CN211519170U - Engineering truck and hydro-pneumatic suspension system - Google Patents

Engineering truck and hydro-pneumatic suspension system Download PDF

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CN211519170U
CN211519170U CN201922099706.9U CN201922099706U CN211519170U CN 211519170 U CN211519170 U CN 211519170U CN 201922099706 U CN201922099706 U CN 201922099706U CN 211519170 U CN211519170 U CN 211519170U
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port
valve
oil
suspension
brake
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胡建峰
鲁振
张书杰
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Construction Machinery Branch of XCMG
Xuzhou Construction Machinery Group Co Ltd XCMG
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Xuzhou Construction Machinery Group Co Ltd XCMG
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Abstract

The utility model discloses an engineering truck and an oil-gas suspension system, which comprises a suspension oil cylinder, an energy accumulator, a regulating valve group, a brake, a pedal brake valve, a pressure measuring sensor and a gas tank; the regulating valve group comprises a proportional solenoid valve Y1 which is provided with an A port, a B port, a P port, a T port, an SP port and an M1 port, an oil inlet of the proportional solenoid valve Y1 is respectively connected with the P port, the A port and the M1 port, and an oil outlet is respectively connected with the SP port and the B port; the port A and the port B of the regulating valve group are respectively connected with a large cavity and a small cavity of the suspension oil cylinder, and the rigidity of the oil-gas suspension is regulated through the opening of a proportional solenoid valve Y1; an SP port of the regulating valve group is connected with an energy accumulator; the inlet of the pedal brake valve is connected with the outlet of the air tank, the outlet of the pedal brake valve is connected with the brake, and the inlet of the pedal brake valve is respectively provided with a pressure measuring sensor for monitoring the pressure of the inlet of the pedal brake valve in real time; and the outlets of the pedal brake valves are respectively provided with a microswitch for monitoring the opening and closing states of the pedal brake valves in real time.

Description

Engineering truck and hydro-pneumatic suspension system
Technical Field
The utility model belongs to the technical field of engineering machine tool, a machineshop car and oil gas suspension system is related to.
Background
The hydro-pneumatic suspension is adopted for most of wheel type vehicle suspensions of engineering machinery, and the hydro-pneumatic suspension has excellent nonlinear elasticity and damping characteristics and the function of adjusting the lifting height of the suspension from top to bottom, so that the comfort and safety of vehicle running can be effectively improved, particularly non-road running off-road vehicles, and the performance of the suspension directly influences the safety, comfort and maneuverability of the vehicle running due to large road surface fluctuation. The road surface of the engineering vehicle is bad, the performance requirements of the whole vehicle cannot be met only by a common suspension, for example, the gravity center of the whole vehicle is changed under the conditions of quick starting and emergency braking, and if the gravity center is changed, the whole vehicle leans backwards when starting and is in a nod state when braking; resulting in a reduction in ride comfort.
After most current suspension vehicle suspension systems are designed, system parameters of the suspension systems can not be correspondingly adjusted and changed along with changes of road conditions, the suspension systems are poor in consideration of the aspects of vehicle running smoothness, operation stability and the like, the performance of the whole vehicle under certain working conditions is better, and the performance of the whole vehicle under other working conditions is very poor, so that certain limitations exist. The oil-gas suspension system, the engineering vehicle and the crane (CN 104442267A) in Chinese patent step on a brake pedal, control the two-position two-way valve, control the collection to control the oil inlet and outlet quantity of the accumulator of the oil-gas suspension system, reduce the braking point quantity of the vehicle and improve the stability and comfort of the vehicle; however, the reaction time is slow, and the control over a long distance cannot be realized.
The prior art has the following defects: (1) the reaction time of the brake pedal and the time of the gas circuit influence the oil-gas suspension control time; (2) the arrangement is complex, and if the vehicle is a multi-bridge vehicle, the pipeline arrangement is more complex; (3) the number of pipelines is large, and the reliability is poor; (4) without the locking function, the amount of braking forward tilting cannot be effectively suppressed.
Therefore, the design is reliable and suitable for the suspension system, and the improvement of the driving comfort and the safety of the whole vehicle is of great significance.
SUMMERY OF THE UTILITY MODEL
The purpose is as follows: in order to overcome the deficiencies in the prior art, the utility model provides an engineering truck and hydro-pneumatic suspension system.
The technical scheme is as follows: in order to solve the technical problem, the utility model discloses a technical scheme does:
the first aspect provides an oil-gas suspension system which comprises a suspension oil cylinder, an energy accumulator, an adjusting valve group, a brake, a pedal brake valve, a pressure measuring sensor, a gas tank and a microswitch, wherein the suspension oil cylinder is connected with the energy accumulator;
the regulating valve group comprises a proportional solenoid valve Y1, the regulating valve group is provided with an A port, a B port, a P port, a T port, an SP port and an M1 port, an oil inlet of the proportional solenoid valve Y1 is respectively connected with the P port, the A port and the M1 port, and an oil outlet is respectively connected with the SP port and the B port; one of the port A and the port B of the regulating valve group is connected with the large cavity of the suspension oil cylinder, the other of the port A and the port B is connected with the small cavity of the suspension oil cylinder, and the rigidity of the oil-gas suspension is regulated through the opening degree of the proportional solenoid valve Y1; an SP port of the regulating valve group is connected with the energy accumulator, a P port is connected with the oil inlet channel, and a T port is connected with the oil return channel; an M1 port of the regulating valve group is connected with an oil-gas suspension pressure measuring sensor for monitoring the pressure of a suspension oil cylinder in real time;
the inlet of the pedal brake valve is connected with the outlet of the air tank, the outlet of the pedal brake valve is connected with the brake, and the inlet of the pedal brake valve is respectively provided with a pressure measuring sensor for monitoring the pressure of the inlet of the pedal brake valve in real time;
and the outlets of the pedal brake valves are respectively provided with a microswitch for monitoring the opening and closing states of the pedal brake valves in real time.
In some embodiments, the hydro-pneumatic suspension system further includes a pressure relief valve Y2, an oil inlet of the pressure relief valve Y2 is connected to the port P, and an oil outlet of the pressure relief valve Y2 is connected to the port T.
In some embodiments, the hydro-pneumatic suspension system further includes a check valve Y3, and the port P of the regulating valve group passes through the check valve Y3 and then is connected to the oil inlet of the proportional solenoid valve Y1 and the oil inlet of the pressure relief valve Y2, respectively.
In some embodiments, the hydro-pneumatic suspension system further comprises a controller, and the control end of the proportional solenoid valve Y1, the hydro-pneumatic suspension load cell, the micro switch and the load cell are respectively connected with the controller. The controller described in this application is prior art and will not be described in detail.
Further, in some embodiments, the controller employs an IMCT3654 single chip microcomputer.
In a second aspect, a working vehicle is provided, which includes the hydro-pneumatic suspension system, one of the cylinder and the piston rod of the suspension cylinder is connected to the vehicle frame, the other of the cylinder and the piston rod is connected to the vehicle axle, and the control end of the pedal brake valve is connected to the brake pedal.
Has the advantages that: the utility model provides an engineering vehicle and oil gas suspension system, braking gas circuit and suspension oil circuit arrangement space, simple structure, have sufficient spatial arrangement; the pneumatic suspension system can acquire the vehicle speed, the pressure of a suspension oil cylinder, the air pressure values of the micro switches Q1 and Q2 and a pressure measuring sensor in real time, controls the opening degree of the proportional solenoid valve Y1 to control the rigidity of the hydro-pneumatic suspension, can realize the locking of the hydro-pneumatic suspension, and further effectively inhibits the forward tilting of the brake.
Drawings
FIG. 1 is a schematic diagram of an embodiment of a hydro-pneumatic suspension system of a braking prevention nod of a machineshop car.
In the figure: the brake system comprises a suspension oil cylinder 1, an accumulator 2, a brake 3, a pedal brake valve 4, a pressure measuring sensor 5, an air tank 6, a controller 7, micro switches Q1 and Q2, a proportional solenoid valve Y1, a pressure relief valve Y2 and a one-way valve Y3.
Detailed Description
The technical solutions in the embodiments of the present invention will be described clearly and completely with reference to the accompanying drawings in the embodiments of the present invention, and it is obvious that the described embodiments are only some embodiments of the present invention, not all embodiments. The following description of at least one exemplary embodiment is merely illustrative in nature and is in no way intended to limit the invention, its application, or uses. Based on the embodiments in the present invention, all other embodiments obtained by a person skilled in the art without creative efforts belong to the protection scope of the present invention.
Unless specifically stated otherwise, the relative arrangement of the components and steps, the numerical expressions, and numerical values set forth in these embodiments do not limit the scope of the present invention. Meanwhile, it should be understood that the sizes of the respective portions shown in the drawings are not drawn in an actual proportional relationship for the convenience of description. Techniques, methods, and apparatus known to those of ordinary skill in the relevant art may not be discussed in detail but are intended to be part of the specification where appropriate. In all examples shown and discussed herein, any particular value should be construed as merely illustrative, and not limiting. Thus, other examples of the exemplary embodiments may have different values. It should be noted that: like reference numbers and letters refer to like items in the following figures, and thus, once an item is defined in one figure, further discussion thereof is not required in subsequent figures.
Example 1
As shown in fig. 1, the hydro-pneumatic suspension system for preventing braking nod comprises a suspension oil cylinder 1, an energy accumulator 2, a brake 3, a pedal brake valve 4, a pressure measuring sensor 5, an air tank 6, a controller 7, microswitches Q1, Q2, a regulating valve group (a proportional solenoid valve Y1, a pressure release valve Y2, a one-way valve Y3) and a hydro-pneumatic suspension pressure measuring sensor;
the regulating valve group comprises a proportional solenoid valve Y1; the regulating valve group is provided with an A port, a B port, a P port, a T port, an SP port and an M1 port, an oil inlet of the proportional solenoid valve Y1 is respectively connected with the P port, the A port and the M1 port, and an oil outlet is respectively connected with the SP port and the B port; one of the port A and the port B of the regulating valve group is connected with the large cavity of the suspension oil cylinder 1, the other of the port A and the port B is connected with the small cavity of the suspension oil cylinder 1, and the rigidity of the oil-gas suspension is regulated through the opening degree of the proportional solenoid valve Y1; an SP port of the regulating valve group is connected with the energy accumulator 2, a P port is connected with the oil inlet channel, and a T port is connected with the oil return channel; an M1 port of the regulating valve group is connected with an oil-gas suspension pressure measuring sensor and is used for monitoring the pressure of the suspension oil cylinder 1 in real time;
the inlet of the pedal brake valve 4 is connected with the outlet of the air tank 6, the outlet of the pedal brake valve 4 is connected with the brake 3, and the inlet of the pedal brake valve 4 is respectively provided with a pressure measuring sensor 5 for monitoring the pressure of the inlet of the pedal brake valve 4 in real time;
micro switches Q1 and Q2 are respectively arranged at the outlet of the pedal brake valve 4 and are used for monitoring the opening and closing state of the pedal brake valve 4 in real time;
the control end of the proportional solenoid valve Y1, the hydro-pneumatic suspension pressure sensor, the micro switches Q1, Q2 and the pressure sensor 5 are respectively connected with the controller 7.
In some embodiments, the controller is a single chip microcomputer of an IMCT3654 model, and the controller is a known technology in the prior art and will not be described repeatedly.
In some embodiments, as shown in fig. 1, the regulating valve group further includes a pressure relief valve Y2, an oil inlet of the pressure relief valve Y2 is connected to the port P, an oil outlet of the pressure relief valve Y2 is connected to the port T, and a control end of the pressure relief valve Y2 is connected to the controller 7.
In some embodiments, as shown in fig. 1, the regulating valve group further includes a check valve Y3, and the port P of the regulating valve group passes through the check valve Y3 and is connected to the oil inlet of the proportional solenoid valve Y1 and the oil inlet of the pressure relief valve Y2, respectively.
The proportional solenoid valve Y1 of the regulating valve group has a switchable communication state, a throttling state and a closing state, and the communication state is an initial state.
On the other hand, the engineering vehicle comprises the hydro-pneumatic suspension system, one of a cylinder barrel and a piston rod of the suspension oil cylinder 1 is connected to a vehicle frame, the other of the cylinder barrel and the piston rod is connected to a vehicle axle, and the control end of the pedal brake valve 4 is connected with a brake pedal.
Implement the utility model discloses afterwards, can not disturb the normal regulation of its suspension performance when the vehicle is normal driving state to can effectively reduce the braking volume of starting of vehicle during vehicle emergency braking, thereby improve handling stability, trafficability characteristic and travelling comfort of vehicle when emergency braking, reduce the potential safety hazard.
Example 2
A method of controlling a hydro-pneumatic suspension system, comprising:
acquiring opening and closing information of a pedal brake valve and vehicle speed, judging the action state of a brake pedal according to the opening and closing information of the pedal brake valve, and judging the vehicle speed state in response to the fact that the brake pedal is in a treading state; the following three cases are distinguished:
(1) and responding to the fact that the vehicle speed is in a low-speed range (lower than 30 km/h), obtaining the pressure of the suspension oil cylinder 1 and the inlet pressure of the pedal brake valve 4, calculating to obtain the brake deceleration according to the vehicle speed, the pressure of the suspension oil cylinder 1 and the inlet pressure of the pedal brake valve 4, sending an instruction according to the brake deceleration to control the opening degree of the proportional solenoid valve Y1, adjusting the rigidity of the hydro-pneumatic suspension, and achieving the purpose of restraining forward tilting of the brake.
(2) Responding to the fact that the vehicle speed is in a medium speed range (30-60 km/h), obtaining pressure of a suspension oil cylinder 1 and inlet pressure of a pedal brake valve 4, calculating brake deceleration according to the vehicle speed, the pressure of the suspension oil cylinder 1 and the inlet pressure of the pedal brake valve, sending an instruction according to the brake deceleration to control the opening degree of a proportional solenoid valve Y1, controlling the proportional solenoid valve Y1 to be closed, adjusting the rigidity of the hydro-pneumatic suspension, and achieving forward tilting prevention of braking.
(3) In response to the vehicle speed being in a high speed range (higher than 60 km/h), directly sending a command to control the proportional solenoid valve Y1 to close;
or, the pressure of the suspension oil cylinder 1 is obtained, the braking deceleration is calculated according to the vehicle speed and the pressure of the suspension oil cylinder 1, and the proportional electromagnetic valve Y1 is controlled to be closed according to the braking deceleration.
Example 3
A controller comprising a memory and a processor, the memory for storing instructions for controlling the processor to operate to perform the method of controlling the hydro-pneumatic suspension system of embodiment 2.
Example 4
An hydro-pneumatic suspension system comprising the controller 7 of embodiment 3.
In some embodiments, the hydro-pneumatic suspension system further comprises a proportional solenoid valve Y1, a hydro-pneumatic suspension pressure sensor, microswitches Q1, Q2 and a pressure sensor 5, wherein the control end of the proportional solenoid valve Y1, the hydro-pneumatic suspension pressure sensor, the microswitches Q1, Q2 and the pressure sensor 5 are respectively connected with the controller 7;
the hydro-pneumatic suspension pressure measuring sensor is used for monitoring the pressure of the suspension oil cylinder 1 and sending the pressure to the controller;
the micro switches Q1 and Q2 are used for monitoring the opening and closing information of the pedal brake valve and sending the information to the controller;
the pressure measuring sensor 5 is used for monitoring the inlet pressure of the pedal brake valve and sending the inlet pressure to the controller;
and the proportional solenoid valve Y1 is connected with the suspension oil cylinder 1 and used for receiving an instruction of a controller, and the rigidity of the hydro-pneumatic suspension is adjusted through the opening degree of the proportional solenoid valve Y1.
The utility model discloses an oil gas suspension system brakes the during operation, can produce following effect:
(1) low running speed and no emergency braking
When a driver steps on a brake pedal, the vehicle speed, the pressure of the suspension oil cylinder 1 and the inlet pressure of the pedal brake valve 4 are collected, the controller 7 is used for calculating, the proportional solenoid valve Y1 is controlled to proportionally control the rigidity of the oil-gas suspension, and the forward tilting of the brake is restrained. The controller 7 monitors the pressure of the pressure measuring sensor 5 and the micro switches Q1 and Q2 in real time, controls the proportional solenoid valve Y1 to control the rigidity of the oil-gas suspension, and realizes the purpose of restraining forward tilting of braking.
(2) At medium running speed and no emergency braking
When a driver steps on a brake pedal, the vehicle speed, the pressure of the suspension oil cylinder 1 and the inlet pressure of the pedal brake valve 4 are collected, the controller 7 is used for calculating, the proportional solenoid valve Y1 is controlled to proportionally control the rigidity of the oil-gas suspension, and the forward tilting of the brake is restrained. The controller 7 monitors the pressure of the pressure measuring sensor 5 and the pressure of the micro switches Q1 and Q2 in real time, and when the vehicle speed is high to a set degree, the opening degree of the proportional solenoid valve Y1 is controlled to be 0, the oil-gas suspension is locked, and the forward tilting of the brake is further effectively restrained.
(3) High speed, emergency braking
When a driver steps on a brake pedal, the speed of the vehicle, the pressure of the suspension oil cylinder 1 and the micro switches Q1 and Q2 are collected, the controller 7 is used for calculating, the proportional electromagnetic valve Y1 is controlled to be closed, the oil-gas suspension is locked, and the forward tilting of the brake is restrained. The controller 7 monitors the inlet pressure of the pedal brake valve 4 in real time, controls the proportional solenoid valve Y1 to be closed, realizes the locking of oil-gas suspension, realizes redundant design and further effectively inhibits the forward tilting of the brake.
The utility model provides an engineering van, adopt prevent the hydro-pneumatic suspension system of braking nod during, can produce following effect:
(1) sufficient arrangement space: the brake air circuit and the suspension oil circuit are arranged in space, the structure is simple, and enough space is arranged;
(2) redundancy design, safe and reliable more: the rigidity and locking of the oil-gas suspension are controlled by detecting the pressure of the suspension oil cylinder 1 and the air pressure values of the micro switches Q1 and Q2 and the pressure measuring sensor 5 through redundancy design. The safety and the reliability are high.
(3) Realize shutting, effectively restrain the braking and lean forward: realize locking, effectively restrain the brake from leaning forward, and ensure the driving safety.
In the description of the present application, it is to be understood that the terms "central," "longitudinal," "lateral," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," "outer," and the like are used in the orientation or positional relationship indicated in the drawings for ease of description and simplicity of description, and are not intended to indicate or imply that the referenced device or element must have a particular orientation, be constructed and operated in a particular orientation, and thus, are not to be considered limiting with respect to the scope of the present invention.
The above description is only a preferred embodiment of the present invention, and it should be noted that: for those skilled in the art, without departing from the principle of the present invention, several improvements and modifications can be made, and these improvements and modifications should also be considered as the protection scope of the present invention.

Claims (7)

1. An oil-gas suspension system is characterized by comprising a suspension oil cylinder, an energy accumulator, an adjusting valve group, a brake, a pedal brake valve, a pressure measuring sensor, a gas tank and a microswitch;
the regulating valve group comprises a proportional solenoid valve (Y1), the regulating valve group is provided with an A port, a B port, a P port, a T port, an SP port and an M1 port, an oil inlet of the proportional solenoid valve (Y1) is respectively connected with the P port, the A port and the M1 port, and an oil outlet is respectively connected with the SP port and the B port; one of the port A and the port B of the regulating valve group is connected with a large cavity of the suspension oil cylinder, the other of the port A and the port B is connected with a small cavity of the suspension oil cylinder, and the rigidity of the oil-gas suspension is regulated through the opening degree of the proportional solenoid valve (Y1); an SP port of the regulating valve group is connected with the energy accumulator, a P port is connected with the oil inlet channel, and a T port is connected with the oil return channel; an M1 port of the regulating valve group is connected with an oil-gas suspension pressure measuring sensor for monitoring the pressure of a suspension oil cylinder in real time;
the inlet of the pedal brake valve is connected with the outlet of the air tank, the outlet of the pedal brake valve is connected with the brake, and the inlet of the pedal brake valve is respectively provided with a pressure measuring sensor for monitoring the pressure of the inlet of the pedal brake valve in real time;
and the outlets of the pedal brake valves are respectively provided with a microswitch for monitoring the opening and closing states of the pedal brake valves in real time.
2. The hydro-pneumatic suspension system as defined in claim 1, wherein the regulating valve set further comprises a pressure relief valve (Y2), an oil inlet of the pressure relief valve (Y2) is connected with the port P, and an oil outlet of the pressure relief valve (Y2) is connected with the port T.
3. The oil-gas suspension system as claimed in claim 2, wherein the regulating valve group further comprises a check valve (Y3), and the P port of the regulating valve group is connected with the oil inlet of the proportional solenoid valve (Y1) and the oil inlet of the pressure relief valve (Y2) respectively after passing through the check valve (Y3).
4. The hydro-pneumatic suspension system of claim 1, further comprising a controller, wherein the control terminal of the proportional solenoid valve (Y1), the hydro-pneumatic suspension load cell, the micro switch, and the load cell are connected to the controller respectively.
5. The hydro-pneumatic suspension system of claim 4, wherein the controller employs an IMCT3654 single chip microcomputer.
6. A work vehicle comprising the hydro-pneumatic suspension system of any one of claims 1 to 5.
7. The vehicle of claim 6, wherein one of the cylinder and the piston rod of the suspension cylinder is connected to the frame, the other of the cylinder and the piston rod is connected to the axle, and the control end of the pedal brake valve is connected to the brake pedal.
CN201922099706.9U 2019-11-29 2019-11-29 Engineering truck and hydro-pneumatic suspension system Active CN211519170U (en)

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Application Number Priority Date Filing Date Title
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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN111301086A (en) * 2019-11-29 2020-06-19 徐工集团工程机械股份有限公司 Engineering truck, hydro-pneumatic suspension system and control method of hydro-pneumatic suspension system

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN111301086A (en) * 2019-11-29 2020-06-19 徐工集团工程机械股份有限公司 Engineering truck, hydro-pneumatic suspension system and control method of hydro-pneumatic suspension system
CN111301086B (en) * 2019-11-29 2024-03-08 徐工集团工程机械股份有限公司 Engineering truck, hydro-pneumatic suspension system and control method of hydro-pneumatic suspension system

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