CN106926898A - A kind of line traffic control hydraulic steering system - Google Patents
A kind of line traffic control hydraulic steering system Download PDFInfo
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- CN106926898A CN106926898A CN201710291027.4A CN201710291027A CN106926898A CN 106926898 A CN106926898 A CN 106926898A CN 201710291027 A CN201710291027 A CN 201710291027A CN 106926898 A CN106926898 A CN 106926898A
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- steering
- master cylinder
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- steering power
- switch
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B62—LAND VEHICLES FOR TRAVELLING OTHERWISE THAN ON RAILS
- B62D—MOTOR VEHICLES; TRAILERS
- B62D5/00—Power-assisted or power-driven steering
- B62D5/06—Power-assisted or power-driven steering fluid, i.e. using a pressurised fluid for most or all the force required for steering a vehicle
- B62D5/09—Power-assisted or power-driven steering fluid, i.e. using a pressurised fluid for most or all the force required for steering a vehicle characterised by means for actuating valves
- B62D5/091—Hydraulic steer-by-wire systems, e.g. the valve being actuated by an electric motor
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B62—LAND VEHICLES FOR TRAVELLING OTHERWISE THAN ON RAILS
- B62D—MOTOR VEHICLES; TRAILERS
- B62D5/00—Power-assisted or power-driven steering
- B62D5/06—Power-assisted or power-driven steering fluid, i.e. using a pressurised fluid for most or all the force required for steering a vehicle
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- Engineering & Computer Science (AREA)
- Chemical & Material Sciences (AREA)
- Combustion & Propulsion (AREA)
- Transportation (AREA)
- Mechanical Engineering (AREA)
- Steering Control In Accordance With Driving Conditions (AREA)
Abstract
The invention discloses a kind of line traffic control hydraulic steering system, the problems such as overcoming stability difference when increase at present the next high cost of road feel motor belt motor with steering power-off failure, it includes steering wheel unit, steering response analogue unit, electronic control unit and turns to execution unit;Steering wheel unit is simulated the hydraulic fluid port of master cylinder first of master cylinder, the hydraulic fluid port of master cylinder second, first switch magnetic valve, second switch magnetic valve, the 3rd switch electromagnetic valve and is connected with the Single port and steering response analogue unit pipeline of the 4th switch electromagnetic valve by steering response;Steering response analogue unit is connected by the oil inlet of steering power master cylinder first on the 3rd switch electromagnetic valve, the another port of the 4th switch electromagnetic valve, the first high-speed switch valve, the Single port of the second high-speed switch valve, steering power master cylinder with the oil inlet of steering power master cylinder second on steering power master cylinder and steering execution unit pipeline;Electronic control unit is connected with steering wheel unit, steering response analogue unit with execution unit electric wire is turned to respectively.
Description
Technical field
The invention belongs to a kind of transfer of automobile steering system technical field.More specifically, the present invention is related to
And a kind of line traffic control hydraulic steering system.
Background technology
The steering of automobile is an important component in running car system, the function of steering be according to
The wish of driver controls the travel direction of automobile.The steering of initial automobile is usually mechanical steering, and it owns
Force transmission element be all mechanical, and with the muscle power of driver be used as turn to power source.Due to mechanical steering system structural
Excessively complicated and required when turning to driver's hand-power is larger, and the load to driver is higher, so being gradually eliminated.With
Automotive engineering is updated, and power steering system is more laborsaving due to its handling maneuver, gradually enter into the visual field of people.At present
Widely used in power steering system is electro-hydraulic servo steering system and electric boosting steering system.It is above-mentioned both just
Energy required during work is often turned to, only sub-fraction is provided by driver, and major part is carried by hydraulic coupling or motor torque
For, but above two steering is booster type steering due to it, it is impossible to meet at present it is vehicle intellectualized with nobody
Active steering and the automatic parking requirement of driving.
Therefore, people have started the exploration and research to wire-controlled steering system, current automobile steer-by-wire system is usual
Performed three major parts of assembly and master controller and constituted by steering wheel assembly, steering.Direction is used wherein in steering wheel assembly
Disk rotary angle transmitter and torque sensor, carry out real-time monitoring steering wheel situation, but its torque sensor price for using it is universal compared with
It is expensive, increased the cost of a whole set of steering.Due to no longer being mechanically connected between steering wheel and deflecting roller in wire-controlled steering system,
So needing to apply road feel information simulation to steering wheel, driver is fed back to this.Existing wire-controlled steering system typically leads to
The simulation torque of road resistance during producing simulation to turn to is crossed using a road feel motor, but due to increased one in its system
Road feel motor, increased the cost of system, and road feel motor is often operated in load condition, can reduce its service life, and
Realize road feel accurate simulation satisfy the need electrification machine performance requirement it is also higher, steering drag is to sum up realized by road feel motor
Simulate its economy poor.And the bi-motor that current wire-controlled steering system is generally combined using road feel motor and steering motor
Pattern, the wire-controlled steering system of most of bi-motor patterns its in power-off failure, there is the phenomenon for turning to failure, this will harm
To the driving safety of automobile.
Such as China Patent Publication No. CN105128929A, date of publication on December 9th, 2015, patent of invention it is entitled
" a kind of intelligent line traffic control electric hydraulic steering system ", the patent of invention discloses a kind of intelligentized automobile line traffic control electric hydraulic steering system
And its control method, it is simulated road feel by road feel motor and makes steering wheel return just, by steering motor and hydraulic steering gear
Realize the steering of wheel.But the system has the following disadvantages:Due to increased road feel motor, the cost of system is increased;And road
Electrification machine is often operated in load condition, can reduce its service life, and to realize that the accurate simulation of road feel is satisfied the need electrification machine
Performance requirement it is also higher, economy is bad;The system is turned by the torque sensor on steering wheel come monitoring direction disk
Square, but because the price of torque sensor is more expensive compared with general pull pressure sensor, its volume production cost can increase;And work as
During steering motor power-off failure, the steering occurs the phenomenon for turning to failure, and steering stability is bad.
The content of the invention
The technical problems to be solved by the invention be overcome in existing steering-by-wire technology due to increasing road feel motor
Stability is poor during relatively costly, the steering power-off failure for bringing, steering response simulation is not accurately accurate with actual steering enough
A kind of degree problem not high, there is provided line traffic control hydraulic steering system.
In order to solve the above technical problems, the present invention adopts the following technical scheme that realization:A kind of described line traffic control hydraulic pressure
Steering includes steering wheel unit, steering response analogue unit, electronic control unit and turns to execution unit;
Described steering wheel unit includes that steering response simulates master cylinder;
Described steering response analogue unit includes first switch magnetic valve, second switch magnetic valve, the 3rd switch electromagnetism
Valve and the 4th switch electromagnetic valve;
Described steering execution unit includes the first high-speed switch valve, the second high-speed switch valve and steering power master cylinder;
Described steering wheel unit simulates the hydraulic fluid port of master cylinder first, steering response simulation master cylinder on master cylinder by steering response
On the hydraulic fluid port of master cylinder second, the Single port of first switch magnetic valve, the Single port of second switch magnetic valve, the 3rd switch electromagnetic valve
Single port be connected with the Single port and steering response analogue unit fluid pressure line of the 4th switch electromagnetic valve;Steering response simulation is single
Another port, the another port of the 4th switch electromagnetic valve, one end of the first high-speed switch valve that unit passes through the 3rd switch electromagnetic valve
The oil inlet of steering power master cylinder first and steering power master on mouth, the Single port of the second high-speed switch valve, steering power master cylinder
The oil inlet of steering power master cylinder second and the fluid pressure line connection of steering execution unit on cylinder;Electronic control unit respectively and turn to
Disk unit, steering response analogue unit are connected with execution unit electric wire is turned to.
Steering wheel unit described in technical scheme also includes steering wheel, steering wheel angle sensor, gear, tooth bar, the
One pull pressure sensor and steering spindle;Described steering wheel is arranged on the upper end of steering spindle to be fixedly connected, and gear is arranged on and turns
To the lower end of axle to be fixedly connected, steering wheel angle sensor is arranged in steering spindle, wheel and rack engagement connection, gear
Axis of rotation is intersected vertically with the longitudinally asymmetric face of tooth bar, and the left end of the right-hand member of tooth bar and the first pull pressure sensor is fixed and connected
Connect, the right-hand member of the first pull pressure sensor is fixedly connected with the left end of steering response simulation master cylinder.
Steering response simulation master cylinder described in technical scheme includes First piston bar, the first spring, master cylinder piston, second
Spring, master cylinder body and second piston bar;Described master cylinder piston is arranged in master cylinder body, the right-hand member of First piston bar and master
The center of cylinder piston left side is fixedly connected, and the left end of second piston bar is fixed with the center of master cylinder piston right side and connected
Connect, and sealing ring is installed between First piston bar, master cylinder piston and second piston bar and master cylinder body, the first spring and
Two springs are sleeved on First piston bar and second piston bar successively, side joint in the left cylinder wall of the first spring left end and master cylinder body
Connection is touched, the left side contact of the first spring right-hand member and master cylinder piston is connected, the left end of second spring and the right-hand member of master cylinder piston
Face contact connection, the right-hand member of second spring is connected with the right cylinder wall interior side contacts of master cylinder body, First piston bar, second piston
Bar, master cylinder piston and master cylinder body rotation conllinear.
First piston bar and second piston bar described in technical scheme are the identical straight rod member of cross sectional dimensions;Institute
The first spring stated is with second spring using the identical springs with same elastic characteristic, and the first spring is initial with second spring
Length is identical;The two hydraulic fluid ports i.e. hydraulic fluid port of master cylinder first (43) second hydraulic fluid port of master cylinder, master cylinder are provided with described master cylinder body
One hydraulic fluid port is located at the right-hand member of master cylinder body, i.e., on the master cylinder body in II chamber of steering response simulation master cylinder, the oil of master cylinder second
Mouth is located at the left end of master cylinder body, i.e., on the master cylinder body in I chamber of steering response simulation master cylinder.
Steering response analogue unit described in technical scheme also include the first two-bit triplet solenoid directional control valve, check valve,
Second two-bit triplet solenoid directional control valve and linear voltage regulation valve;The Single port of described first switch magnetic valve and the 3rd switch electromagnetism
The Single port of valve is connected using fluid pressure line, the P of the other end of first switch magnetic valve and the first two-bit triplet solenoid directional control valve
Mouth is using fluid pressure line connection, A mouthfuls of the first two-bit triplet solenoid directional control valve and the oil-out of check valve and the second two-bit triplet
The B ports of solenoid directional control valve are simultaneously using fluid pressure line connection;B mouthfuls and linear voltage regulation valve of the first two-bit triplet solenoid directional control valve
Single port and the second two-bit triplet solenoid directional control valve A ports simultaneously using fluid pressure line connection, the oil inlet of check valve with
Fuel tank (28) is connected using fluid pressure line, and the other end of linear voltage regulation valve is connected with fuel tank using fluid pressure line;Described second
The Single port of switch electromagnetic valve is connected with the Single port of the 4th switch electromagnetic valve using fluid pressure line, second switch magnetic valve it is another
Single port is connected with P mouthfuls of the second two-bit triplet solenoid directional control valve using fluid pressure line.
Electronic control unit described in technical scheme is held with steering wheel unit, steering response analogue unit and steering respectively
Row unit electric wire is connected:Described electronic control unit and steering wheel angle sensor, the first pull pressure sensor, first
It is switch electromagnetic valve, the first two-bit triplet solenoid directional control valve, second switch magnetic valve, the second two-bit triplet solenoid directional control valve, linear
Pressure regulator valve, the 3rd switch electromagnetic valve, the 4th switch electromagnetic valve, the first high-speed switch valve, the second high-speed switch valve, the 5th switch electricity
Magnet valve, the 6th switch electromagnetic valve, the second pull pressure sensor, right turn wheel rotary angle transmitter and left steering wheel rotary angle transmitter
Terminals are adopted and run wires to.
Steering execution unit described in technical scheme also includes that accumulator, overflow valve, motor, hydraulic pump, the 5th open
Powered-down magnet valve, fuel tank, the 6th switch electromagnetic valve, the second pull pressure sensor, push rod, Automobile Right deflecting roller, right turn wheel corner
Sensor, track rod, left steering wheel rotary angle transmitter and automobile left steering wheel;One end of the first described high-speed switch valve
Mouthful be connected using fluid pressure line with the oil inlet of steering power master cylinder second on steering power master cylinder, the first high-speed switch valve it is another
One end is connected with the oil-out of hydraulic pump using fluid pressure line;On the Single port and steering power master cylinder of the second high-speed switch valve
The oil inlet of steering power master cylinder first is using fluid pressure line connection, the other end of the second high-speed switch valve and the oil-out of hydraulic pump
Connected using fluid pressure line;The motor shaft of described motor is connected with the input shaft end of hydraulic pump, the oil inlet of hydraulic pump
It is connected with fuel tank using fluid pressure line, the oil-out of hydraulic pump is using fluid pressure line and oil-feed port and the accumulator of overflow valve
Connection, the fuel-displaced port of overflow valve is connected with fuel tank using fluid pressure line.
One end of described steering power master cylinder is connected with vehicle frame or monocoque body ball pivot, steering power master cylinder it is another
End is that the right-hand member of steering power main cylinder piston-rod is connected with the left end of the second pull pressure sensor, the second pull pressure sensor
Right-hand member is fixedly connected with the left end of push rod, and right-hand member and the track rod of push rod are hinged, and the steering on steering power master cylinder is moved
The oil-out of cylinder first of advocating is connected with the Single port of the 6th switch electromagnetic valve using fluid pressure line, and steering power master cylinder second is fuel-displaced
Mouth is connected with the Single port of the 5th switch electromagnetic valve using fluid pressure line, and the another port of the 5th switch electromagnetic valve switchs with the 6th
The another port of magnetic valve is connected with fuel tank using fluid pressure line.Track rod is located in steering axle of automobile, turns to horizontal drawing
The left and right end of bar is hinged by steeraxle mechanical driving part and automobile left steering wheel with Automobile Right deflecting roller;Right turn is rotated
Angle transducer is arranged on Automobile Right deflecting roller, and left steering wheel rotary angle transmitter is arranged on automobile left steering wheel.
Steering power master cylinder described in technical scheme includes steering power master cylinder body, steering power master cylinder piston, turns
To power main cylinder piston-rod.Described steering power master cylinder piston is arranged in steering power master cylinder body, steering power master cylinder
Piston rod is arranged in the steering power master cylinder body on the right side of steering power master cylinder piston, the left end of steering power main cylinder piston-rod
Center with steering power master cylinder piston right side is fixedly connected, steering power master cylinder piston, power main cylinder piston-rod and turn
To between power master cylinder body to be slidably matched, steering power main cylinder piston-rod, steering power master cylinder piston and steering power master
Sealing ring, the revolution of steering power master cylinder piston, power main cylinder piston-rod and steering power master cylinder body are housed between cylinder cylinder body
Axis collinear, the inner chamber of steering power master cylinder is diverted power master cylinder piston and is divided into I chamber and II chamber from left to right;Described steering
Two oil inlets, the respectively oil inlet of steering power master cylinder first and steering power master cylinder second are provided with power master cylinder body
Oil inlet, the oil inlet of steering power master cylinder first is located in I chamber cylinder body of steering power master cylinder, the oil-feed of steering power master cylinder second
Mouth is located in II chamber cylinder body of steering power master cylinder;Two oil-outs are provided with described steering power master cylinder body, respectively
It is the oil-out of steering power master cylinder first and the oil-out of steering power master cylinder second, the oil-out of steering power master cylinder first is located at and turns
To in I chamber cylinder body of power master cylinder, the oil-out of steering power master cylinder second is located in II chamber cylinder body of steering power master cylinder.
Compared with prior art the beneficial effects of the invention are as follows:
1. a kind of line traffic control hydraulic steering system of the present invention eliminates traditional wire-controlled steering system to simulate road feel
Road feel motor, and realized using a linear voltage regulation valve turn to when road feel accurately simulate, due to eliminating road feel motor,
The cost of steering is reduced, and the service life of steering is more long, better economy.
2. when a kind of line traffic control hydraulic steering system of the present invention using a linear voltage regulation valve due to realizing turning to
Road feel accurately simulate, steering work when the pressure and flow of linear voltage regulation valve are entered by electronic control unit (ECU)
Row control, makes linear voltage regulation valve that different damping characteristics are presented, so as to produce the simulation of various road feels, and by using two
Individual pull pressure sensor, can realize the feedback control of road feel simulation, therefore this steering can obtain more accurate road feel
Simulation.
3. a kind of line traffic control hydraulic steering system of the present invention passes through electronic control unit (ECU) to two high-speed switch valves
Carry out PWM controls, so as to realize the precise control to flow, so the system be ensure that when turning to steering rapidity and
Accuracy;And a steering wheel angle sensor is separately installed with the deflecting roller of vehicle right and left two, it can realize deflecting roller
The feedback control of corner, so as to increase steering precision.
4. a kind of line traffic control hydraulic steering system of the present invention can not only meet the power of existing driver's control
Formula steering situation, can also meet the steering requirement when DAS line traffic controls active steering and automatic parking operating mode of intelligent vehicle, and it applies model
Enclose relatively broad, development prospect is preferable.
5. a kind of line traffic control hydraulic steering system of the present invention is when its steering power-off failure, all magnetic valves by
Original position is revert in the effect of spring force, now driver can realize steering in emergency circumstances by rotating steering wheel, its
The stability of steering is preferable.
6. a kind of line traffic control hydraulic steering system of the present invention instead of traditional line traffic control by using pull pressure sensor
Steering-wheel torque sensor in steering, greatly reduces the production cost of steering, its better economy.
7. a kind of line traffic control hydraulic steering system of the present invention can by using switch electromagnetic valve in normal work
The full decoupling of steering wheel and steered wheel is realized, so that greater impact load of the steered wheel during normal direction of rotation will not
Be transferred on steering wheel, contribute to alleviate driver tension, and lifted comfortableness of the driver in braking procedure with it is steady
It is qualitative.
8. a kind of line traffic control hydraulic steering system of the present invention due to its steering spindle it is shorter, and realize steering wheel with turn
To the decoupling of wheel, injury of the automobile in shock rear steering axle to driver is smaller, so as to improve travel safety.
9. in the case of normal direction of rotation, pilot control is turned to and completed a kind of line traffic control hydraulic steering system of the present invention
Afterwards, steering wheel has back positive interaction, saves the muscle power of driver, make steering more facilitate with it is quick.
Brief description of the drawings
The present invention is further illustrated below in conjunction with the accompanying drawings:
Fig. 1 is a kind of schematic diagram of line traffic control hydraulic steering system structure composition of the present invention;
Fig. 2-1 is the port of the first two-bit triplet solenoid directional control valve in a kind of line traffic control hydraulic steering system of the present invention
Schematic diagram;
Fig. 2-2 is the port of the second two-bit triplet solenoid directional control valve in a kind of line traffic control hydraulic steering system of the present invention
Schematic diagram;
Fig. 3 be a kind of line traffic control hydraulic steering system of the present invention normal direction of rotation in the case of to the left steering situation it is shown below
It is intended to;
Fig. 4 be a kind of line traffic control hydraulic steering system of the present invention normal direction of rotation in the case of to the left turn to after the completion of car
Schematic diagram under the positive operating mode of samsara;
Fig. 5 be a kind of line traffic control hydraulic steering system of the present invention normal direction of rotation in the case of to the right steering situation it is shown below
It is intended to;
Fig. 6 be a kind of line traffic control hydraulic steering system of the present invention normal direction of rotation in the case of to the right turn to after the completion of car
Schematic diagram under the positive operating mode of samsara;
Fig. 7 be a kind of line traffic control hydraulic steering system of the present invention automatic parking in the case of to the left steering situation it is shown below
It is intended to;
Fig. 8 be a kind of line traffic control hydraulic steering system of the present invention automatic parking in the case of to the right steering situation it is shown below
It is intended to;
Fig. 9 be a kind of line traffic control hydraulic steering system of the present invention DAS line traffic control active steerings in the case of turn to the left
Schematic diagram under operating mode;
Figure 10 be a kind of line traffic control hydraulic steering system of the present invention DAS line traffic control active steerings in the case of turn to the right
Schematic diagram under operating mode;
Figure 11 turns to work to the left when being a kind of steering power-off failure of line traffic control hydraulic steering system of the present invention
Schematic diagram under condition;
Figure 12 turns to the right work when being a kind of steering power-off failure of line traffic control hydraulic steering system of the present invention
Schematic diagram under condition;
In figure:1. steering wheel, 2. steering wheel angle sensor, 3. gear, 4. tooth bar, 5. the first pull pressure sensor, 6.
First piston bar, 7. the first spring, 8. master cylinder piston, 9. second spring, 10. steering response simulation master cylinder, 11. master cylinder bodies,
12. second piston bars, 13. first switch magnetic valves, 14. first two-bit triplet solenoid directional control valves, 15. check valves, 16. second open
Powered-down magnet valve, 17. second two-bit triplet solenoid directional control valves, 18. linear voltage regulation valves, 19. the 3rd switch electromagnetic valves, 20. the 4th open
Powered-down magnet valve, 21. first high-speed switch valves, 22. second high-speed switch valves, 23. accumulators, 24. overflow valves, 25. motor,
26. hydraulic pumps, 27. the 5th switch electromagnetic valves, 28. fuel tanks, 29. the 6th switch electromagnetic valves, 30. steering power master cylinder bodies, 31.
Steering power master cylinder, 32. steering power master cylinder pistons, 33. steering power main cylinder piston-rods, 34. second pull pressure sensor,
35. push rods, 36. Automobile Right deflecting rollers, 37. right turn wheel rotary angle transmitters, 38. track rods, 39. left steering wheel corners are passed
Sensor, 40. automobile left steering wheels, 41. electronic control units (ECU), 42. steering spindles, 43. the first hydraulic fluid ports of master cylinder, 44. master cylinders
Two hydraulic fluid ports, 45. the first oil inlets of steering power master cylinder, 46. the second oil inlets of steering power master cylinder, 47. steering power master cylinders
One oil-out, 48. the second oil-outs of steering power master cylinder.
Specific embodiment
The present invention is explained in detail below in conjunction with the accompanying drawings:
A kind of line traffic control hydraulic steering system of the present invention includes steering wheel unit A, steering response analogue unit B, electricity
Sub-control unit (ECU) C and steering execution unit D.
Described steering wheel unit A includes steering wheel 1, steering wheel angle sensor 2, gear 3, tooth bar 4, the first pressure
Sensor 5, steering response simulates master cylinder 10 and steering spindle 42.
Described steering wheel 1 is fixedly connected with the upper end of steering spindle 42.The lower end of steering spindle 42 is fixedly connected with gear 3,
Connected mode uses key, spline or other mechanical connecting structures, so as to realize that described steering spindle 42 is rotated with moving gear 3.
Described steering wheel angle sensor 2 is arranged in steering spindle 42, and steering wheel angle sensor 2 uses photoelectric coding
Formula rotary angle transmitter, the function of steering wheel angle sensor 2 is that the real-time angular signal of steering wheel 1 is passed into Electronic Control list
Unit (ECU) 41.
Described gear 3 is connected with the engagement of tooth bar 4, the axis of rotation of gear 3 phase vertical with the longitudinally asymmetric face of tooth bar 4
Hand over, the rotation of gear 3 is changed into the linear motion of tooth bar 4.
The right-hand member of described tooth bar 4 is fixedly connected with the left end of the first pull pressure sensor 5, it is ensured that the power suffered by tooth bar 4
Can be delivered in the first pull pressure sensor 5, and tooth bar 4 can drive the first pull pressure sensor 5 to carry out side-to-side movement.
The first described pull pressure sensor 5 uses the function of resistance strain type sensor, the first pull pressure sensor 5 to be
Force signals suffered by tooth bar 4 and First piston bar 6 are passed into electronic control unit (ECU) 41, by Electronic Control list
The internal calculation of unit (ECU) 41, obtains the torque value size suffered by real-time steering spindle 42, instead of traditional wire-controlled steering system
In steering spindle torque sensor, so as to save production cost.
The right-hand member of the first described pull pressure sensor 5 simulates a left side for the First piston bar 6 in master cylinder 10 with steering response
End is fixedly connected, it is ensured that the first pull pressure sensor 5 can drive the First piston bar 6 to carry out side-to-side movement.
Described steering response simulation master cylinder 10 includes First piston bar 6, the first spring 7, master cylinder piston 8, second spring
9th, master cylinder body 11 and second piston bar 12.
Described master cylinder piston 8 is arranged in master cylinder body 11, the right-hand member of First piston bar 6 and the left end of master cylinder piston 8
The center in face is fixedly connected, and connected mode can use flange connection, screw thread or other conventional machinery attachment structures, and first
Sealing ring is housed, so as to realize sealing function between piston rod 6, master cylinder piston 8 and master cylinder body 11.
The left end of described second piston bar 12 is fixedly connected with the center of the right side of master cylinder piston 8, connected mode
Can be connected using flange, be threadedly coupled or other conventional machinery attachment structures, and in second piston bar 12, the and of master cylinder piston 8
Some sealing rings are housed, so as to realize sealing function between master cylinder body 11.
The master cylinder piston 8 that described steering response simulation master cylinder 10 is simulated in master cylinder 10 positioned at steering response is from left to right
It is divided into I, II liang of chamber.
The first described spring 7 is located in I chamber of steering response simulation master cylinder 10, and second spring 9 is located at steering response mould
Intend in II chamber of master cylinder 10.First spring 7 and second spring 9 are using the identical springs with same elastic characteristic, and two springs
Initial length it is identical, so when master cylinder piston 8 be located at steering response simulate master cylinder 10 centre position when, the He of the first spring 7
Second spring 9 is equal to the amount of force of master cylinder piston 8, in the opposite direction.
Described First piston bar 6 is located in I chamber of steering response simulation master cylinder 10, and second piston bar 12 is located at and turns to road
In II chamber of sense simulation master cylinder 10.First piston bar 6 is the identical straight rod member of sectional dimension with second piston bar 12.
First spring 7 is sleeved in First piston bar 6 and second piston bar 12 successively with second spring 9, and the first spring 7 is left
End is connected with the left cylinder wall interior side contacts of master cylinder body 11, and the right-hand member of the first spring 7 is connected with the left side contact of master cylinder piston 8,
The right side contact of the left end of second spring 9 and master cylinder piston 8 be connected, the right-hand member of second spring 9 and the right cylinder of master cylinder body 11
The connection of wall interior side contacts, First piston bar 6, second piston bar 12, master cylinder piston 8 and the rotation conllinear of master cylinder body 11.
Two hydraulic fluid ports, the first hydraulic fluid port of master cylinder 43 are provided with master cylinder body 11 in described steering response simulation master cylinder 10
Positioned at the right-hand member of master cylinder body 11, i.e., on the master cylinder body 11 in II chamber of steering response simulation master cylinder 10, the oil of master cylinder second
Mouth 44 is located at the left end of master cylinder body 11, i.e., on the master cylinder body 11 in I chamber of steering response simulation master cylinder 10.Steering response
The first hydraulic fluid port of master cylinder 43 and the first switch magnetic valve in steering response analogue unit B in simulation master cylinder 10 on master cylinder body 11
13 Single port is connected using fluid pressure line, the second hydraulic fluid port of master cylinder 44 in steering response simulation master cylinder 10 on master cylinder body 11 with
The Single port of the second switch magnetic valve 16 in steering response analogue unit B is connected using fluid pressure line.
Described steering response analogue unit B include first switch magnetic valve 13, the first two-bit triplet solenoid directional control valve 14,
Check valve 15, second switch magnetic valve 16, the second two-bit triplet solenoid directional control valve 17, the switch electromagnetism of linear voltage regulation valve the 18, the 3rd
The switch electromagnetic valve 20 of valve 19 and the 4th.
Wherein:First switch magnetic valve 13 and second switch magnetic valve 16 are normally closed switch magnetic valve, first switch electromagnetism
Valve 13 is identical with the structure of second switch magnetic valve 16, and it is opened in the case of energization, is closed in the event of a power failure;It is linear to adjust
Pressure valve 18 is normally closed solenoid valve, and it is opened in the case of energization, closes in the event of a power failure;The He of 3rd switch electromagnetic valve 19
4th switch electromagnetic valve 20 is normal open switch magnetic valve, and the 3rd switch electromagnetic valve 19 is identical with the structure of the 4th switch electromagnetic valve 20,
Closed in the case of energization, opened in the event of a power failure.Wherein:Feelings of the first two-bit triplet solenoid directional control valve 14 in power-off
Under condition, its P mouthfuls is connected with A mouthfuls, and B mouthfuls blocks, and in the case of energization, its P mouthfuls is connected with B mouthfuls, and A mouthfuls blocks (such as Fig. 2-1
It is shown);In the event of a power failure, its P mouthfuls is connected second two-bit triplet solenoid directional control valve 17 with A mouthfuls, and B mouthfuls blocks, and is being powered
In the case of, its P mouthfuls is connected with B mouthfuls, and A mouthfuls blocks (as shown in Fig. 2-2);First two-bit triplet solenoid directional control valve 14 and second
The structure of two-bit triplet solenoid directional control valve 17 is identical.
The first hydraulic fluid port of master cylinder 43 on described first switch magnetic valve 13 and steering response simulation master cylinder 10 be connected that
Single port is connected with the Single port of the 3rd switch electromagnetic valve 19 using fluid pressure line simultaneously.The other end of first switch magnetic valve 13
P mouthfuls with the first two-bit triplet solenoid directional control valve 14 is connected using fluid pressure line.
The second hydraulic fluid port of master cylinder 44 on described second switch magnetic valve 16 and steering response simulation master cylinder 10 be connected that
Single port is connected with the Single port of the 4th switch electromagnetic valve 20 using fluid pressure line simultaneously.The other end of second switch magnetic valve 16
Mouth is connected with P mouthfuls of the second two-bit triplet solenoid directional control valve 17 using fluid pressure line.
Described A mouthfuls of the first two-bit triplet solenoid directional control valve 14 and the oil-out of check valve 15 and the second two-bit triplet electricity
The B ports of magnetic reversal valve 17 are simultaneously using fluid pressure line connection;B mouthfuls and linear voltage regulation of the first two-bit triplet solenoid directional control valve 14
The A ports of the Single port of valve 18 and the second two-bit triplet solenoid directional control valve 17 are simultaneously using fluid pressure line connection.
The oil inlet of described check valve 15 is connected with fuel tank 28 using fluid pressure line.The other end of linear voltage regulation valve 18 with
Fuel tank 28 is connected using fluid pressure line.
The control mode of described linear voltage regulation valve 18 is:Described electronic control unit (ECU) 41 is by controlling its defeated
The size of the electric current for going out, drives linear pressure regulator valve to produce corresponding electromagnetic force, so as to control the pressure and stream of linear pressure regulator valve 18
Amount.
The function of described linear voltage regulation valve 18 acts as the damping element of steering road feel simulation, by Electronic Control
The drive signal that unit (ECU) 41 is provided controls the pressure and flow of linear pressure regulator valve 18, that is, allow the linear voltage regulation valve to present not
Same damping characteristic, its damping characteristic is transferred on steering wheel by intermediate transmission system, driver is fed back to, so as to provide more
For real steering response is simulated.
Turning on the steering power master cylinder 31 in the other end and steering execution unit D of the 3rd described switch electromagnetic valve 19
Connected using fluid pressure line to the first oil inlet of power master cylinder 45.
Turning on the steering power master cylinder 31 in the other end and steering execution unit D of the 4th described switch electromagnetic valve 20
Connected using fluid pressure line to the second oil inlet of power master cylinder 46.
The EDC7 series of products that described electronic control unit (ECU) 41 is produced using BOSCH companies, Electronic Control list
The corresponding terminals that external sensor input is obtained on unit (ECU) 41 are passed with steering wheel angle sensor 2, the first pressure respectively
The corresponding wiring of sensor 5, the second pull pressure sensor 34, right turn wheel rotary angle transmitter 37 and left steering wheel rotary angle transmitter 39
End is adopted and is run wires to, and then transmission information.To the corresponding terminals of magnetic valve output signal on electronic control unit (ECU) 41
Respectively with first switch magnetic valve 13, the first two-bit triplet solenoid directional control valve 14, second switch magnetic valve 16, the second two-bit triplet
Solenoid directional control valve 17, linear voltage regulation valve 18, the 3rd switch electromagnetic valve 19, the 4th switch electromagnetic valve 20, the first high-speed switch valve 21,
Terminals on second high-speed switch valve 22, the 5th switch electromagnetic valve 27, the electromagnet of the 6th switch electromagnetic valve 29 are used and are electrically connected
Connect, and then transmission information.
Described steering execution unit D include the first high-speed switch valve 21, the second high-speed switch valve 22, accumulator 23, overflow
Stream valve 24, motor 25, hydraulic pump 26, the 5th switch electromagnetic valve 27, fuel tank 28, the 6th switch electromagnetic valve 29, steering power master
Cylinder 31, the second pull pressure sensor 34, push rod 35, Automobile Right deflecting roller 36, right turn wheel rotary angle transmitter 37, track rod
38th, left steering wheel rotary angle transmitter 39, automobile left steering wheel 40;Wherein:Steering power master cylinder 31 includes steering power master cylinder cylinder
Body 30, steering power master cylinder piston 32, steering power main cylinder piston-rod 33.
Wherein, the first high-speed switch valve 21, the second high-speed switch valve 22, the 5th switch electromagnetic valve, the 6th switch electromagnetic valve
29 is normally closed switch magnetic valve, and the first high-speed switch valve 21, the structure of the second high-speed switch valve 22 be identical, the 5th switch electromagnetic valve with
The structure of 6th switch electromagnetic valve 29 is identical, the first high-speed switch valve 21, the second high-speed switch valve 22, the 5th switch electromagnetic valve and
Six switch electromagnetic valves 29 are opened in the case of energization, are closed in the event of a power failure.
The first described high-speed switch valve 21 and the second high-speed switch valve 22 are by electric wire connected mode and Electronic Control list
Unit (ECU) 41 is connected, and electronic control unit (ECU) 41 passes through PWM control modes, to the input arteries and veins of above-mentioned two high-speed switch valve
Rush width to be controlled, so as to control its time opened and close.The first described high-speed switch valve 21 and described second
High-speed switch valve 22 is high performance fast valve, and its pulse width is controlled by PWM, and flow continuously can be controlled
System, because the first high-speed switch valve 21 and the second described high-speed switch valve 22 are to the precise control of flow, so in steering system
System ensure that the rapidity and accuracy of steering when turning to.
In the Single port and steering power master cylinder 31 of the first described high-speed switch valve 21 on steering power master cylinder body 30
The second oil inlet of steering power master cylinder 46 using fluid pressure line connect.The other end of the first high-speed switch valve 21 and hydraulic pump 26
Oil-out using fluid pressure line connect.
In the Single port and steering power master cylinder 31 of the second described high-speed switch valve 22 on steering power master cylinder body 30
The first oil inlet of steering power master cylinder 45 using fluid pressure line connect.The other end of the second high-speed switch valve 22 and described liquid
The oil-out of press pump 26 is connected using fluid pressure line.
Described motor 25 uses brushless direct current motor, and it is always maintained at constant duty after automobile start,
To ensure the normal operation of steering.The motor shaft of described motor 25 is connected with the input shaft end of hydraulic pump 26, protects
Card motor 25 can drive hydraulic pump 26 to rotate, and enable hydraulic pump 26 by oil-out persistently to hydraulic system output hydraulic pressure
Oil.
The oil inlet of described hydraulic pump 26 is connected using fluid pressure line with fuel tank 28, enables hydraulic pump 26 normal
Continue the draw oil from fuel tank 28 in work.The oil-out of hydraulic pump 26 is connected with an accumulator by fluid pressure line
23, the effect of accumulator 23 is the excess energy that storage is provided from hydraulic pump 26 when hydraulic pump 26 works and eliminates liquid
Pulse ripple in pressure pipe road.
The oil-out of described hydraulic pump 26 is connected with the oil-feed port of overflow valve 24 using fluid pressure line, overflow valve 24
Oil outlet end is connected with fuel tank 28 using fluid pressure line.
Described steering power master cylinder 31 includes steering power master cylinder body 30, steering power master cylinder piston 32, turns to and move
Advocate cylinder piston rod 33.
Described steering power master cylinder 31 by the steering power master cylinder piston 32 in steering power master cylinder 31 from a left side to
The right side is divided into I, II liang of chamber, and wherein steering power main cylinder piston-rod 33 is located in II chamber of steering power master cylinder 31.
Two oil inlets are provided with described steering power master cylinder 31 on steering power master cylinder body 30, are respectively turned to
The first oil inlet of power master cylinder 45 and the second oil inlet of steering power master cylinder 46.Wherein, the first oil inlet of steering power master cylinder 45
In I chamber cylinder body of steering power master cylinder 31, the second oil inlet of steering power master cylinder 46 is located at the II of steering power master cylinder 31
In the cylinder body of chamber.The Single port of steering power master cylinder the first oil inlet 45 and the second high-speed switch valve 22 on steering power master cylinder 31
Connected using fluid pressure line, steering power master cylinder the second oil inlet 46 and the first high-speed switch valve 21 on steering power master cylinder 31
Single port using fluid pressure line connect.
Two oil-outs are provided with described steering power master cylinder 31 on steering power master cylinder body 30, are respectively turned to
The first oil-out of power master cylinder 47 and the second oil-out of steering power master cylinder 48.Wherein, the first oil-out of steering power master cylinder 47
In I chamber cylinder body of steering power master cylinder 31, the second oil-out of steering power master cylinder 48 is located at the II of steering power master cylinder 31
In the cylinder body of chamber.The Single port of steering power master cylinder the first oil-out 47 and the 6th switch electromagnetic valve 29 on steering power master cylinder 31
Connected using fluid pressure line, steering power master cylinder the second oil-out 48 and the 5th switch electromagnetic valve 27 on steering power master cylinder 31
Single port using fluid pressure line connect.
Mutually cut with scissors with vehicle frame or monocoque body one end cylinder body outside in described steering power master cylinder body 30 where I chamber
Connect, articulated manner can use ball pivot, so as to vehicle frame or bearing-type car can be hingedly fixed in guarantee steering power master cylinder body 30
In the case of body, make that a certain degree of rotation can be realized between steering power master cylinder body 30 and vehicle frame or monocoque body, from
And movement interference between the two is prevented, reduce the abrasion of steering.
The another port of the 5th described switch electromagnetic valve 27 is connected with fuel tank 28 using fluid pressure line.Described the 6th
The another port of switch electromagnetic valve 29 is connected with fuel tank 28 using fluid pressure line.
The left end of described steering power main cylinder piston-rod 33 is connected with the right side of steering power master cylinder piston 32, even
The mode of connecing can be connected using ring flange, is threadedly coupled or conventional other machinery attachment structure, and in steering power main cylinder piston-rod
The 33rd, some sealing rings are housed, so as to realize sealing function between steering power master cylinder piston 32 and steering power master cylinder body 30.
The right-hand member of described steering power main cylinder piston-rod 33 is connected with the left end of the second pull pressure sensor 34, it is ensured that
Described steering power main cylinder piston-rod 33 can drive the second pull pressure sensor 34 to carry out side-to-side movement.
The second described pull pressure sensor 34 uses resistance strain type sensor, the function of the second pull pressure sensor 34
It is that force signals suffered between steering power main cylinder piston-rod 33 and push rod 35 are passed into electronic control unit (ECU)
41, so as to obtain actual force numerical value during steering suffered by steering, electronic control unit (ECU) 41 is by the actual work
Firmly numerical value, actual steering impedance value when can be calculated steering, the accurate road feel mould of steering wheel during for realizing turning to
Intend.
The described right-hand member of the second pull pressure sensor 34 is fixedly connected with the left end of push rod 35, and connected mode can be using welding
Or riveting, so that pull pressure sensor 34 keeps constant with the relative position of push rod 35 when steering is moved.
The right-hand member of described push rod 35 is hinged with track rod 38, and articulated manner can use ball pivot, so as to protect
In the case that the described push rod 35 of card can drive described track rod 38 to move, make push rod 35 and track rod 38 it
Between can realize a certain degree of rotation, so as to prevent movement interference between the two, reduce the abrasion of steering.
Described push rod 35 is a straight rod member long, and its function is that the steering power master cylinder in steering power master cylinder 31 is lived
Power on stopper rod 33, by after the measurement of the second pull pressure sensor 34, being transferred on track rod 38, makes steering power master
Cylinder 31 can drive track rod 38 to move in normal operation, so as to realize that automobile left steering wheel 40 and automobile are turned right
To the accurate steering of wheel 36.
Described track rod 38 is located in steering axle of automobile.In motor turning, the left and right fortune of track rod 38
It is dynamic to be rotated to target direction with electrical automobile left steering wheel 40 and Automobile Right deflecting roller 36 by steeraxle mechanical driving part, it is real
The steering of existing automobile.
Described right turn wheel rotary angle transmitter 37 is located on Automobile Right deflecting roller 36, and its function is real-time monitoring Automobile Right
The actual anglec of rotation of deflecting roller 36, and its actual rotational angle value is passed into electronic control unit (ECU) 41, to correcting electronic
Target rotation angle value given by control unit (ECU) 41, realizes the precise control of right turn wheel during motor turning.Right turn is rotated
Angle transducer 37 uses photoelectric coding type rotary angle transmitter.
Described left steering wheel rotary angle transmitter 39 is located on automobile left steering wheel 40, and its function is left real-time monitoring automobile
The actual anglec of rotation of deflecting roller 40, and its actual rotational angle value is passed into electronic control unit (ECU) 41, to correcting electronic
Target rotation angle value given by control unit (ECU) 41, realizes the precise control of left steering wheel during motor turning.Left steering is rotated
Angle transducer 39 uses photoelectric coding type rotary angle transmitter.
A kind of course of work of line traffic control hydraulic steering system of the present invention is as follows:
1. steering situation to the left in the case of normal direction of rotation
Refering to Fig. 3, when driver turns left steering wheel 1, the steering wheel angle sensor 2 in steering spindle 42 is examined
The corner of steering wheel is measured, and sends this angular signal to electronic control unit (ECU) 41, electronic control unit (ECU) 41
The execution order of steering response analogue unit B and steering execution unit D is given by calculating analysis.
Now, first switch magnetic valve 13, second switch magnetic valve 16 are powered and are in open mode;3rd switch electromagnetic valve
19th, the 4th switch electromagnetic valve 20 is powered and is closed;First two-bit triplet solenoid directional control valve 14 is powered makes its P mouthfuls and B mouthfuls
Connection, A mouthfuls blocks;Second two-bit triplet solenoid directional control valve 17 is powered makes its P mouthfuls to be connected with B mouthfuls, and A mouthfuls blocks;Linear voltage regulation valve
18 are powered is in pressure regulation state;Second high-speed switch valve 22 is powered and is in open mode;The power-off of first high-speed switch valve 21 is in
Closed mode;5th switch electromagnetic valve 27 is powered and is in open mode;The power-off of 6th switch electromagnetic valve 29 is closed.
Steering spindle 42 is rotated with steering wheel 1, and band moving gear 3 rotates, because gear 3 and tooth bar 4 keep engagement,
Rack-and-pinion is formed, the rotary motion of gear 3 can be converted to the linear motion to the right of tooth bar 4.Due to the right-hand member of tooth bar 4 with
The left end of first pull pressure sensor 5 is connected, and the right-hand member of the first pull pressure sensor 5 is connected with the left end of First piston bar 6, therefore tooth bar
4 motion can be transferred to First piston bar 6 through the first pull pressure sensor 5, make the latter keep moving right.Now, first draw
Pressure sensor 5 monitors the active force between real-time tooth bar 4 and First piston bar 6, and the force signals transmission that will be obtained
Electron control unit (ECU) 41, draws the real-time torque value of steering spindle 42 after calculating analysis.First piston bar 6 drives
Master cylinder piston 8 in steering response simulation master cylinder 10 is moved right, and steering response is simulated II cavity volume in master cylinder 10 and is reduced, pressure
Power increases, and the hydraulic oil in II chamber is by the two-bit triplet solenoid directional control valve 14 of first switch magnetic valve 13 and first, and flow direction is linear
Pressure regulator valve 18, finally flows into fuel tank 28.Electronic control unit (ECU) 41 is passed by steering wheel angle sensor 2, the first pressure
Sensor 5, the second pull pressure sensor 34 transmit the signal for coming, and real-time road surface steering drag numerical value is drawn by calculating analysis,
And the size of the electric current exported to linear voltage regulation valve 18 according to the Numerical Control, drive linear pressure regulator valve 18 to produce corresponding electromagnetism
Power, so as to control the pressure and flow of linear pressure regulator valve 18, that is, allows linear voltage regulation valve that different damping characteristics are presented, and the damping is special
Property be transferred on steering wheel 1 by Hydraulic Elements and intermediate transmission system, and feed back to driver, there is provided more real to turn to
Road feel is simulated;Meanwhile, I cavity volume increase in steering response simulation master cylinder 10, pressure reduces, and the hydraulic oil in fuel tank 28 is passed through successively
Check valve 15, the second two-bit triplet solenoid directional control valve 17, the second electromagnetic switch valve 16 is crossed to flow into I in steering response simulation master cylinder 10
In chamber.
Now, the 3rd switch electromagnetic valve 19, the 4th switch electromagnetic valve 20 be powered be closed, realize steering wheel with
The decoupling of steered wheel, so that greater impact load of the steered wheel during normal direction of rotation will not be transferred to steering wheel
On, help to alleviate the tension of driver, and lift comfortableness and stability of the driver in braking procedure.
Meanwhile, motor 25 is in normal operating conditions, drives hydraulic pump 26 to rotate, the external output hydraulic pressure of hydraulic pump 26
Oil, is connected to accumulator 23 and overflow valve 24 at the oil-out of hydraulic pump 26.Wherein, the effect of accumulator 23 is when the work of hydraulic pump 26
The excess energy that storage is provided from hydraulic pump 26 when making, and eliminate the pulse ripple in fluid pressure line;Overflow valve 24 serves as
Safety valve is used, and when the outlet pressure of hydraulic pump 26 increases severely, overflow valve 24 opens overflow, pressure value in system is in rationally
In the range of, it is ensured that hydraulic system normal work.
Electronic control unit (ECU) 41 by receive steering wheel angle sensor 2 transmit come target rotation angle signal, pass through
Calculate analysis and draw the flow flowed through needed for the second high-speed switch valve 22, and by PWM control modes, to the second high-speed switch valve
22 input pulse width is controlled, so as to control its time opened and close.Realize to the second high-speed switch valve 22
Flow is continuously controlled, so that accurate steering when ensureing that automobile is turned to the left.Hydraulic oil is by the second high-speed switch valve
In 22 I chambers for entering steering power master cylinder 31, raise I cavity pressure, volume becomes big, promotes and is located in steering power master cylinder 31
Steering power master cylinder piston 32 move right, steering power master cylinder piston 32 drives the steering power master cylinder piston that is attached thereto
Bar 33 is moved right, and by the transmission of the second pull pressure sensor 34, promotes push rod 35 to move right.Second pull pressure sensor
34 are used for detecting active force numerical value suffered between steering power main cylinder piston-rod 33 and push rod 35, and force signals are transmitted
Electron control unit (ECU) 41, real-time road surface steering drag numerical value when can obtain turning to by analytical calculation, for realizing
The accurate simulation of steering response.Because push rod 35 is hinged with the track rod 38 in steeraxle, push rod 35 can drive steering horizontal
Pull bar 38 moves right, and is transmitted by the motion of driving member in steeraxle, makes automobile left steering wheel 40 and Automobile Right deflecting roller 36
Turn left, realize to the left divertical motion of the automobile in the case of normal direction of rotation.
Simultaneously as the steering power master cylinder piston 32 in steering power master cylinder 31 moves right, make steering power master cylinder
II cavity pressure in 31 is raised, and volume diminishes, and the hydraulic oil in II chamber is flowed into fuel tank 28 by the 5th switch electromagnetic valve 27.
Hydraulic pressure flow graph is as shown in thick line in Fig. 3.
Electronic control unit (ECU) 41 is by receiving left steering wheel rotary angle transmitter 39, right turn wheel rotary angle transmitter 37
The angular signal of the left and right deflecting roller of reality that transmission comes, and the target rotation angle signal phase come with the transmission of steering wheel angle sensor 2
Comparing difference, and continue to be controlled the second high-speed switch valve 22 by electronic control unit (ECU) 41, until eliminating both
Between difference, to reach steering precision higher.
2. wheel returns positive operating mode after the completion of being turned to the left in the case of normal direction of rotation
Refering to Fig. 4, wheel needs back timing after the completion of driver turns to the left, and driver starts to return positive steering wheel to the right
1, the direction of rotation that the steering wheel angle sensor 2 in steering spindle 42 detects steering wheel 1 changes, and this steering wheel is returned
Positive signal sends electronic control unit (ECU) 41 to, and electronic control unit (ECU) 41 provides steering response mould by calculating analysis
Intend unit B and turn to the execution order of execution unit D.
Now, first switch magnetic valve 13, second switch magnetic valve 16 are powered and are in open mode;3rd switch electromagnetic valve
19th, the 4th switch electromagnetic valve 20 is powered and is closed;The power-off of first two-bit triplet solenoid directional control valve 14 makes its P mouthfuls and A mouthfuls
Connection, B mouthfuls blocks;Second two-bit triplet solenoid directional control valve 17 is powered makes its P mouthfuls to be connected with B mouthfuls, and A mouthfuls blocks;Linear voltage regulation valve
18 power-off are closed;First high-speed switch valve 21 is powered and is in open mode;The power-off of second high-speed switch valve 22 is in
Closed mode;The power-off of 5th switch electromagnetic valve 27 is closed;6th switch electromagnetic valve 29 is powered and is in open mode.
Now, B mouthfuls of phase of A mouthfuls of the first two-bit triplet solenoid directional control valve 14 and the second two-bit triplet solenoid directional control valve 17
Even, I chamber for making steering response simulate in master cylinder 10 is connected with II chamber, therefore I chamber and II chamber in steering response simulation master cylinder 10
In pressure value it is equal, because First piston bar 6 is identical with the sectional dimension of second piston bar 12, therefore master cylinder piston 8 or so two
Side hydraulic oil active area is identical, so that the hydraulic action suffered by the left and right sides of master cylinder piston 8 is equal, cancels each other.This
When, due to turning to the first spring 7 for causing to the left before in extended state, second spring 9 is in compressive state, makes the first bullet
Spring 7 and second spring 9 produce effect to the left to make a concerted effort master cylinder piston 8, because the first spring 7 and second spring 9 are with identical
Elastic performance, the effect to the left makes a concerted effort to promote master cylinder piston 8 to left movement, until master cylinder piston 8 reaches the original before turning to
Beginning centre position, now two spring elongations are identical, act on active force on piston and disappear, and realize automobile in normal direction of rotation
In the case of to the left turn to after the completion of wheel return positive process.During being returned just due to wheel, in the first spring 7 and second spring
Making steering wheel 1 in the presence of 9 has self-right effect, and the driver needed for can making subtracts significantly to the steering force for returning positive process
It is small, save the muscle power of driver, make steering more facilitate with it is quick.
Meanwhile, the 3rd switch electromagnetic valve 19, the 4th switch electromagnetic valve 20 be powered be closed, realize steering wheel with
The decoupling of steered wheel.
On the other hand, motor 25 is in normal operating conditions, drives hydraulic pump 26 to rotate, and hydraulic pump 26 externally exports liquid
Force feed, is connected to accumulator 23 and overflow valve 24 at the oil-out of hydraulic pump 26.Wherein, the effect of accumulator 23 is when hydraulic pump 26
The excess energy that storage is provided from hydraulic pump 26 during work, and eliminate the pulse ripple in fluid pressure line;Overflow valve 24 fills
When safety valve is used, when the outlet pressure of hydraulic pump 26 increases severely, overflow valve 24 opens overflow, pressure value in system is in conjunction
In the range of reason, it is ensured that hydraulic system normal work.
Electronic control unit (ECU) 41 is transmitted come steering wheel time positive signal, control by receiving steering wheel angle sensor 2
First high-speed switch valve 21 is powered and is in open mode.Hydraulic oil enters steering power master cylinder 31 by the first high-speed switch valve 21
II chamber in, raise II cavity pressure, volume becomes big, promotes the steering power master cylinder piston in steering power master cylinder 31
32 are moved to the left, and steering power master cylinder piston 32 drives the steering power main cylinder piston-rod 33 being attached thereto to left movement, passes through
The transmission of the second pull pressure sensor 34, promotes push rod 35 to left movement.Due to the track rod in push rod 35 and steeraxle
38 are hinged, and push rod 35 can drive track rod 38 to be moved to the left, and are transmitted by the motion of driving member in steeraxle, make automobile left
Deflecting roller 40 and Automobile Right deflecting roller 36 turn right, and realize wheel after the completion of steering to the left of the automobile in the case of normal direction of rotation
Return positive process.
Simultaneously as the steering power master cylinder piston 32 in steering power master cylinder 31 is moved to the left, make steering power master cylinder
I cavity pressure in 31 is raised, and volume diminishes, and the hydraulic oil in I chamber is flowed into fuel tank 28 by the 6th switch electromagnetic valve 29.
Hydraulic pressure flow graph is as shown in thick line in Fig. 4.
3. steering situation to the right in the case of normal direction of rotation
Refering to Fig. 5, when driver turns right steering wheel 1, the steering wheel angle sensor 2 in steering spindle 42 is examined
The corner of steering wheel is measured, and sends this angular signal to electronic control unit (ECU) 41, electronic control unit (ECU) 41
The execution order of steering response analogue unit B and steering execution unit D is given by calculating analysis.
Now, first switch magnetic valve 13, second switch magnetic valve 16 are powered and are in open mode;3rd switch electromagnetic valve
19th, the 4th switch electromagnetic valve 20 is powered and is closed;The power-off of first two-bit triplet solenoid directional control valve 14 makes its P mouthfuls and A mouthfuls
Connection, B mouthfuls blocks;The power-off of second two-bit triplet solenoid directional control valve 17 makes its P mouthfuls to be connected with A mouthfuls, and B mouthfuls blocks;Linear voltage regulation valve
18 are powered is in pressure regulation state;First high-speed switch valve 21 is powered and is in open mode;The power-off of second high-speed switch valve 22 is in
Closed mode;The power-off of 5th switch electromagnetic valve 27 is closed;6th switch electromagnetic valve 29 is powered and is in open mode.
Steering spindle 42 is rotated with steering wheel 1, and band moving gear 3 rotates, because gear 3 and tooth bar 4 keep engagement,
Rack-and-pinion is formed, the rotary motion of gear 3 can be converted to the linear motion to the left of tooth bar 4.Due to the right-hand member of tooth bar 4 with
The left end of first pull pressure sensor 5 is connected, and the right-hand member of the first pull pressure sensor 5 is connected with the left end of First piston bar 6, therefore tooth bar
4 motion can be transferred to First piston bar 6 through the first pull pressure sensor 5, the latter is kept to left movement.Now, first draw
Pressure sensor 5 monitors the active force between real-time tooth bar 4 and First piston bar 6, and the force signals transmission that will be obtained
Electron control unit (ECU) 41, draws the real-time torque value of steering spindle 42 after calculating analysis.First piston bar 6 drives
Master cylinder piston 8 in steering response simulation master cylinder 10 makes steering response simulate I cavity volume in master cylinder 10 and reduces to left movement, pressure
Power increases, and by the two-bit triplet solenoid directional control valve 17 of second switch magnetic valve 16 and second, flow direction is linear to be adjusted the hydraulic oil in I chamber
Pressure valve 18, finally flows into fuel tank 28.Electronic control unit (ECU) 41 is sensed by steering wheel angle sensor 2, the first pressure
Device 5, the second pull pressure sensor 34 transmit the signal for coming, and real-time road surface steering drag numerical value is drawn by calculating analysis, and
The size of the electric current exported to linear voltage regulation valve 18 according to the Numerical Control, drives linear pressure regulator valve 18 to produce corresponding electromagnetism
Power, so as to control the pressure and flow of linear pressure regulator valve 18, that is, allows linear voltage regulation valve that different damping characteristics are presented, and the damping is special
Property be transferred on steering wheel 1 by Hydraulic Elements and intermediate transmission system, and feed back to driver, there is provided more real to turn to
Road feel is simulated;Meanwhile, II cavity volume increase in steering response simulation master cylinder 10, pressure reduces, and the hydraulic oil in fuel tank 28 is successively
Steering response simulation master cylinder 10 is flowed into by check valve 15, the first two-bit triplet solenoid directional control valve 14, the first electromagnetic switch valve 13
In interior II chamber.
Now, the 3rd switch electromagnetic valve 19, the 4th switch electromagnetic valve 20 be powered be closed, realize steering wheel with
The decoupling of steered wheel, so that greater impact load of the steered wheel during normal direction of rotation will not be transferred to steering wheel
On, help to alleviate the tension of driver, and lift comfortableness and stability of the driver in braking procedure.
Meanwhile, motor 25 is in normal operating conditions, drives hydraulic pump 26 to rotate, the external output hydraulic pressure of hydraulic pump 26
Oil, is connected to accumulator 23 and overflow valve 24 at the oil-out of hydraulic pump 26.Wherein, the effect of accumulator 23 is when the work of hydraulic pump 26
The excess energy that storage is provided from hydraulic pump 26 when making, and eliminate the pulse ripple in fluid pressure line;Overflow valve 24 serves as
Safety valve is used, and when the outlet pressure of hydraulic pump 26 increases severely, overflow valve 24 opens overflow, pressure value in system is in rationally
In the range of, it is ensured that hydraulic system normal work.
Electronic control unit (ECU) 41 by receive steering wheel angle sensor 2 transmit come target rotation angle signal, pass through
Calculate analysis and draw the flow flowed through needed for the first high-speed switch valve 21, and by PWM control modes, to the first high-speed switch valve
21 input pulse width is controlled, so as to control its time opened and close.Realize to the first high-speed switch valve 21
Flow is continuously controlled, so that accurate steering when ensureing that automobile is turned to the left.Hydraulic oil is by the first high-speed switch valve
In 21 II chambers for entering steering power master cylinder 31, raise II cavity pressure, volume becomes big, promotes and is located at steering power master cylinder 31
Interior steering power master cylinder piston 32 is moved to the left, and steering power master cylinder piston 32 drives the steering power master cylinder being attached thereto to live
Stopper rod 33, by the transmission of the second pull pressure sensor 34, pulls push rod 35 to left movement to left movement.Second pressure is sensed
Device 34 is used for detecting active force numerical value suffered between steering power main cylinder piston-rod 33 and push rod 35, and force signals are passed
Electronic control unit (ECU) 41 is passed, real-time road surface steering drag numerical value when can obtain turning to by analytical calculation, for reality
Turn now to the accurate simulation of road feel.Because push rod 35 is hinged with the track rod 38 in steeraxle, push rod 35 can drive steering
Drag link 38 is moved to the left, and is transmitted by the motion of driving member in steeraxle, makes automobile left steering wheel 40 and Automobile Right deflecting roller
36 turn right, and realize to the right divertical motion of the automobile in the case of normal direction of rotation.
Simultaneously as the steering power master cylinder piston 32 in steering power master cylinder 31 is moved to the left, make steering power master cylinder
I cavity pressure in 31 is raised, and volume diminishes, and the hydraulic oil in I chamber is flowed into fuel tank 28 by the 6th switch electromagnetic valve 29.
Hydraulic pressure flow graph is as shown in thick line in Fig. 5.
Electronic control unit (ECU) 41 is by receiving left steering wheel rotary angle transmitter 39, right turn wheel rotary angle transmitter 37
The angular signal of the left and right deflecting roller of reality that transmission comes, and the target rotation angle signal phase come with the transmission of steering wheel angle sensor 2
Comparing difference, and continue to be controlled the first high-speed switch valve 21 by electronic control unit (ECU) 41, until eliminating both
Between difference, to reach steering precision higher.
4. wheel returns positive operating mode after the completion of being turned to the right in the case of normal direction of rotation
Refering to Fig. 6, wheel needs back timing after the completion of driver turns to the right, and driver starts to return positive steering wheel to the left
1, the direction of rotation that the steering wheel angle sensor 2 in steering spindle 42 detects steering wheel 1 changes, and this steering wheel is returned
Positive signal sends electronic control unit (ECU) 41 to, and electronic control unit (ECU) 41 provides steering response mould by calculating analysis
Intend unit B and turn to the execution order of execution unit D.
Now, first switch magnetic valve 13, second switch magnetic valve 16 are powered and are in open mode;3rd switch electromagnetic valve
19th, the 4th switch electromagnetic valve 20 is powered and is closed;The power-off of first two-bit triplet solenoid directional control valve 14 makes its P mouthfuls and A mouthfuls
Connection, B mouthfuls blocks;Second two-bit triplet solenoid directional control valve 17 is powered makes its P mouthfuls to be connected with B mouthfuls, and A mouthfuls blocks;Linear voltage regulation valve
18 power-off are closed;Second high-speed switch valve 22 is powered and is in open mode;The power-off of first high-speed switch valve 21 is in
Closed mode;5th switch electromagnetic valve 27 is powered and is in open mode;The power-off of 6th switch electromagnetic valve 29 is closed.
Now, B mouthfuls of phase of A mouthfuls of the first two-bit triplet solenoid directional control valve 14 and the second two-bit triplet solenoid directional control valve 17
Even, I chamber for making steering response simulate in master cylinder 10 is connected with II chamber, therefore I chamber and II chamber in steering response simulation master cylinder 10
In pressure value it is equal, because First piston bar 6 is identical with the sectional dimension of second piston bar 12, therefore master cylinder piston 8 or so two
Side hydraulic oil active area is identical, so that the hydraulic action suffered by the left and right sides of master cylinder piston 8 is equal, cancels each other.This
When, due to turning to the first spring 7 for causing to the right before in compressive state, second spring 9 is in extended state, makes the first bullet
Spring 7 and second spring 9 produce effect to the right to make a concerted effort master cylinder piston 8, because the first spring 7 and second spring 9 are with identical
Elastic performance, the effect to the right make a concerted effort promote master cylinder piston 8 move right, until master cylinder piston 8 reach turn to before original
Beginning centre position, now two spring elongations are identical, act on active force on piston and disappear, and realize automobile in normal direction of rotation
In the case of to the left turn to after the completion of wheel return positive process.During being returned just due to wheel, in the first spring 7 and second spring
Making steering wheel 1 in the presence of 9 has self-right effect, and the driver needed for can making subtracts significantly to the steering force for returning positive process
It is small, save the muscle power of driver, make steering more facilitate with it is quick.
Meanwhile, the 3rd switch electromagnetic valve 19, the 4th switch electromagnetic valve 20 be powered be closed, realize steering wheel with
The decoupling of steered wheel.
On the other hand, motor 25 is in normal operating conditions, drives hydraulic pump 26 to rotate, and hydraulic pump 26 externally exports liquid
Force feed, is connected to accumulator 23 and overflow valve 24 at the oil-out of hydraulic pump 26.Wherein, the effect of accumulator 23 is when hydraulic pump 26
The excess energy that storage is provided from hydraulic pump 26 during work, and eliminate the pulse ripple in fluid pressure line;Overflow valve 24 fills
When safety valve is used, when the outlet pressure of hydraulic pump 26 increases severely, overflow valve 24 opens overflow, pressure value in system is in conjunction
In the range of reason, it is ensured that hydraulic system normal work.
Electronic control unit (ECU) 41 is transmitted come steering wheel time positive signal, control by receiving steering wheel angle sensor 2
Second high-speed switch valve 22 is powered and is in open mode.Hydraulic oil enters steering power master cylinder 31 by the second high-speed switch valve 22
I chamber in, raise I cavity pressure, volume becomes big, promotes the steering power master cylinder piston 32 in steering power master cylinder 31
Move right, steering power master cylinder piston 32 drives the steering power main cylinder piston-rod 33 that is attached thereto to move right, by the
The transmission of two pull pressure sensor 34, promotes push rod 35 to move right.Due to the track rod 38 in push rod 35 and steeraxle
It is hinged, push rod 35 can drive track rod 38 to move right, is transmitted by the motion of driving member in steeraxle, automobile is turned left
Turned left to wheel 40 and Automobile Right deflecting roller 36, wheel is returned after the completion of realizing steering to the right of the automobile in the case of normal direction of rotation
Positive process.
Simultaneously as the steering power master cylinder piston 32 in steering power master cylinder 31 moves right, make steering power master cylinder
II cavity pressure in 31 is raised, and volume diminishes, and the hydraulic oil in II chamber is flowed into fuel tank 28 by the 5th switch electromagnetic valve 27.
Hydraulic pressure flow graph is as shown in thick line in Fig. 6.
5. steering situation to the left in the case of automatic parking
Refering to Fig. 7, when steering is operated under automatic parking operating mode, only electronic control unit (ECU) C and steering
Execution unit D is operated.Electronic control unit (ECU) 41 according to vehicle-mounted various sensors transmit come signal be given turn
To the execution order of execution unit D.
Now, first switch magnetic valve 13, the power-off of second switch magnetic valve 16 is closed;3rd switch electromagnetic valve
19th, the 4th switch electromagnetic valve 20 is powered and is closed;The power-off of first two-bit triplet solenoid directional control valve 14 makes its P mouthfuls and A mouthfuls
Connection, B mouthfuls blocks;The power-off of second two-bit triplet solenoid directional control valve 17 makes its P mouthfuls to be connected with A mouthfuls, and B mouthfuls blocks;Linear voltage regulation valve
18 power-off are closed;Second high-speed switch valve 22 is powered and is in open mode;The power-off of first high-speed switch valve 21 is in
Closed mode;5th switch electromagnetic valve 27 is powered and is in open mode;The power-off of 6th switch electromagnetic valve 29 is closed.
Now, motor 25 is in normal operating conditions, drives hydraulic pump 26 to rotate, the external output hydraulic pressure of hydraulic pump 26
Oil, is connected to accumulator 23 and overflow valve 24 at the oil-out of hydraulic pump 26.
Electronic control unit (ECU) 41 by receive vehicle-mounted various sensors transmit come signal, by calculate point
Analysis draws the flow flowed through needed for the second high-speed switch valve 22, and by PWM control modes, to the defeated of the second high-speed switch valve 22
Enter pulse width to be controlled, so as to control its time opened and close.Realize entering the flow of the second high-speed switch valve 22
The continuous control of row, so that accurate steering when ensureing that automobile is turned to the left.Hydraulic oil enters by the second high-speed switch valve 22
In I chamber of steering power master cylinder 31, raise I cavity pressure, volume becomes big, promotes the steering in steering power master cylinder 31
Power master cylinder piston 32 moves right, steering power master cylinder piston 32 drive the steering power main cylinder piston-rod 33 that is attached thereto to
Right motion, by the transmission of the second pull pressure sensor 34, promotes push rod 35 to move right.Due in push rod 35 and steeraxle
Track rod 38 is hinged, and push rod 35 can drive track rod 38 to move right, and is passed by the motion of driving member in steeraxle
Pass, automobile left steering wheel 40 and Automobile Right deflecting roller 36 is turned left, realize automobile turning left in the case of automatic parking
To motion.
Simultaneously as the steering power master cylinder piston 32 in steering power master cylinder 31 moves right, make steering power master cylinder
II cavity pressure in 31 is raised, and volume diminishes, and the hydraulic oil in II chamber is flowed into fuel tank 28 by the 5th switch electromagnetic valve 27.
Hydraulic pressure flow graph is as shown in thick line in Fig. 7.
Electronic control unit (ECU) 41 is by receiving left steering wheel rotary angle transmitter 39, right turn wheel rotary angle transmitter 37
The angular signal of the left and right deflecting roller of reality that transmission comes, and believe with the target rotation angle obtained by the calculating of electronic control unit (ECU) 41
Number compare difference, and continues to be controlled the second high-speed switch valve 22 by electronic control unit (ECU) 41, until eliminating
Difference between the two, to reach steering precision higher.
6. steering situation to the right in the case of automatic parking
Refering to Fig. 8, when steering is operated under automatic parking operating mode, only electronic control unit (ECU) C and steering
Execution unit D is operated.Electronic control unit (ECU) 41 according to vehicle-mounted various sensors transmit come signal be given turn
To the execution order of execution unit D.
Now, first switch magnetic valve 13, the power-off of second switch magnetic valve 16 is closed;3rd switch electromagnetic valve
19th, the 4th switch electromagnetic valve 20 is powered and is closed;The power-off of first two-bit triplet solenoid directional control valve 14 makes its P mouthfuls and A mouthfuls
Connection, B mouthfuls blocks;The power-off of second two-bit triplet solenoid directional control valve 17 makes its P mouthfuls to be connected with A mouthfuls, and B mouthfuls blocks;Linear voltage regulation valve
18 power-off are closed;First high-speed switch valve 21 is powered and is in open mode;The power-off of second high-speed switch valve 22 is in
Closed mode;The power-off of 5th switch electromagnetic valve 27 is closed;6th switch electromagnetic valve 29 is powered and is in open mode.
Now, motor 25 is in normal operating conditions, drives hydraulic pump 26 to rotate, the external output hydraulic pressure of hydraulic pump 26
Oil, is connected to accumulator 23 and overflow valve 24 at the oil-out of hydraulic pump 26.
Electronic control unit (ECU) 41 by receive vehicle-mounted various sensors transmit come signal, by calculate point
Analysis draws the flow flowed through needed for the first high-speed switch valve 21, and by PWM control modes, to the defeated of the first high-speed switch valve 21
Enter pulse width to be controlled, so as to control its time opened and close.Realize entering the flow of the first high-speed switch valve 21
The continuous control of row, so that accurate steering when ensureing that automobile is turned to the left.Hydraulic oil enters by the first high-speed switch valve 21
In II chamber of steering power master cylinder 31, II cavity pressure is raised, volume becomes big, promote turning in steering power master cylinder 31
It is moved to the left to power master cylinder piston 32, steering power master cylinder piston 32 drives the steering power main cylinder piston-rod 33 being attached thereto
To left movement, by the transmission of the second pull pressure sensor 34, push rod 35 is pulled to left movement.Due in push rod 35 and steeraxle
Track rod 38 be hinged, push rod 35 can drive track rod 38 to be moved to the left, by the motion of driving member in steeraxle
Transmission, makes automobile left steering wheel 40 and Automobile Right deflecting roller 36 turn right, and realizes automobile in the case of automatic parking to the right
Divertical motion.
Simultaneously as the steering power master cylinder piston 32 in steering power master cylinder 31 is moved to the left, make steering power master cylinder
I cavity pressure in 31 is raised, and volume diminishes, and the hydraulic oil in I chamber is flowed into fuel tank 28 by the 6th switch electromagnetic valve 29.
Hydraulic pressure flow graph is as shown in thick line in Fig. 8.
Electronic control unit (ECU) 41 is by receiving left steering wheel rotary angle transmitter 39, right turn wheel rotary angle transmitter 37
The angular signal of the left and right deflecting roller of reality that transmission comes, and believe with the target rotation angle obtained by the calculating of electronic control unit (ECU) 41
Number compare difference, and continues to be controlled the first high-speed switch valve 21 by electronic control unit (ECU) 41, until eliminating
Difference between the two, to reach steering precision higher.
Steering situation to the left in the case of 7.DAS line traffic control active steerings
Refering to Fig. 9, when steering is operated under DAS line traffic control active steering operating modes, only electronic control unit (ECU)
C and steering execution unit D are operated.Electronic control unit (ECU) 41 according to vehicle-mounted various sensors transmit come letter
Number provide the execution order for turning to execution unit D.
Now, first switch magnetic valve 13, the power-off of second switch magnetic valve 16 is closed;3rd switch electromagnetic valve
19th, the 4th switch electromagnetic valve 20 is powered and is closed;The power-off of first two-bit triplet solenoid directional control valve 14 makes its P mouthfuls and A mouthfuls
Connection, B mouthfuls blocks;The power-off of second two-bit triplet solenoid directional control valve 17 makes its P mouthfuls to be connected with A mouthfuls, and B mouthfuls blocks;Linear voltage regulation valve
18 power-off are closed;Second high-speed switch valve 22 is powered and is in open mode;The power-off of first high-speed switch valve 21 is in
Closed mode;5th switch electromagnetic valve 27 is powered and is in open mode;The power-off of 6th switch electromagnetic valve 29 is closed.
Now, motor 25 is in normal operating conditions, drives hydraulic pump 26 to rotate, the external output hydraulic pressure of hydraulic pump 26
Oil, is connected to accumulator 23 and overflow valve 24 at the oil-out of hydraulic pump 26.
Electronic control unit (ECU) 41 by receive vehicle-mounted various sensors transmit come signal, by calculate point
Analysis draws the flow flowed through needed for the second high-speed switch valve 22, and by PWM control modes, to the defeated of the second high-speed switch valve 22
Enter pulse width to be controlled, so as to control its time opened and close.Realize entering the flow of the second high-speed switch valve 22
The continuous control of row, so that accurate steering when ensureing that automobile is turned to the left.Hydraulic oil enters by the second high-speed switch valve 22
In I chamber of steering power master cylinder 31, raise I cavity pressure, volume becomes big, promotes the steering in steering power master cylinder 31
Power master cylinder piston 32 moves right, steering power master cylinder piston 32 drive the steering power main cylinder piston-rod 33 that is attached thereto to
Right motion, by the transmission of the second pull pressure sensor 34, promotes push rod 35 to move right.Due in push rod 35 and steeraxle
Track rod 38 is hinged, and push rod 35 can drive track rod 38 to move right, and is passed by the motion of driving member in steeraxle
Pass, automobile left steering wheel 40 and Automobile Right deflecting roller 36 is turned left, realize automobile in the case of DAS line traffic control active steerings
Divertical motion to the left.
Simultaneously as the steering power master cylinder piston 32 in steering power master cylinder 31 moves right, make steering power master cylinder
II cavity pressure in 31 is raised, and volume diminishes, and the hydraulic oil in II chamber is flowed into fuel tank 28 by the 5th switch electromagnetic valve 27.
Hydraulic pressure flow graph is as shown in thick line in Fig. 9.
Electronic control unit (ECU) 41 is by receiving left steering wheel rotary angle transmitter 39, right turn wheel rotary angle transmitter 37
The angular signal of the left and right deflecting roller of reality that transmission comes, and believe with the target rotation angle obtained by the calculating of electronic control unit (ECU) 41
Number compare difference, and continues to be controlled the second high-speed switch valve 22 by electronic control unit (ECU) 41, until eliminating
Difference between the two, to reach steering precision higher.
Steering situation to the right in the case of 8.DAS line traffic control active steerings
Refering to Figure 10, when steering is operated under DAS line traffic control active steering operating modes, only electronic control unit
(ECU) C and steering execution unit D are operated.Electronic control unit (ECU) 41 according to vehicle-mounted various sensors transmit come
Signal provide the execution order for turning to execution unit D.
Now, first switch magnetic valve 13, the power-off of second switch magnetic valve 16 is closed;3rd switch electromagnetic valve
19th, the 4th switch electromagnetic valve 20 is powered and is closed;The power-off of first two-bit triplet solenoid directional control valve 14 makes its P mouthfuls and A mouthfuls
Connection, B mouthfuls blocks;The power-off of second two-bit triplet solenoid directional control valve 17 makes its P mouthfuls to be connected with A mouthfuls, and B mouthfuls blocks;Linear voltage regulation valve
18 power-off are closed;First high-speed switch valve 21 is powered and is in open mode;The power-off of second high-speed switch valve 22 is in
Closed mode;The power-off of 5th switch electromagnetic valve 27 is closed;6th switch electromagnetic valve 29 is powered and is in open mode.
Now, motor 25 is in normal operating conditions, drives hydraulic pump 26 to rotate, the external output hydraulic pressure of hydraulic pump 26
Oil, is connected to accumulator 23 and overflow valve 24 at the oil-out of hydraulic pump 26.
Electronic control unit (ECU) 41 by receive vehicle-mounted various sensors transmit come signal, by calculate point
Analysis draws the flow flowed through needed for the first high-speed switch valve 21, and by PWM control modes, to the defeated of the first high-speed switch valve 21
Enter pulse width to be controlled, so as to control its time opened and close.Realize entering the flow of the first high-speed switch valve 21
The continuous control of row, so that accurate steering when ensureing that automobile is turned to the right.Hydraulic oil enters by the first high-speed switch valve 21
In II chamber of steering power master cylinder 31, II cavity pressure is raised, volume becomes big, promote turning in steering power master cylinder 31
It is moved to the left to power master cylinder piston 32, steering power master cylinder piston 32 drives the steering power main cylinder piston-rod 33 being attached thereto
To left movement, by the transmission of the second pull pressure sensor 34, push rod 35 is pulled to left movement.Due in push rod 35 and steeraxle
Track rod 38 be hinged, push rod 35 can drive track rod 38 to be moved to the left, by the motion of driving member in steeraxle
Transmission, makes automobile left steering wheel 40 and Automobile Right deflecting roller 36 turn right, and realizes automobile in the case of DAS line traffic control active steerings
Divertical motion to the right.
Simultaneously as the steering power master cylinder piston 32 in steering power master cylinder 31 is moved to the left, make steering power master cylinder
I cavity pressure in 31 is raised, and volume diminishes, and the hydraulic oil in I chamber is flowed into fuel tank 28 by the 6th switch electromagnetic valve 29.
Hydraulic pressure flow graph is as shown in thick line in Figure 10.
Electronic control unit (ECU) 41 is by receiving left steering wheel rotary angle transmitter 39, right turn wheel rotary angle transmitter 37
The angular signal of the left and right deflecting roller of reality that transmission comes, and believe with the target rotation angle obtained by the calculating of electronic control unit (ECU) 41
Number compare difference, and continues to be controlled the first high-speed switch valve 21 by electronic control unit (ECU) 41, until eliminating
Difference between the two, to reach steering precision higher.
9. steering situation to the left during steering power-off failure
Refering to Figure 11, when steering power-off failure, all magnetic valves are returned to initial bit due to the effect of spring force
Put, now the power source of steering is the muscle power of driver.
Now, first switch magnetic valve 13, second switch magnetic valve 16, the switch electromagnetism of the 5th switch electromagnetic valve the 27, the 6th
The power-off of valve 29 is closed;The power-off of 3rd switch electromagnetic valve 19, the 4th switch electromagnetic valve 20 is in open mode;First liang
The position power-off of three-way solenoid valve 14 makes its P mouthfuls to be connected with A mouthfuls, and B mouthfuls blocks;The power-off of second two-bit triplet solenoid directional control valve 17 makes
Its P mouthfuls connects with A mouthfuls, and B mouthfuls blocks;The power-off of linear voltage regulation valve 18 is closed;First high-speed switch valve 21, second is at a high speed
The power-off of switch valve 22 is closed.
Driver is consumed one's strength when turning left steering wheel 1, and steering spindle 42 is rotated with steering wheel 1, and band moving gear 3 revolves
Turn, because gear 3 and tooth bar 4 keep engagement, form rack-and-pinion, the rotary motion of gear 3 can be converted to tooth
The linear motion to the right of bar 4, the motion of tooth bar 4 can be transferred to First piston bar 6 through the first pull pressure sensor 5, protect the latter
Hold and move right.First piston bar 6 drives the master cylinder piston 8 in steering response simulation master cylinder 10 to move right, and makes steering response
II cavity volume reduces in simulation master cylinder 10, and pressure increases, and the hydraulic oil in II chamber of steering response simulation master cylinder 10 is by the 3rd
Switch electromagnetic valve 19 is flowed into I chamber of steering power master cylinder 31, raises I cavity pressure of steering power master cylinder 31, and volume becomes
Greatly, the steering power master cylinder piston 32 in steering power master cylinder 31 is promoted to move right, the band of steering power master cylinder piston 32
The dynamic steering power main cylinder piston-rod 33 being attached thereto is moved right, and by the transmission of the second pull pressure sensor 34, promotion is pushed away
Bar 35 is moved right.Because push rod 35 is hinged with the track rod 38 in steeraxle, push rod 35 can drive track rod 38
Move right, transmitted by the motion of driving member in steeraxle, automobile left steering wheel 40 and Automobile Right deflecting roller 36 is overcome road
The steering drag in face turns left, and realizes to the left divertical motion of the automobile in steering power-off failure.
Simultaneously as the steering power master cylinder piston 32 in steering power master cylinder 31 moves right, make steering power master cylinder
II cavity pressure in 31 is raised, and volume diminishes, and the hydraulic oil in II chamber in steering power master cylinder 31 is by the 4th switch electromagnetism
Valve 20 is flowed into I chamber of steering response simulation master cylinder 10.Realize the fluid infusion in I chamber to steering response simulation master cylinder 10.
Hydraulic pressure flow graph is as shown in thick line in Figure 11.
10. steering situation to the right during steering power-off failure
Refering to Figure 12, when steering power-off failure, all magnetic valves are returned to initial bit due to the effect of spring force
Put, now the power source of steering is the muscle power of driver.
Now, first switch magnetic valve 13, second switch magnetic valve 16, the switch electromagnetism of the 5th switch electromagnetic valve the 27, the 6th
The power-off of valve 29 is closed;The power-off of 3rd switch electromagnetic valve 19, the 4th switch electromagnetic valve 20 is in open mode;First liang
The position power-off of three-way solenoid valve 14 makes its P mouthfuls to be connected with A mouthfuls, and B mouthfuls blocks;The power-off of second two-bit triplet solenoid directional control valve 17 makes
Its P mouthfuls connects with A mouthfuls, and B mouthfuls blocks;The power-off of linear voltage regulation valve 18 is closed;First high-speed switch valve 21, second is at a high speed
The power-off of switch valve 22 is closed.
Driver is consumed one's strength when turning right steering wheel 1, and steering spindle 42 is rotated with steering wheel 1, and band moving gear 3 revolves
Turn, because gear 3 and tooth bar 4 keep engagement, form rack-and-pinion, the rotary motion of gear 3 can be converted to tooth
The linear motion to the left of bar 4, the motion of tooth bar 4 can be transferred to First piston bar 6 through the first pull pressure sensor 5, protect the latter
Hold to left movement.First piston bar 6 drives the master cylinder piston 8 in steering response simulation master cylinder 10 to left movement, makes steering response
I cavity volume reduces in simulation master cylinder 10, and pressure increases, and the hydraulic oil in I chamber of steering response simulation master cylinder 10 is opened by the 4th
Powered-down magnet valve 20 is flowed into II chamber of steering power master cylinder 31, raises II cavity pressure of steering power master cylinder 31, and volume becomes
Greatly, the steering power master cylinder piston 32 in steering power master cylinder 31 is promoted to be moved to the left, the band of steering power master cylinder piston 32
To left movement, by the transmission of the second pull pressure sensor 34, pulling is pushed away the dynamic steering power main cylinder piston-rod 33 being attached thereto
Bar 35 is to left movement.Because push rod 35 is hinged with the track rod 38 in steeraxle, push rod 35 can drive track rod 38
It is moved to the left, is transmitted by the motion of driving member in steeraxle, automobile left steering wheel 40 and Automobile Right deflecting roller 36 is overcome road
The steering drag in face turns right, and realizes to the right divertical motion of the automobile in steering power-off failure.
Simultaneously as the steering power master cylinder piston 32 in steering power master cylinder 31 is moved to the left, make steering power master cylinder
I cavity pressure in 31 is raised, and volume diminishes, and the hydraulic oil in I chamber in steering power master cylinder 31 is by the 3rd switch electromagnetic valve
In 19 II chambers for flowing into steering response simulation master cylinder 10.Realize the fluid infusion in II chamber to steering response simulation master cylinder 10.
Hydraulic pressure flow graph is as shown in thick line in Figure 12.
Claims (8)
1. a kind of line traffic control hydraulic steering system, it is characterised in that a kind of described line traffic control hydraulic steering system includes steering wheel list
First (A), steering response analogue unit (B), electronic control unit (C) and steering execution unit (D);
Described steering wheel unit (A) includes that steering response simulates master cylinder (10);
Described steering response analogue unit (B) includes that first switch magnetic valve (13), second switch magnetic valve (16), the 3rd open
Powered-down magnet valve (19) and the 4th switch electromagnetic valve (20);
Described steering execution unit (D) includes the first high-speed switch valve (21), the second high-speed switch valve (22) and steering power
Master cylinder (31);
Described steering wheel unit (A) simulates the hydraulic fluid port of master cylinder first (43), steering response on master cylinder (10) by steering response
The hydraulic fluid port of master cylinder second (44), the Single port of first switch magnetic valve (13), second switch magnetic valve in simulation master cylinder (10)
(16) Single port and steering response of Single port, the Single port of the 3rd switch electromagnetic valve (19) and the 4th switch electromagnetic valve (20)
Analogue unit (B) fluid pressure line is connected;Steering response analogue unit (B) by the another port of the 3rd switch electromagnetic valve (19),
The another port of the 4th switch electromagnetic valve (20), the Single port of the first high-speed switch valve (21), the second high-speed switch valve (22)
Turning on the oil inlet of the steering power master cylinder first (45) and steering power master cylinder (31) on Single port, steering power master cylinder (31)
Connected to the oil inlet of power master cylinder second (46) and steering execution unit (D) fluid pressure line;Electronic control unit (C) respectively and turn
It is connected with execution unit (D) electric wire is turned to disk unit (A), steering response analogue unit (B).
2. according to a kind of line traffic control hydraulic steering system described in claim 1, it is characterised in that described steering wheel unit (A)
Also include steering wheel (1), steering wheel angle sensor (2), gear (3), tooth bar (4), the first pull pressure sensor (5) and turn to
Axle (42);
, installed in the upper end of steering spindle (42) to be fixedly connected, gear (3) is installed in steering spindle (42) for described steering wheel (1)
Lower end to be fixedly connected, steering wheel angle sensor (2) in steering spindle (42), gear (3) and tooth bar (4) company of engagement
Connect, axis of rotation and the longitudinally asymmetric face of tooth bar (4) of gear (3) intersect vertically, the right-hand member of tooth bar (4) and the first pressure are passed
The left end of sensor (5) is fixedly connected, and the right-hand member of the first pull pressure sensor (5) is consolidated with the left end of steering response simulation master cylinder (10)
Fixed connection.
3. according to a kind of line traffic control hydraulic steering system described in claim 1 or 2, it is characterised in that described steering response mould
Intending master cylinder (10) includes First piston bar (6), the first spring (7), master cylinder piston (8), second spring (9), master cylinder body (11)
With second piston bar (12);
Described master cylinder piston (8) is interior installed in master cylinder body (11), right-hand member and the master cylinder piston (8) of First piston bar (6)
The center of left side is fixedly connected, and left end and the center of the right side of master cylinder piston (8) of second piston bar (12) are fixed
Connection, and be provided between First piston bar (6), master cylinder piston (8) and second piston bar (12) and master cylinder body (11) close
Seal, the first spring (7) is sleeved in First piston bar (6) and second piston bar (12) successively with second spring (9), the first bullet
Spring (7) left end is connected with the left cylinder wall interior side contacts of master cylinder body (11), a left side for the first spring (7) right-hand member and master cylinder piston (8)
End contact is connected, and the left end of second spring (9) is connected with the right side contact of master cylinder piston (8), the right-hand member of second spring (9)
Be connected with the right cylinder wall interior side contacts of master cylinder body (11), First piston bar (6), second piston bar (12), master cylinder piston (8) with
Master cylinder body (11) rotation conllinear.
4. according to a kind of line traffic control hydraulic steering system described in claim 3, it is characterised in that described First piston bar (6)
It is the identical straight rod member of cross sectional dimensions with second piston bar (12);
Described the first spring (7) is with second spring (9) using the identical springs with same elastic characteristic, the first spring (7)
Initial length with second spring (9) is identical;
The two hydraulic fluid ports i.e. hydraulic fluid port of master cylinder first (43) and the hydraulic fluid port of master cylinder second (44) are provided with described master cylinder body (11), it is main
The hydraulic fluid port of cylinder first (43) simulates the master cylinder cylinder in II chamber of master cylinder (10) positioned at the right-hand member of master cylinder body (11) positioned at steering response
On body (11), the hydraulic fluid port of master cylinder second (44) simulates the I of master cylinder (10) positioned at the left end of master cylinder body (11) positioned at steering response
On the master cylinder body (11) in chamber.
5. according to a kind of line traffic control hydraulic steering system described in claim 1, it is characterised in that described steering response simulation is single
First (B) also include the first two-bit triplet solenoid directional control valve (14), check valve (15), the second two-bit triplet solenoid directional control valve (17) with
Linear voltage regulation valve (18);
The Single port of described first switch magnetic valve (13) and the Single port of the 3rd switch electromagnetic valve (19) use fluid pressure line
P mouthfuls of connection, the other end of first switch magnetic valve (13) and the first two-bit triplet solenoid directional control valve (14) uses fluid pressure line
Connection, A mouthfuls of the first two-bit triplet solenoid directional control valve (14) is changed with the oil-out of check valve (15) and the second two-bit triplet electromagnetism
Connected using fluid pressure line simultaneously to the B ports of valve (17);B mouthfuls and linear voltage regulation of the first two-bit triplet solenoid directional control valve (14)
The A ports of the Single port of valve (18) and the second two-bit triplet solenoid directional control valve (17) are simultaneously using fluid pressure line connection, check valve
(15) oil inlet is connected with fuel tank (28) using fluid pressure line, and the other end and the fuel tank (28) of linear voltage regulation valve (18) use liquid
Pressure pipe road connects;
The Single port of described second switch magnetic valve (16) and the Single port of the 4th switch electromagnetic valve (20) use fluid pressure line
Connection, the another port of second switch magnetic valve (16) uses hydraulic tube with P mouthfuls of the second two-bit triplet solenoid directional control valve (17)
Road connects.
6. according to a kind of line traffic control hydraulic steering system described in claim 1, it is characterised in that described electronic control unit
(C) it is connected and refers to steering wheel unit (A), steering response analogue unit (B) and steering execution unit (D) electric wire respectively:
Described electronic control unit (41) and steering wheel angle sensor (2), the first pull pressure sensor (5), first switch
Magnetic valve (13), the first two-bit triplet solenoid directional control valve (14), second switch magnetic valve (16), the second two-bit triplet electromagnetic switch
Valve (17), linear voltage regulation valve (18), the 3rd switch electromagnetic valve (19), the 4th switch electromagnetic valve (20), the first high-speed switch valve
(21), the second high-speed switch valve (22), the 5th switch electromagnetic valve (27), the 6th switch electromagnetic valve (29), the second pressure sensing
Device (34), right turn wheel rotary angle transmitter (37) are adopted with the terminals of left steering wheel rotary angle transmitter (39) and run wires to.
7. according to a kind of line traffic control hydraulic steering system described in claim 1, it is characterised in that described steering execution unit
(D) accumulator (23), overflow valve (24), motor (25), hydraulic pump (26), the 5th switch electromagnetic valve (27), fuel tank are also included
(28), the 6th switch electromagnetic valve (29), the second pull pressure sensor (34), push rod (35), Automobile Right deflecting roller (36), right turn
Wheel rotary angle transmitter (37), track rod (38), left steering wheel rotary angle transmitter (39) and automobile left steering wheel (40);
The Single port of described the first high-speed switch valve (21) enters with the steering power master cylinder second on steering power master cylinder (31)
Hydraulic fluid port (46) is connected using fluid pressure line, and the other end of the first high-speed switch valve (21) uses liquid with the oil-out of hydraulic pump (26)
Pressure pipe road connects;The Single port of the second high-speed switch valve (22) enters with the steering power master cylinder first on steering power master cylinder (31)
Hydraulic fluid port (45) is connected using fluid pressure line, and the other end of the second high-speed switch valve (22) uses liquid with the oil-out of hydraulic pump (26)
Pressure pipe road connects;
The motor shaft of described motor (25) is connected with the input shaft end of hydraulic pump (26), and the oil inlet of hydraulic pump (26) is adopted
It is connected with fuel tank (28) with fluid pressure line, the oil-out of hydraulic pump (26) is using fluid pressure line and the oil inlet end of overflow valve (24)
Mouth is connected with accumulator (23), and the fuel-displaced port of overflow valve (24) is connected with fuel tank (28) using fluid pressure line;
One end of described steering power master cylinder (31) is connected with vehicle frame or monocoque body ball pivot, steering power master cylinder (31)
The other end is that the right-hand member of steering power main cylinder piston-rod (33) is connected with the left end of the second pull pressure sensor (34), and second draws
The right-hand member of pressure sensor (34) is fixedly connected with the left end of push rod (35), right-hand member and track rod (38) phase of push rod (35)
It is hinged, one end of the oil-out of the steering power master cylinder first (47) on steering power master cylinder (31) and the 6th switch electromagnetic valve (29)
Mouth is used using fluid pressure line connection, the oil-out of steering power master cylinder second (48) with the Single port of the 5th switch electromagnetic valve (27)
Fluid pressure line connection, the another port of the 5th switch electromagnetic valve (27) and the another port of the 6th switch electromagnetic valve (29) and fuel tank
(28) it is connected using fluid pressure line;
In steering axle of automobile, the left and right end of track rod (38) passes through steeraxle machine driving to track rod (38)
Part and automobile left steering wheel (40) are hinged with Automobile Right deflecting roller (36);Right turn wheel rotary angle transmitter (37) is installed in automobile
On right turn wheel (36), left steering wheel rotary angle transmitter (39) is on automobile left steering wheel (40).
8. according to a kind of line traffic control hydraulic steering system described in claim 1 or 6, it is characterised in that described steering power master
Cylinder (31) includes steering power master cylinder body (30), steering power master cylinder piston (32), steering power main cylinder piston-rod (33);
Described steering power master cylinder piston (32) is interior installed in steering power master cylinder body (30), steering power main cylinder piston-rod
(33) in the steering power master cylinder body (30) on the right side of steering power master cylinder piston (32), steering power main cylinder piston-rod
(33) left end is fixedly connected with the center of steering power master cylinder piston (32) right side, steering power master cylinder piston (32),
To be slidably matched between power main cylinder piston-rod (33) and steering power master cylinder body (30), steering power main cylinder piston-rod
(33), sealing ring is housed, steering power master cylinder is lived between steering power master cylinder piston (32) and steering power master cylinder body (30)
The rotation conllinear of plug (32), power main cylinder piston-rod (33) and steering power master cylinder body (30), steering power master cylinder
(31) inner chamber is diverted power master cylinder piston (32) and is divided into I chamber and II chamber from left to right;
Two oil inlets, the respectively oil inlet of steering power master cylinder first are provided with described steering power master cylinder body (30)
(45) with the oil inlet of steering power master cylinder second (46), the oil inlet of steering power master cylinder first (45) is positioned at steering power master cylinder
(31) in I chamber cylinder body, the oil inlet of steering power master cylinder second (46) is in II chamber cylinder body of steering power master cylinder (31);
Two oil-outs, the respectively oil-out of steering power master cylinder first are provided with described steering power master cylinder body (30)
(47) with the oil-out of steering power master cylinder second (48), the oil-out of steering power master cylinder first (47) is positioned at steering power master cylinder
(31) in I chamber cylinder body, the oil-out of steering power master cylinder second (48) is in II chamber cylinder body of steering power master cylinder (31).
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