Method for controlling lowering of an implement of a working machine
10125798 ยท 2018-11-13
Assignee
Inventors
Cpc classification
F15B21/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10T137/0396
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F15B2211/611
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2211/7058
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E02F9/2217
FIXED CONSTRUCTIONS
F15B2211/6654
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2211/7053
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2211/88
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2211/20553
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2211/3058
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E02F9/2095
FIXED CONSTRUCTIONS
F15B2211/6306
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E02F3/432
FIXED CONSTRUCTIONS
E02F9/2203
FIXED CONSTRUCTIONS
F15B15/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B21/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2211/6313
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F15B21/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B15/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E02F3/43
FIXED CONSTRUCTIONS
F15B21/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A method for controlling lowering of an implement of a working machine is provided. The working machine has a hydraulic system including a hydraulic cylinder for moving the implement and a first control valve for controlling the flow of hydraulic fluid from the piston side of the hydraulic cylinder, and a recovery unit connected to the control valve for recovering energy by receiving a return flow from the piston side of the hydraulic cylinder. The piston side of the hydraulic cylinder and the control valve are connected to each other, and the piston rod side of the hydraulic cylinder is connected to the control valve and to the recovery unit in a point between the control valve and the recovery unit. The method includes identifying a requested lowering speed of the implement, and identifying a desired pressure at the piston side of the hydraulic cylinder and controlling the recovery unit to provide a counter pressure resulting in the desired pressure at the piston side of the hydraulic cylinder, and enabling fluid communication between the piston side of the hydraulic cylinder and the recovery unit, and between the piston side of the hydraulic cylinder and the piston rod side of the hydraulic cylinder, via the control valve, and controlling the control valve in such a way that the flow through the control valve corresponds to the requested lowering speed of the implement.
Claims
1. A method for controlling lowering of an implement of a working machine, the working machine having a hydraulic system comprising a hydraulic cylinder for moving the implement and a first control valve for controlling the flow of hydraulic fluid from a piston side of the hydraulic cylinder, and a recovery unit connected to the control valve for recovering energy by receiving a return flow from the piston side of the hydraulic cylinder, the piston side of the hydraulic cylinder and the control valve being connected to each other, and a piston rod side of the hydraulic cylinder being connected to the control valve and to the recovery unit at a point between the control valve and the recovery unit, the method comprising: identifying a requested lowering speed of the implement, identifying a desired pressure at the piston side of the hydraulic cylinder based on the requested lowering speed and controlling a counter pressure provided by the recovery unit to provide a counter pressure at the piston rod side resulting in the desired pressure at the piston side of the hydraulic cylinder, enabling fluid communication between the piston side of the hydraulic cylinder and the recovery unit, and between the piston side of the hydraulic cylinder and the piston rod side of the hydraulic cylinder, via the control valve, and controlling the control valve in such a way that the flow through the control valve corresponds to the requested lowering speed of the implement.
2. A method according to claim 1, comprising calculating a desired pressure at the piston rod side of the hydraulic cylinder and controlling the recovery unit to provide a counter pressure resulting in the desired pressure at the piston rod side of the hydraulic cylinder, and thereby in the desired pressure at the piston side of the hydraulic cylinder.
3. A method according to claim 2, comprising calculating a pressure at the piston rod side of the hydraulic cylinder resulting in a desired pressure drop over the control valve, and controlling the recovery unit to provide a counter pressure resulting in the calculated desired pressure drop pressure at the piston rod side of the hydraulic cylinder.
4. A method according to claim 3, comprising calculating a pressure at the piston rod side of the hydraulic cylinder resulting in a minimal pressure drop over the control valve required to obtain the requested lowering speed, and controlling the recovery unit to provide a counter pressure resulting in the calculated minimal pressure drop pressure at the piston rod side of the hydraulic cylinder.
5. A method according to claim 2, comprising calculating a maximal allowed pressure at the piston rod side of the hydraulic cylinder based on a maximal allowed pressure at the piston side of the hydraulic cylinder, and controlling the recovery unit to provide a counter pressure resulting in a pressure at the piston rod side of the hydraulic cylinder which pressure is lower than or equal to the calculated maximal allowed pressure at the piston rod side of the hydraulic cylinder in order to keep the pressure at the piston side of the hydraulic cylinder lower than or equal to the maximal allowed pressure at the piston side of the hydraulic cylinder.
6. A method according to claim 2, comprising calculating a pressure at the piston rod side of the hydraulic cylinder resulting in a minimal pressure drop over the control valve required to obtain the requested lowering speed and calculating a maximal allowed pressure at the piston rod side of the hydraulic cylinder based on a maximal allowed pressure at the piston side of the hydraulic cylinder, and controlling the recovery unit to provide a counter pressure resulting in a pressure at the piston rod side of the hydraulic cylinder which pressure is the lowest pressure of the calculated maximal allowed pressure and the calculated minimal pressure drop pressure, thereby ensuring the pressure at the piston side of the hydraulic cylinder to be to lower than or equal to the maximal allowed pressure at the piston side of the hydraulic cylinder.
7. A method according to claim 1, comprising measuring the pressure at the piston side of the hydraulic cylinder and calculating a difference between the measured pressure and a maximal allowed pressure at the piston side of the hydraulic cylinder, and using the calculated difference as input for controlling the recovery unit to provide a counter pressure resulting in the desired pressure at the piston side of the hydraulic cylinder.
8. A method for controlling lowering of an implement of a working machine, the working machine having a hydraulic system comprising a hydraulic cylinder for moving the implement and a first control valve for controlling the flow of hydraulic fluid from the piston side of the hydraulic cylinder, and a recovery unit connected to the control valve for recovering energy by receiving a return flow from the piston side of the hydraulic cylinder, the piston side of the hydraulic cylinder and the control valve being connected to each other, and the piston rod side of the hydraulic cylinder being connected to the control valve and to the recovery unit in a point between the control valve and the recovery unit, the method comprising: identifying a requested lowering speed of the implement, identifying a desired pressure at the piston side of the hydraulic cylinder and controlling a counter pressure provided by the recovery unit to provide a counter pressure resulting in the desired pressure at the piston side of the hydraulic cylinder, enabling fluid communication between the piston side of the hydraulic cylinder and the recovery unit, and between the piston side of the hydraulic cylinder and the piston rod side of the hydraulic cylinder, via the control valve, controlling the control valve in such a way that the flow through the control valve corresponds to the requested lowering speed of the implement, and determining the force acting on the hydraulic cylinder, and using the determined force for calculating a maximal allowed pressure at the piston side of the hydraulic cylinder.
9. A method according to claim 8, comprising measuring the pressure at the piston side of the hydraulic cylinder, and using the measured pressure at the piston side of the hydraulic cylinder for determining the force acting on the hydraulic cylinder.
10. A non-transitory computer program product comprising a computer program for performing the steps of claim 1 when the program is run on a computer.
11. A non-transitory computer readable medium comprising a computer program for performing the steps of claim 1 when the program is run on a computer.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) With reference to the appended drawings, below follows a more detailed description of embodiments of the invention cited as examples.
(2) In the drawings:
(3)
(4)
(5)
(6)
DETAILED DESCRIPTION
(7)
(8) The wheel loader has an implement 2. The term implement is intended to comprise any kind of tool using hydraulics, such as a bucket, a fork or a gripping tool arranged on a wheel loader, or a container arranged on an articulated hauler. The implement illustrated is a bucket 3 which is arranged on an arm unit 4 for lifting and lowering the bucket 3, and further the bucket 3 can be tilted relative to the arm unit 4. The wheel loader 1 is provided with a hydraulic system comprising at least one hydraulic machine (not shown in
(9)
(10)
(11) The recovery unit 14 can be a hydraulic motor connected to an electric generator 24 for instance. The recovered energy may go directly to a consumer or be stored in a suitable manner. A pressure limiting valve 25 is arranged in parallel to the hydraulic motor 14 for setting a maximum allowable pressure at the return port of the first control valve 12. This pressure can be variably, for example by controlling the valve 25 by means of a control unit (not shown), and thereby an upper limit for the amount of energy desired to be recovered from the hydraulic cylinder can be selected. A return flow of hydraulic fluid from the hydraulic cylinder will flow through the recovery unit and energy will be recovered as long as the recovery unit does not produce a higher counter pressure than the set maximum allowable pressure of the valve 25. The valve can be for example a pressure limiting valve or a proportional directional valve which, by means of a control unit and pressure sensors, functions as a pressure limiting valve.
(12) The method according to the invention, for controlling lowering of an implement of a working machine, comprises the steps of identifying a requested lowering speed of the implement, and identifying a desired pressure at the piston side of the hydraulic cylinder and controlling the recovery unit to provide a counter pressure resulting in the desired pressure at the piston side of the hydraulic cylinder. The method further comprises the steps of enabling fluid communication between the piston side of the hydraulic cylinder and the recovery unit, and between the piston side of the hydraulic cylinder and the piston rod side of the hydraulic cylinder, via the control valve, and controlling the control valve in such a way that the flow through the control valve corresponds to the requested lowering speed of the implement.
(13) When optimizing the recovering procedure there are some limitations that may have an impact on which counter pressures can be used. Since the pressure in the hydraulic cylinder is usually not allowed to exceed above a certain maximal pressure, the counter pressure may have to be adapted thereto. Furthermore, the counter pressure may have to be adapted to achieve a sufficient pressure drop over the control valve enabling a flow of hydraulic fluid that fulfils the requested lowering speed.
(14) There are different control principles available for the method. One way is to measure the pressure at the piston side of the hydraulic cylinder and control the recovery unit in a way resulting in the desired pressure at the piston side of the hydraulic cylinder. Another way is to control the recovery unit based on the pressure at the piston rod side of the hydraulic cylinder. The desired pressure at the piston side can still be achieved since the desired pressure at the piston rod side can be calculated from the desired pressure on the piston side, and vice versa.
(15) In one embodiment the method comprises measuring the pressure at the piston side of the hydraulic cylinder and calculating a difference between the measured pressure and the maximal allowed pressure at the piston side of the hydraulic cylinder, and using the calculated difference as input for controlling the recovery unit to provide a counter pressure resulting in the desired pressure at the piston side of the hydraulic cylinder. This is used in a so called error-based feedback control.
(16) In another embodiment the method comprises calculating a desired pressure at the piston rod side of the hydraulic cylinder and controlling the recovery unit to provide a counter pressure resulting in the desired pressure at the piston rod side of the hydraulic cylinder, and thereby in the desired pressure at the piston side of the hydraulic cylinder. This is used in a so called feed forward link control.
(17) An error-based feedback control and/or a feed forward link control can be used for controlling the hydraulic system and perform the method according to the invention.
(18) When calculating a desired pressure at the piston rod side of the hydraulic cylinder, the method can comprise calculating a pressure at the piston rod side of the hydraulic cylinder resulting in a desired or minimal pressure drop over the control valve required to obtain the requested lowering speed, and controlling the recovery unit to provide a counter pressure resulting in the calculated minimal pressure drop pressure at the piston rod side of the hydraulic cylinder. Furthermore, the method can comprise calculating a maximal allowed pressure at the piston rod side of the hydraulic cylinder based on a maximal allowed pressure at the piston side of the hydraulic cylinder, and controlling the recovery unit to provide a counter pressure resulting in a pressure at the piston rod side of the hydraulic cylinder which pressure is lower than or equal to the calculated maximal allowed pressure at the piston rod side of the hydraulic cylinder in order to keep the pressure on the piston side of the hydraulic cylinder lower than or equal to the maximal allowed pressure at the piston side of the hydraulic cylinder.
(19) To achieve a method recovering as much energy as possible without exceeding a maximal allowed pressure, the method preferably comprises the step of calculating a pressure at the piston rod side of the hydraulic cylinder resulting in a minimal pressure drop over the control valve required to obtain the requested lowering speed and calculating a maximal allowed pressure at the piston rod side of the hydraulic cylinder based on a maximal allowed pressure at the piston side of the hydraulic cylinder, and controlling the recovery unit to provide a counter pressure resulting in a pressure at the piston rod side of the hydraulic cylinder which pressure is the lowest pressure of the calculated maximal allowed pressure and the calculated minimal pressure drop pressure, thereby ensuring the pressure on the piston side of the hydraulic cylinder to be lower than or equal to the maximal allowed pressure at the piston side of the hydraulic cylinder.
(20) The force, including the load (denoted M in
(21) In the embodiment of the method schematically illustrated by the flowchart in
(22) It is to be understood that the present invention is not limited to the embodiments described above and illustrated in the drawings; rather, the skilled person will recognize that many changes and modifications may be made within the scope of the appended claims.