The present invention relates to a method for operating a hydraulic pump arrangement in accordance with the preamble of claim 1 and the invention also relates to a hydraulic pump arrangement in accordance with the preamble of claim 9.
Hydraulic pump arrangements of the type described above are used for a variety of applications. They are generally portable and are therefore equipped with an autonomous power supply for example a battery or the like. On the one hand, they are used as a component of hydraulically driven rescue tools such as so-called spreading or cutting tools that are used by emergency services for rescuing people who are trapped or buried in wrecks of vehicles. On the other hand, they are also used in tool technology, for example to reduce the size of pieces of scrap etc. Generally, the switching valves for operating the hydraulically driven tools are located directly on the tool so that the operator can directly control the tool as required by way of the switching valves. The hydraulic pump arrangements that are necessary for the drive are therefore generally connected to the individual tools by way of flexible hydraulic hoses. Hydraulic hoses can have a variety of lengths depending upon individual applications and this leads to a variety of pressure ratios. In addition, there are a variety of different rescue tools for different individual applications and said different rescue tools are to be changed where necessary on site if the situation demands it. Different rescue tools in turn lead to different power levels, for example different motor idle pressures. In order to extend the service life of the tools, every effort is made to extend the service life of the power source as much as possible. In the past, a system of providing energy saving modes was adopted. An energy saving mode of this type is achieved by way of example by means of switching from a loaded state to a non-loaded state (switching the operating state), if it is not necessary for the tool to perform further work.
A portable hydraulic system in accordance with the preamble of claim 1 is disclosed in U.S. Pat. No. 5,678,982. This hydraulic system already comprises a process of controlling the operation in a loaded state and a non-loaded state accordingly with the aid of a switch that is switched between the loaded state and the non-loaded state in dependence upon a pressure threshold value. This pressure threshold value becomes an absolute pressure and is established by means of a pressure sensor that taps the pressure at the output of the pump and controls a switching unit. The switching unit is actuated in dependence upon the absolute pressure at the output of the pump, said output pressure being established by the pressure sensor, and the system is switched from a non-loaded state to a loaded state or vice versa. This known hydraulic system functions well as long as the components of the system, namely the hydraulic pump arrangement, the hose line and also the tool, match one another. However, replacing tools with different motor idle pressures and/or using different hose lengths leads to malfunctions.
The object of the present invention is to provide a new method for operating a hydraulic pump arrangement and also to provide a new hydraulic pump arrangement that on the one hand, ensures that energy is saved and on the other hand, renders possible a problem-free operation even in the case of different system pressure ratios.
The present object is achieved in the case of the method in accordance with the generic type by means of the features of the characteristic part of claim 1 and also in the case of the hydraulic pump arrangement in accordance with the generic type by means of the features of the characteristic part of claim 9.
Expedient embodiments of the method in accordance with the invention and also of the hydraulic pump arrangement in accordance with the invention are described in the dependent claims.
By virtue of the fact that at least one input value is established for control purposes as a control variable S and said control variable is dependent upon the work that is to be performed by the motor of the hydraulic pump arrangement, malfunctions as a result of the changing pressure ratios in the case of varying the hose length, in the case of changing tools, in the case of fluctuating temperatures etc., are effectively eliminated because the relevant control variable is directly dependent upon the work that is to be performed by the motor. The first and also the second threshold value W1 or rather W2 are different. In particular, the first threshold value W1 is lower than the second threshold value W2. The control process renders it possible, even in the case of stopping the movement of the tool while the tool is under load, for example if the emergency doctor requires even further space in order to care for a person who is trapped in a vehicle and it is necessary therefore once again to control the rescue tool (for example a spreader) to change from the loaded state to the non-loaded state and also to subsequently switch from the non-loaded state to the loaded state during a further movement of the tool while the tool is under load.
In particular, it is also possible to establish two control variables S1 and S2, for example the motor current and the pressure, in an expedient manner for the load-dependent control of the hydraulic pump arrangement and said two control variables are dependent as input values on the work that is to be performed by the motor of the hydraulic pump arrangement, wherein a first threshold value W1, at which switching from the non-loaded state to the loaded state takes place, is assigned to the first control variables S1 (motor current), and a second threshold value W2, at which switching from the loaded state to the non-loaded state takes place, is assigned to the control variables S2. As a consequence, in the case of problems defining the signal of one of the control variables, the other control variable is drawn upon as an auxiliary variable and vice versa. This renders possible a precise switching process.
The operation of the hydraulic pump arrangement is suitable for multiple operating situations by virtue of the fact that the second threshold value is preferably a variable value that is continuously updated, in other words a storage medium is overwritten, during operation of the hydraulic pump arrangement.
In accordance with one expedient embodiment of the method in accordance with the invention, a third threshold value W3 is preferably also assigned to the control variable S, wherein switching from the loaded state to the non-loaded state takes place in dependence upon both the second threshold value W2 and also the third threshold value W3. As a consequence, an excessively rapid switch from the loaded state to the non-loaded state is avoided.
In the case of the third threshold value W3, said threshold value is preferably a fixed predefined value of the control variables S.
The motor current is drawn upon in an expedient manner as a control variable S, in other words the current consumption of the motor of the hydraulic pump and said current consumption represents a measurement for the work that is to be performed by the motor of the hydraulic pump arrangement. The process of determining the motor current can be performed in various ways.
Alternatively, it is also possible for this purpose to draw upon the pressure or the motor torque as the control variable S.
In all cases, the values are preferably time related, in other words values that represent the change of the control variables S over a predefined time interval.
In an expedient manner, the hydraulic pump device in accordance with the invention detects the motor current by means of measuring a drop in voltage across a resistor and it is possible to deduce the value of the motor current from said measurement.
Alternatively, it also possible to provide a current measurement device, such as for example an ampere meter or the like, for measuring the current in the motor line.
A rewritable storage medium of the type RAM or EEPROM is expediently used as a storage medium.
In the case of a drop in load, the rotational speed of the motor is reduced by means of changing the motor voltage in its rotational speed. For this purpose, a voltage is applied at the motor as a voltage pulse, preferably having a uniform pulse height, in other words intensity, however having a different pulse width. The voltage is consequently modulated. The current adjusts in response to the external load.
Expedient embodiments of the invention are further explained hereinunder with reference to figures. In the drawings:
The reference numeral 1 describes in its entirety the hydraulic pump arrangement in accordance with the invention. It is portable and is connected by way of preferably flexible hose lines 15 to an exchangeable hydraulic tool 18. Coupling arrangements 14 and 16 respectively can be provided at the output of the hydraulic pump arrangement 1 and also at the input of the hydraulic tool 18 for a rapid coupling and accordingly decoupling of the hydraulic pump arrangement.
The hydraulic pump arrangement 1 comprises a pump 2 and also an electric motor 4 that drives the pump 2. The electric motor 4 is supplied with electrical power from a battery 19 or rather a power supply network. The pump 2 comprises a tank 3 for the hydraulic fluid. A pressure line leads from the pump 2 and the tank line leads from the tank 3 out of the hydraulic pump arrangement 1 to the respective coupling arrangement 14.
The reference numeral 10 describes a control device for the sequence control of the hydraulic pump arrangement 1. This control device comprises in particular a microcontroller 6, a storage medium 7, a generator 8 for the purpose of pulse width modulation and also an analogue/digital converter 9. The above-mentioned components are attached to a circuit board. The microcontroller 6 is preferably connected to a main switch 5. The electrical circuit from the battery 19 to the microcontroller 6 is either closed or interrupted by means of said main switch. The electric motor 4 can be directly connected to the main switch 5 so that the former is supplied with electrical power from the battery 19 in the case of switching on the main switch 5.
In accordance with the present invention, in particular the motor current, in other words the current that the electric motor 4 consumes during the operation of the hydraulic pump arrangement, is measured as a control variable S for the load switching (switching the operating state). This switching process is performed in the case of the embodiment that is illustrated in
The process of determining the current is preferably performed indirectly by way of the drop in voltage across the resistor 13. This drop in voltage is amplified by means of the amplifier 21 and is provided by way of the signal line 23 as an input into the analogue/digital converter 9. The digital data are processed by the microcontroller 6 and are compared with the data in the storage medium 7 (threshold values from the control logic). As a consequence, the corresponding pulse width is output in the generator 8 for the pulse width modulation and the power transistor 11 (for example a MOSFET) transistor is correspondingly connected. If the power transistor 11 is disconnected, the current flows by way of the free-wheeling diode 12 that is connected in parallel to the motor 4. The minus terminal of the motor 4 is so-to-speak pulsed. Likewise, however, it is also possible that the plus terminal is pulsed.
The abovedescribed embodiment of the present invention has two operating states, namely a loaded operation and also a non-loaded operation. During a loaded operation the electric motor 4 is supplied with the full electrical power (for example 24V), and during a non-loaded operation the electric motor is supplied with a reduced electrical power (for example 2V). The switching process is performed by means of the control unit 10 by means of the generator 8 for the pulse width modulation and said generator cooperates with the power transistor 11 as described above. The generator 8 for the pulse width modulation process together with the power transistor 11 preferably forms continuous, periodic current signals that only differ in their pulse width in dependence upon the respective loaded state. The pulse width during the loaded state is greater in relation to a unit of time and the pulse width during the non-loaded state is smaller.
The respective hydraulic tool 18 comprises a hydraulic cylinder 20 that is connected by way of a switching valve 17 to the hose lines 15. In the case of the switching valve 17, said valve is preferably a so-called 4/3 directional valve with which it is possible to establish the two movement directions (forwards and backwards) of the hydraulic cylinder 20 and also a motor idle position (medium position of the switching valve 17). The switching valve 17 is provided by way of example in the form of a so-called star-grip directly on the tool 18.
The function sequence of the hydraulic pump arrangement 1 in accordance with the invention is further explained hereinunder with reference to
Directly after switching up into the loaded region, the current is determined and is stored as the threshold value W2 in the storage medium 7. The last value that relates to this is overwritten in the storage medium. An individual threshold value W2 that is dependent upon the actual factors (temperature, connected hose length, type of the rescue tool) is consequently always stored in the storage medium 7 after the process of switching into the loaded region.
Furthermore, a third threshold value W3 that represents a fixed value is provided in the control process. If the continuously measured consumed current of the electric motor 4 remains greater than the second threshold value W2 or third threshold value W3, the control process remains in the loaded state. If the continuously measured current that is consumed by the electric motor 4 is lower than the second threshold value W2 and is also lower than the third threshold value W3, the control process switches to the non-loaded state (2 V).
The illustration in accordance with
An alternative embodiment of the present invention is disclosed in
In addition, during the process of controlling the load, the pressure and/or the temperature can also be drawn upon as an additional control variable, for example the pressure as a leading variable and the current as an auxiliary variable for the purpose of ensuring a precise switching process by means of a higher signal resolution. By virtue of detecting the temperature, it is rendered possible to use an additional deciding criterion in order to evaluate the main variables. These variables are described in
As is illustrated in
If the pressure ratios change as a result of a comparably longer hose line 15 then the motor current also changes. However, said motor current is compared with at least in part variable current thresholds (adaptive control process).
The same also applies when exchanging the tools 18a to 18c, as is also illustrated in
The same also applies for a change of the length of the hose lines in the case of a simultaneous change of the type of tool 18a to 18c.
Alternatively, the pressure and/or the torque can also be drawn upon as a control variable S, in other words as a control parameter, in lieu of the motor current.
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP2012/053473 | 2/29/2012 | WO | 00 | 8/25/2014 |