Abstract:
An electric power steering system includes a power supply, a driving motor for supplying mechanical power, and an electric power steering controller configured to control the driving motor and provide power to the driving motor. A boosting module is operatively coupled between the power supply and the electric power steering controller and is configured to boost a power output of the power supply, and supply the boosted power output to the electric power steering controller so that the driving motor receives a boosted power level.

Description:
CROSS-REFERENCE TO RELATED APPLICATIONS 
       [0001]    The present application claims priority to and benefit of Chinese Patent Application No. 2009-20260897.6 filed on Nov. 28, 2009, the entirety of which is hereby incorporated by reference. 
       BACKGROUND 
       [0002]    1. Technical Field 
         [0003]    The present disclosure relates to an electric power steering system, more particularly to the electric power steering system including a boosting module. 
         [0004]    2. Description of the Related Art 
         [0005]    With quick development of the economy, the electric vehicle and hybrid electric vehicle are used as the new traffic tools. Comparing with the traditional fuel vehicle, due to lots of power battery packs and different driving systems are carried, the mass of the vehicle is quite large, which may have high requirement of the electric power steering system. As shown in  FIG. 1 , the electric power steering system comprises a 12V power supply  1   a , an electric power steering controller  2   a  and a driving motor  3   a . The electric power steering controller  2   a  is electrically coupled with the 12V power supply  1   a  and the driving motor  3   a  respectively. However, when the vehicle is in large-angle steering, it is needed to increase the output power of the driving motor  3   a . Because the voltage is unable to increase and the value of the working current is restricted by the electric power steering controller  2   a  and the driving motor  3   a , the current keeps constant until increased to a predetermined value. So that, the output power of the driving motor  3   a  may be insufficient. That means the output torsion of the driving motor  3   a  may be insufficient. If the output power of the electric power steering system is insufficient, the drivers may be difficult to steer the steering wheel. 
       SUMMARY 
       [0006]    The present disclosure is directed to solve at least one of the problems in the prior art. 
         [0007]    Accordingly, the present disclosure provides an electric power steering system which includes a driving motor having sufficient output power and is easy for the drivers to steer the steering wheel, to overcome the problem of the electric power steering system in the prior art, which includes the driving motor having insufficient output power to cause assistance of the steering wheel insufficient and the drivers are difficult to steer the steering wheel. 
         [0008]    According to one embodiment of the present disclosure, an electric power steering system is disclosed which may comprise a supply power, an electric power steering controller for generating a control signal, a driving motor for supplying power according to the control signal of the electric power steering controller and a boosting module for boosting the power supply and supplying a boosted power to the electric power steering controller. The boosting module is respectively electrically coupled with the power supply and the electric power steering controller respectively. The electric power steering controller may be electrically coupled with the driving motor. 
         [0009]    An electric power steering system includes a power supply, a driving motor for supplying mechanical power, and an electric power steering controller configured to control the driving motor and provide power to the driving motor. A boosting module is operatively coupled between the power supply and the electric power steering controller and is configured to boost a power output of the power supply, and supply the boosted power output to the electric power steering controller so that the driving motor receives a boosted power level. 
         [0010]    According to an embodiment of the present disclosure, the boosting module may comprise a boosting drive unit for generating a driving signal and a boosting circuit unit for receiving the driving signal. The input end of the boosting circuit unit may be electrically coupled with the power supply and the output end of the boosting drive unit respectively. The output end of the boosting circuit unit may be electrically coupled with the input end of the electric power steering controller. The input end of the boosting drive unit may be electrically coupled with the power supply. 
         [0011]    According to an embodiment of the present disclosure, the driving signal may comprise a first driving signal and a second driving signal. The electric levels of the first driving signal and the second driving signal may be opposite at the same time. 
         [0012]    According to an embodiment of the present disclosure, the boosting driving unit may be UC3846 chip or TL494 chip. 
         [0013]    According to an embodiment of the present disclosure, the boosting circuit unit may comprise a first boosting unit which may include a first energy-storage component for boosting voltage, a first switch component for receiving a first driving signal to be conductive. The first energy-storage component may be electrically coupled with the power supply and the first switch component respectively. The first switch component may be electrically coupled with the boosting drive unit and the electric power steering controller respectively. 
         [0014]    According to an embodiment of the present disclosure, the boosting circuit unit may comprise a second boosting unit parallel to the first boosting unit. The second boosting unit may comprise a second energy-storage component for boosting the voltage and a second switch component for receiving the second driving signal to be conductive; the second energy-storage component is electrically coupled with the power supply and the second switch component respectively; the second switch component is electrically coupled with the boosting drive unit and the power steering controller respectively. 
         [0015]    According to an embodiment of the present disclosure, the first energy-storage component and the second energy-storage component may be inductance. 
         [0016]    According to an embodiment of the present disclosure, the first switch component and the second switch component may be MOSFET or IGBT. 
         [0017]    According to an embodiment of the present disclosure, the boosting scope of the boosting module is about 15V to 24V. 
         [0018]    As the boosting module is added to increase the voltage of the power supply, even if the current keeps constant, the voltage may be increased by the boosting module and the output power of the driving motor may be increased accordingly. Thereby, with the sufficient torsion from the driving motor, it is easy for the drivers to steer the steering wheel. 
     
    
     
       BRIEF DESCRIPTION OF THE DRAWINGS 
         [0019]    These and other aspects and advantages of the invention will become apparent and more readily appreciated from the following descriptions taken in conjunction with the drawings in which: 
           [0020]      FIG. 1  shows a schematic diagram of an electric power steering system in the prior art; 
           [0021]      FIG. 2  shows a schematic diagram of an electric power steering system according to an embodiment of the present disclosure; and 
           [0022]      FIG. 3  shows a circuit diagram of a boosting circuit unit according to an embodiment of the present disclosure. 
       
    
    
     DETAILED DESCRIPTION 
       [0023]    These and other aspects, solutions and advantages of the disclosure will become apparent and more readily appreciated from the following descriptions taken in conjunction with the drawings, and the embodiments should be considered as an explanation instead of limitation to the disclosure. 
         [0024]    As shown in  FIG. 2 , the present disclosure provides an electric power steering system comprising a power supply  1 , an electric power steering controller  2  for generating a control signal, a driving motor  3  for providing a power according to the control signal of the electric power steering controller  2  and a boosting module  4  for boosting the voltage of the power supply  1 . The boosting module  4  is electrically coupled with the power supply  1  and the electric power steering controller  2  respectively. The electric power steering controller  2  is electrically coupled with the driving motor  3 . Due to that the power supply for a vehicle is 12V, the voltage of the power supply for the electric power steering system is 12V, there is no need to add extra power supply. The boosting module  4  may increase the voltage of the power supply  1 . The output end of the boosting module  4  may be electrically coupled with the electric power steering controller  2  to provide sufficient voltage to the electric power steering controller  2 , so that, the electric power steering controller  2  may control the driving motor  3  according to the external driving signal that may supply sufficient output torsion to the steering system. 
         [0025]    According to an embodiment of the present disclosure, the boosting module  4  may include a boosting driving unit  41  for generating a driving signal and a boosting circuit unit  42  for receiving the driving signal to boost voltage. The input end of the boosting circuit unit  42  may be electrically coupled with the power supply  1  and the boosting drive unit  41  respectively. The output end of the boosting circuit unit  42  may be electrically coupled with the input end of the electric power steering controller  2 . The input end of the boosting drive unit  41  may be electrically coupled with the power supply  1 . 
         [0026]    According to an embodiment of the present disclosure, the driving signal may comprise a first driving signal and a second driving signal. The electric levels of the first driving signal and the second driving signal may be opposite at the same time. The boosting drive unit  41  may be a Current Mode PWM Controller, such as a UC3846 chip available from Texas Instruments or may be a Pulse Width Modulation Controller, such as a TL 494 chip, also available from Texas Instruments. Meanwhile, the boosting drive unit  41  may generate a driving signal. The driving signal may be converted by an inverter to form two kinds of driving signals with opposite electric levels at the same time. 
         [0027]    According to an embodiment of the present disclosure, the boosting circuit unit  42  may comprise a first boosting unit which may include a first energy-storage component for boosting the voltage and a first switch component for receiving a first driving signal to be conductive. The first energy-storage component may be electrically coupled with the power supply  1  and the first switch component respectively. The first switch component may be electrically coupled with the boosting drive unit  41  and the electric power steering controller  2  respectively. When the first switch component is conductive, the first energy-storage component may store energy; when the first switch component is cut off, the first energy-storage component may generate electricity, that is the first energy-storage component and the power supply  1  may together supply voltage to the electric power steering controller  2  to increase the output voltage thereof. 
         [0028]    According to an embodiment of the present disclosure, the boosting circuit unit  42  may further comprise a second boosting unit parallel to the first boosting unit. The second boosting unit may comprise a second energy-storage component for boosting voltage, a second switch component for receiving a second driving signal to be conductive. The second energy-storage component may be electrically coupled with the power supply  1  and the second switch component respectively. The second switch component may be electrically coupled with the boosting drive unit  41  and the electric power steering controller  2  respectively. The driving signals provided by the boosting drive unit  41  include two kinds of driving signals with opposite electric levels at the same time. When the first driving signal is at a high electric level, the first switch component may be conductive, and the first energy-storage component may store energy. When the second drive signal is at a low electric level, the second switch component may be cut off, and the second energy-storage component may generate electricity. That means, the first switch component and the second switch component may be conductive alternatively, then the first energy-storage component and the second energy-storage component may store energy and generate electricity alternatively, thereby the first energy-storage component and the second energy-storage component may be not broken easily. In the embodiment of the present disclosure, the first energy-storage component may be a first inductance L 1  and the second energy-storage component may be a second inductance L 2 . 
         [0029]    According to an embodiment of the present disclosure, the first switch unit and the second switch unit may be a MOSFET or IGBT, or other switching device. The first switch unit and the second switch unit may be a MOSFET or a IGBT, and also one may be a MOSFET, and the other may be a IGBT, only need that the driving signal received by the boosting drive unit  41  may be conductive alternatively. 
         [0030]    As shown in  FIG. 3 , a circuit diagram of the boosting circuit unit  42  is shown according to an embodiment of the present disclosure. The first switch unit of the present disclosure may be the first MOSFET Q 1 . The second switch unit may be the second MOSFET Q 2 . The boosting circuit unit  42  may comprise a first inductance L 1 , the input end of the first inductance L 1  may be electrically coupled with the power supply Vin with the voltage 12V. The output end of the first inductance L 1  may be electrically coupled with the drain electrode of the first MOSFET Q 1  and the anode electrode of the diode D 1 . The gate electrode of the first MOSFET Q 1  may be electrically coupled with the output end of the boosting drive unit  41 , to receive the first driving signal from the boosting drive unit  41 . The source electrode of the first MOSFET Q 1  may be coupled to ground. The increased output voltage Vout may be outputted from the cathode electrode of the diode D 1 , supplied to the electric power steering controller  2 . The boosting circuit unit  42  may further comprise a second inductance L 2 . The input end of the second inductance L 2  may be electrically coupled with the input end of the first inductance L 1 , that is, coupled with the power supply Vin with the voltage 12V. The output end of the second inductance L 2  may be electrically coupled with the drain electrode of the second MOSFET Q 2  and the anode electrode of the diode D 2 . The gate electrode of the second MOSFET Q 2  may be electrically coupled with the output end of the boosting drive unit  41 , to receive the first driving signal of the boosting drive unit  41 . The source electrode of the second MOSFET Q 2  may be coupled to ground. The cathode electrode of the diode D 2  may be electrically coupled with the cathode electrode of the diode D 1 , together to output the increased output voltage Vout. When the first MOSFET Q 1  is conductive, the first inductance L 1  may store energy, the second MOSFET Q 2  may be cut off, the second inductance L 2  may generate electricity and the increased output voltage Vout may be outputted via the diode D 2 . Due to that the output voltage Vin and the second inductance L 2  may simultaneously supply voltage, the output voltage Vout is larger than the input voltage Vin. Meanwhile, when the second MOSFET Q 2  is conductive, the second inductance L 2  may store energy, the first MOSFET Q 1  may be cut off, the first inductance L 1  may generate electricity, thereby the first inductance L 1  and the input voltage Vin may simultaneously supply voltage. 
         [0031]    The failure of the first boosting unit of the boosting circuit unit  42  and the second boosting unit may cause an instance of no output. In the embodiment of the present disclosure, the input voltage Vin of the boosting circuit  42  may be further electrically coupled with the anode electrodes of the diodes D 3  and D 4  respectively; the cathode electrodes of the diodes D 3  and D 4  may be electrically coupled with the output voltage Vout. Due to the diodes D 3  and D 4  may not be used as the function of boosting voltage, just as ensuring the output, the output voltage Vout may be equal to the input voltage Vin. 
         [0032]    At the moment of supplying electricity, due to the existence of the diodes D 3  and D 4 , the output voltage Vout may be equal to the input voltage Vin, that is 12v. During the normal operation of the first boosting unit and second boosting unit, the output voltage Vout may be equal to the input voltage Vin/(1−D), wherein D is the duty ratio of the driving signal from the boosting drive unit  41 , the range of D may be about 20% to 50% and the boosting voltage range of the boosting module may be about 15V to 24V. 
         [0033]    In the embodiment, the electric power steering system may include a boosting module  4  for increasing the output voltage of the power supply  1 . If the electric current keeps constant, the voltage may be increased to increase the output power of the driving motor  3 . That means, the driving motor  3  may supply sufficient torsion to the steering system and thereby it is easy for drivers to steer the steering wheel. 
         [0034]    Although explanatory embodiments have been shown and described, it would be appreciated by those skilled in the art that changes, alternatives, and modifications can be made in the embodiments without departing from spirit and principles of the disclosure. Such changes, alternatives, and modifications all fall into the scope of the claims and their equivalents.