in a discharge intention control mode (for example, control mode {circle around (3)} for providing the maximum output), in which power of the battery is consumed, the control mode may be stopped and switched to a charge intention control mode (for example, control mode {circle around (4)} for providing the minimum output). However, the present disclosure is not limited thereto. For example, when control mode {circle around (1)} is set as a default mode and is not selected or a mode release condition (including release of user's selection) occurs, switching to the default mode may be performed.
[0086] The interface controller 210 stores information about the default mode.
[0087] In the case in which the control mode is not selected, therefore, the interface controller 210 communicates with the motor controller such that the motor is controlled in the default mode. In addition, in the case in which the selected control mode is released, the interface controller 210 transmits a command for switching to the default mode to the motor controller.
[0088] As previously described, the default mode may be control mode {circle around (1)}, in which the motor is not driven, or a mode for controlling the motor so as to create predetermined driving torque.
[0089] Meanwhile, the input 221 may be provided to select one of a fixed mode function and a variable mode function.
[0090] The fixed mode function is a function of selecting one of the predetermined control modes. The variable mode function is a function of adjusting a control mode according to a setting desired by a user in addition to the predetermined control modes. In the fixed mode function, therefore, only one of the predetermined control modes may be selected.
[0091] In the variable mode function, on the other hand, the user may arbitrarily adjust the predetermined control modes. Consequently, the user may adjust the bias amount of regenerative torque or driving torque of the motor.
[0092] The adjustment of the bias amount may be performed by the user through the input 221. The bias amount may be adjusted using a touch panel or a jog dial.
[0093] In the variable mode function, a non-uniform control option and a uniform control option may be selected. Uniform control means outputting uniform torque (engine+motor) by adjusting the assistance amount of the motor in spite of output from the non-uniform displacement engine, as in control modes {circle around (2)} to {circle around (4)}. On the other hand, non-uniform control means outputting non-uniform torque (engine+motor), as in control mode {circle around (1)}.
[0094] In the non-uniform control option, therefore, the bias amount of regenerative torque or driving torque of the motor is set. That is, the user may adjust the bias amount in control modes {circle around (2)} to {circle around (4)} to set a non-uniform control state.
[0095] In the uniform control option, on the other hand, the user sets a power level based on the engine and the motor. That is, the user may set a desired power level between control mode {circle around (3)} for providing the maximum power and control mode {circle around (4)} for providing the minimum power. In this case, the interface controller 210 communicates with the motor controller such that the motor is controlled according to the power level desired by the user. A motor control algorithm based on the required power level may be stored in the interface controller 210 or in the motor controller.
[0096]
[0097] As shown in
[0098] The input and output 220 may also function as the input 221. In this example, the user may click or drag information displayed on the display device to select a control mode and to adjust a required power level and bias amount.
[0099]
[0100] According to the present disclosure, a control method of the user interface apparatus may include (a) selecting one of the control modes of the non-uniform displacement engine and the motor through the input, (b) enabling the interface controller to communicate with the motor controller such that the motor is controlled based on the selected control mode and (c) controlling the motor based on the selected control mode through the motor controller.
[0101] Before step (a), a fixed mode function of selecting one of the predetermined control modes and a variable module function of adjusting the control mode may be selected. In addition, before step (a), a step of displaying selectable control modes through the display device may be further included.
[0102] In addition, after step (a), a step of displaying at least one selected from the group consisting of the selected control modes, the SOC of the battery, the power level, the driving torque and regenerative torque of the motor and information about uniform control or non-uniform control may be further included.
[0103]
[0104] In the fixed mode function, as shown in
[0105] In the case in which the user's selection switch is OFF, i.e. the user has not selected any control mode, control is performed in a predetermined default mode (S420). In the case in which the user's selection switch is ON, selectable modes are displayed (S430), and a step (S440) of the user selecting a specific one of the displayed modes is performed. In the case in which the mode selection has not been input for a predetermined time in the control mode selection procedure, control may be initialized, and then the procedure may enter the default mode.
[0106] In the case in which the default mode has been entered in the state in which the fixed mode has been selected through the above procedure (S420), control is performed in control mode D. In this case, motor torque is not output, and the user interface apparatus is displayed, as shown in
[0107] In the case in which the control mode has been selected, the vehicle is driven in the selected control mode (S450). Although not shown, this step (S450) includes allowing the interface controller to transmit information about the selected control mode to the motor controller and allowing the motor controller to control the motor based on the received information.
[0108] In this case, the selected control mode is output to the user interface apparatus.
[0109] While the vehicle is being driven in the selected control mode, the interface controller determines whether a predetermined release condition is satisfied (S460). Upon determining that the predetermined release condition is satisfied, the selected control mode is terminated, and the mode returns to the default mode.
[0110]
[0111] Specifically, as shown in
[0112] In the case in which the user's selection switch is OFF, i.e. the user has not selected any control mode, control is performed in the predetermined default mode (S520). In this case, the user interface apparatus is displayed as shown in
[0113] In the case in which the user's selection switch is ON, it is determined whether non-uniform control or uniform control is performed (S530). As the result of the determination, a non-uniform control procedure (S540) or a uniform control procedure (S550) is performed.
[0114] In the non-uniform control procedure (S540), selectable modes are displayed through the display device (S541), and a step (S542) of the user selecting a specific one of the displayed modes is performed.
[0115] Subsequently, the bias amount of regenerative torque or driving torque of the motor desired by the user in the selected control mode is selected (S543). The control mode is adjusted based on the selected bias amount, and the vehicle is driven in the adjusted control mode (S544).
[0116] In the uniform control procedure (S550), selectable modes are displayed (S551), and a step (S552) of the user selecting a specific one from the displayed modes is performed. In the uniform control procedure, however, the power level of the engine and the motor desired by the user is set (S553). In addition, the control mode is adjusted based on the selected power level, and the vehicle is driven in the adjusted control mode (S554).
[0117] Step S544 or step S554 includes a step of the interface controller adjusting the control mode based on the selected bias amount or the selected power level. In addition, step S544 or step S554 further includes a step of controlling the motor through communication with the motor controller using information about the adjusted control mode.
[0118] During uniform control, the user interface apparatus is displayed as shown in
[0119] In the same manner as in the above case, while the vehicle is being driven in the adjusted control mode, the interface controller determines whether a predetermined release condition is satisfied (S560). Upon determining that the predetermined release condition is satisfied, the control mode is terminated, and the mode returns to the default mode.
[0120] As is apparent from the above description, an embodiment of the present disclosure may be used as a variable displacement engine and a control system in a vehicle using an engine and a motor as a power source, as in a hybrid vehicle.
[0121] In addition, in an embodiment of the present disclosure, modes based on traveling conditions may be selectively embodied. Consequently, it is possible to variously perform control in operation zones, such as the exhibition of power performance or the optimization of fuel efficiency.
[0122] In addition, in an embodiment of the present disclosure, it is possible to increase freedom in the control of the hybrid vehicle, thereby proposing a new paradigm, or method, for control of the operation of the hybrid vehicle.
[0123] In particular, according to the present disclosure, it is possible to configure a driving system such that variable displacement control is elaborately performed through the use of the motor within a set variable range.
[0124] In addition, it is possible to solve vibration and noise problems caused by the non-uniform displacement engine, thereby improving driving performance.
[0125] In addition, according to the present disclosure, it is possible to enable a user to select a detailed control mode of the non-uniform displacement engine and to effectively recognize the travel state of the vehicle in the selected mode, thereby enhancing the satisfaction of vehicle travel.
[0126] In addition, it is possible to effectively display information about the detailed control mode, thereby leading to more efficient vehicle travel based on the displayed information.
[0127] The disclosure has been described in detail with reference to preferred embodiments thereof. However, it will be appreciated by those skilled in the art that changes may be made in these embodiments without departing from the principles and spirit of the disclosure, the scope of which is defined in the appended claims and their equivalents.