The present invention relates to a controlling apparatus and a control method thereof for vehicle doors, and particularly to a controlling apparatus and a method thereof based on statuses of objects surrounding the vehicle.
As the number of vehicle increases, the public is aware of issues regarding safe driving in daily lives. Because of the concern, consumers are willing to pay more for vehicles equipped with safety facilities. These proactive safety facilities not only enhance the safety of vehicle itself, but also prevent passengers, pedestrians, as well as moving vehicles/objects from being harmed because of traffic accidents. More frequently, a driver may park the car aside and get off to run errands. If either the driver or the passenger rushes to open the vehicle door without looking out the surrounding situation, a tragedy may happen. Sometimes it is the sudden open of the vehicle door that hits a pedestrian or a person riding bicycle/motorcycle approaching the vehicle; or sometimes it is the driver/passenger getting off the vehicle who is struck by a coming vehicle. These sorts of injuries could be fatal but usually avoidable if more careful attention is paying to.
Under the conventional design of vehicle, the passengers can casually unlock the door and get off the car without the driver's intervene. Despite there are rearview and side mirrors helping the driver (rather than the passengers) to judge if it will be safe to leave the car, it still relies on the driver's vigilance to actually look into these mirrors in advance. If the driver negligently forgets to take the precaution, accidents may just happen. Based on the foregoing reasons, there exists a need to proactively control the opening of vehicle doors for passengers and drivers in a much safer way.
The present invention discloses a controlling apparatus and a method thereof for controlling the vehicle doors of a vehicle based on the status of the object(s) surrounding the vehicle.
One embodiment of the present invention discloses a controlling apparatus for controlling the opening of vehicle doors of a vehicle. The controlling apparatus includes: a sensing module configured to sense at least one object surrounding a vehicle and collect information related to the object; a processing unit configured to receive and analyze information of the object, and issue a warning flag based on a status of the object; and a programmable damper module connected to the processing unit and configured to impose a resistance on the vehicle door and thereby limits the vehicle door's open based on the warning flag.
Another embodiment of the present invention discloses a controlling apparatus for controlling the opening of vehicle doors of a vehicle. The vehicle has an open range within which the vehicle doors can be opened completely. The controlling apparatus includes: a sensing module arranged around the vehicle and configured to sense at least one moving object approaching the vehicle and collect information related to the moving object; a processing unit connected to the sensing module and configured to analyze the information of the moving object and determine whether to issue a warning flag by judging whether the moving object will be entering into the open range and if so the duration of time of the entrance; and a controlling module connected to the processing unit and configured to control the vehicle door's open based on the warning flag.
A further embodiment of the present invention discloses a controlling method for a vehicle. The method includes: sensing at least one moving object approaching the vehicle; collecting a distance between the moving object and the vehicle, and a velocity and a moving direction of the moving object; analyzing the distance, the velocity and the moving direction to determine a duration of time that the moving object will be entering into an open range of the vehicle, and issue a warning flag accordingly; and controlling the vehicle door based on the warning flag.
These and other objectives of the present invention will no doubt become obvious to those of ordinary skill in the art after reading the following detailed description of the preferred embodiment that is illustrated in the various figures and drawings.
The accompanying drawings are included to provide a further understanding of the embodiments, and are incorporated in and constitute apart of this specification. The drawings illustrate some of the embodiments and, together with the description, serve to explain their principles. In the drawings:
It should be noted that all the figures are diagrammatic. Relative dimensions and proportions of parts of the drawings have been shown exaggerated or reduced in size, for the sake of clarity and convenience in the drawings. The same reference signs are generally used to refer to corresponding or similar features in modified and different embodiments.
In the following detailed description of the invention, reference is made to the accompanying drawings which form a part thereof, and in which are shown specific embodiments in which the invention may be practiced byway of illustration. These embodiments are described in sufficient details to allow those skilled in the art to practice the invention. It should be noted that all the figures are diagrammatic. Relative dimensions and proportions of parts of the drawings have been shown exaggerated or reduced in size, for the sake of clarity and convenience in the drawings. Other embodiments may be utilized and structural, logical, and electrical changes may be made without departing from the scope of the present invention. Accordingly, the following disclosure should not be construed as limited. Rather, the embodiments therein are only defined by the metes and bounds of the appended claims.
It should be noted that, certain words used in the specification and claims to refer to particular components. Those skilled in the art will be understood, the vehicle manufacturers may use different terms to refer to a component. The present specification and claims is not to distinguish the differences in terms of the assembly as a way to differentiate components but to function as a distinguishing criterion. As used throughout the specification and claims, reference to “comprising” or “comprises” is an open-ended fashion, and thus should be interpreted to mean “including, but not limited to.” Instructions subsequent description of preferred embodiments of the present invention embodiments, however the general principles described are based on the specification for the purpose, it is not intended to limit the scope of the present invention. The scope of protection of the present invention is defined by the following claims and their equivalents.
To provide a better understanding for the embodiments of present invention, several exemplary embodiments will be described in sufficient details with reference to the drawings. The drawings do not intend to limit the embodiments of the present invention
First,
Please refer to
Besides, as shown in
Moreover, in the preferred embodiment of the present invention, the processing unit 104 may further calculate the duration of time that a moving object will take to enter into the Zone based on the collected information to decide whether to issue a warning flag. In addition, the warning flag may be of several levels, i.e. extreme/high/moderate/low/none danger. The other modules/hardware of the controlling apparatus 100 will subsequently act in accordance with the given level of the warning flag. Precisely, the warning flag is sent to the controlling module 101 which, based on the level of the warning flag, controls the other modules/hardware to perform correspondingly.
For example, as shown in
In the present invention, the controlling module 101 may be implemented by various types of electronic control units (ECUs), such as “vehicular computer” or “computer in vehicle” etc. Those ECUs may be generically defined as vehicular microcomputers or vehicular single chips, which are of the same functions as a general single chip integrated with large scaled integrated circuits (e.g. CPU), memory (e.g. ROM, RAM), I/O, A/D, shaping circuits and/or driving circuits, etc. In one embodiment, the controlling unit 101 may be a dedicated ECU, or it may be embedded with the ECU particularly designated for controlling the door locks (i.e. the door-lock-control ECU). Alternatively, the function of the controlling unit 101 may be added to the ECU designed for collecting information. The ECU communicates with the door-lock-control ECU or a BCM (Body Control Module) through buses. The various types of ECUs mentioned above may constitute a controller-area network (CAN) communicating through, for example, buses.
As also shown in
In the preferred embodiment of the present invention, the programmable damper module 105 adjusts the resistance imposed on the vehicle doors based on the level of the warning flag (extreme/high/moderate/low, etc). For example, as mentioned and shown in
Based on the design of multi-staged resistance corresponding to the warning flags in the present invention, the passengers who want to get off the vehicle A will feel various degrees of resistance while opening the doors. Apart from serving the purpose of slowing down the door's open, the existence of the multi-degree resistances can also urge the passenger/driver to pay more attentions to the surrounding objects, such as pedestrians and approaching cars, without the reminder from other passengers or additional unlock actions, thereby achieving the proactively safety opening mechanism. Moreover, the imposed resistance varies based on the actual situation to provide proper damping degrees corresponding to the warning flags, rather than merely one damping degree. Thus, in the absence of additional facilities or warnings, the controlling system 100 of the present invent can provide the safety in a more proactive and less interfering way, which is a novel and non-obvious invention feature and approach.
In the embodiment of the present invention, the controlling module 101 may, based on the level of the warning flag, command the programmable damper module 105 to adjust its resistance. Alternatively, the processing unit 104 may directly control the programmable damper module 105 to issue the warning flags without the presence of the controlling module 101.
The controlling apparatus 100 as shown in
In the present invention, the door limiter 107 functions to limit the maximum angle that the vehicle doors can be opened. In other words, the door limiter 107 causes a vehicle door to be opened at various angles based on the levels of the warning flag (extreme/high/moderate/low, etc). For example, with reference to
It is also important to note that, according to the present invention, each door of the vehicle A can be either separately or jointly controlled through the controlling apparatus 100. Specifically, in the case of separate control, different degrees of resistances may respectively be imposed on the vehicle doors depending on the statuses of the relevant moving objects. As shown in
As for the joint control case, the controlling apparatus 100 according to the present invention may choose the most severe degree of resistance and open angle and apply to all the vehicle doors. More precisely, based on the above example, despite it will take the object D more time to enter the Zone and therefore there should be more lenience to the driver, the controlling apparatus 100 yet may still apply the maximum resistance to the front-left door and/or allow the front-left door to be opened only at 15-degree. That is, the controlling apparatus 100 will treat the front-left door as if it is the rear-right door in the case of joint control.
In step S2, the processing unit 104 analyzes the collected data to determine how much time it will take for the moving object to step into the Zone, and subsequently to decide whether to issue a warning flag. As mentioned, the Zone is defined as being equivalent to the width of the vehicle door plus a buffering distance. Similarly, the warning flag may be of different levels. If it is decided that the warning flag should be given, the processing unit 104 may further determine what level of the warning flag should be. Because the status of the moving object (e.g. approaching vehicles or pedestrians who are moving) is not constant, the level of the warning flag may also change from time to time.
Also shown in step S3 of
If the control is through imposing resistances to the vehicle doors, as shown in step S4, the programmable damper module 105, based on the warning flag and probably its level, imposes a resistance on the vehicle doors. As a result, the passenger/driver will not be able to open the vehicle door easily. Moreover, the degree of resistance imposed on the vehicle door is adjustable based on the level of the warning flag, for example, imposing a specific damping strength on the connected doors. And, as disclosed, the applied resistance serves as an alerting signal to the passenger/driver as well.
On the contrary, if the open angle of door is concerned, as shown in step S5, the door limiter 107 is adopted to, based on the issued warning flag and probably the level, retrain the maximum angle that the vehicle doors can be opened. Moreover, the angle is also adjustable based on the level of the warning flag. Thus, even if the passenger/driver is careless and unaware of the approaching vehicles/pedestrians, the existence of limiter 107 will be able to reduce the occurrence of accidents.
Lastly, in step S6, the controlling apparatus 100 does not control the vehicle doors at all.
Those skilled in the art will readily observe that numerous modifications and alterations of the device and method may be made while retaining the teachings of the invention. Accordingly, the above disclosure should be construed as limited only by the metes and bounds of the appended claims.
Number | Date | Country | Kind |
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201810345375.X | Apr 2018 | CN | national |
201820545153.8 | Apr 2018 | CN | national |