Method for operating a work apparatus having an electric motor
09577567 ยท 2017-02-21
Assignee
Inventors
- Jochen Oerding (Ludwigsburg, DE)
- Rene Wichert (Durlangen, DE)
- Christian Renz (Biberach, DE)
- Gernot Liebhard (Waiblingen, DE)
Cpc classification
A01D46/264
HUMAN NECESSITIES
International classification
H02P1/00
ELECTRICITY
H02P29/00
ELECTRICITY
Abstract
An electric motor in a work apparatus has a power characteristic line which runs between a lower rotational speed of the electric motor and an upper rotational speed of the electric motor. The power characteristic line has a power characteristic with a pronounced maximum (M) and an operating plateau (AP) which lies in a working rotational speed range (AD) of the work apparatus. A method for operating the electric motor provides for configuring the position of the operating plateau (AP) to be variable with respect to the rotational speed of the electric motor to achieve stable operating points over a wide rotational speed range.
Claims
1. A handheld work apparatus having an operating rotational speed range (AD) comprising: a work tool; an electric motor configured to drive said work tool; an energy source configured to supply a voltage to said electric motor; a control unit; said electric motor being connected to said energy source via said control unit and having a power characteristic line; said power characteristic line being electronically formed as a function of rotational speed (n) for said electric motor by said control unit and having a pronounced maximum (M) and an operating plateau (AP) lying in said operating rotational speed range (AD) of the work apparatus; said operating plateau (AP) connecting to said pronounced maximum (M) of said power characteristic line of said electric motor with increasing rotational speed (n); said operating plateau (AP) expanding over said rotational speed (n) to have a rotational speed width (n.sub.AP); an electrical setting device configured to provide a set value; said electrical setting device being configured to be operated by a user to adjust the set value; said electrical setting device being configured to, in response to an adjustment of the set value by the user, shift the position of said operating plateau (AP) out of a first rotational speed range (n, n.sub.A) of the electronically formed power characteristic line into a second rotational speed range (n1, n.sub.A1) of the electronically formed power characteristic line in response to user input, said control unit being operatively connected to said electrical setting device; and, said electronically formed power characteristic line being changed so as to cause electric power (P.sub.in) drawn by the electric motor to lie below a thermal power limit of the electric motor.
2. The work apparatus of claim 1, wherein said electrical setting device is configured to be adjustable during operation of said electric motor.
3. The work apparatus of claim 1, wherein: said setting device is configured to set an operating rotational speed arbitrarily selected by the user; said operating rotational speed selected by the user corresponds to an operating point (A, A1, A2, A3) which in each case lies on an operating plateau (AP) of said characteristic line adjusted to the selected operating rotational speed.
4. The work apparatus of claim 1 further comprising: a housing; an adjusting member arranged on said housing; and, said setting device being configured to be actuated via said adjusting member.
5. The work apparatus of claim 1, wherein: said electric motor is an electronically commutated electric motor configured to generate a driving rotational field; and, said control unit is configured to modify said driving rotational field of said electric motor.
6. The work apparatus of claim 1, wherein said energy source is configured to supply said electric motor with a variable voltage.
7. The work apparatus of claim 6, wherein said voltage supplied to said electric motor is variable via pulsewidth modulation.
8. A method for operating an electric motor in a work apparatus, the electric motor having an electronically formed power characteristic line electronically formed as a function of rotational speed and impressed on the electric motor by a control unit, the electronically formed power characteristic line of the electric motor being formed between a lower rotational speed of the electric motor and an upper rotational speed of the electric motor, the electronically formed power characteristic line providing a power characteristic having a pronounced maximum (M) between the lower rotational speed and the upper rotational speed, the method comprising the steps of: forming said electronically formed power characteristic line to have an operating plateau (AP) disposed in an operating rotational speed range (AD) of the electric motor; said operating plateau (AP) having an expansion over the rotational speed corresponding to a rotational speed width (n.sub.AP); connecting said operating plateau (AP) with increasing rotational speed to said pronounced maximum (M) of said electronically formed power characteristic line of said electric motor; expanding said operating plateau (AP) of said electronically formed power characteristic line over said rotational speed (n) to have a rotational speed width (n.sub.AP); shifting the position of the operating plateau (AP) on said electronically formed power characteristic line of said electric motor by said control unit out of a first rotational speed range (n; n.sub.A) into a second rotational speed range (n1, n.sub.A1) of said electronically formed power characteristic line of the electric motor; and, said electronically formed power characteristic line being changed so as to cause drawn electric power (P.sub.in) of the electric motor to lie below a thermal power limit (T) of the electric motor.
9. The method of claim 8, wherein said shifting of the position of the operating plateau (AP) is performed with an otherwise unchanged power characteristic of the power characteristic line.
10. The method of claim 8, wherein said shifting of the position of the operating plateau (AP) with respect to the rotational speed (n) is achieved by setting a desired rotational speed range (AD).
11. The method of claim 8, wherein said shifting of the position of the operating plateau (AP) with respect to the rotational speed (n) is achieved by setting a desired operating rotational speed (n.sub.A, n.sub.A1, n.sub.A2, n.sub.A3).
12. The method of claim 8 further comprising the steps of: preselecting one of an operating rotational speed range (AD) and an operating rotational speed (n.sub.A, n.sub.A1, n.sub.A2, n.sub.A3); scaling the power characteristic line to said one of the preselected operating rotational speed range (AD) and the preselected operating rotational speed (n.sub.A, n.sub.A1, n.sub.A2, n.sub.A3).
13. The method of claim 8 further comprising the step of scaling the power characteristic line in the direction of the axis of the rotational speed or in the direction of the axis of the rotational speed and in the direction of the axis of the power.
14. The method of claim 13, wherein the power characteristic line is scaled with the same ratio.
15. A method of operating an electric motor in a work apparatus, the electric motor having an electronically formed power characteristic line electronically formed as a function of rotational speed and impressed on the electric motor by a control unit, the electronically formed power characteristic line of the electric motor being formed between a lower rotational speed of the electric motor and an upper rotational speed of the electric motor, the method comprising the steps of: forming said electronically formed power characteristic line to provide a power characteristic having a pronounced maximum (M) and an operating plateau (AP) lying in an operating rotational speed range (AD) of the electric motor; with increasing rotational speed, connecting said operating plateau (AP) to said pronounced maximum (M) of said electronically formed power characteristic line of said electric motor; expanding said operating plateau (AP) of said electronically formed power characteristic line over said rotational speed (n) to have a rotational speed width (n.sub.AP); and, shifting the position of said operating plateau (AP) by said control unit out of a first rotational speed range (n; n.sub.A) of said electronically formed power characteristic line into a second rotational speed range (n1, n.sub.A1) of said electronically formed power characteristic line so as to cause said operating plateau (AP) to connect to the maximum of the drawn electric power (P.sub.in) and to cause the electric power (P.sub.in) drawn in the range of said rotational speed width (n.sub.AP) to be constant as a function of the rotational speed (n) and with increasing rotational speed (n), the operating plateau (AP) to have an end whereat the electric power (P.sub.in) drops off steeply with the increasing rotational speed (n).
16. The method of claim 15, wherein the position of said operating plateau (AP) is shifted to an otherwise unchanged power characteristic of the electronically formed power characteristic line.
17. The method of claim 15, wherein the position of said operating plateau (AP) over said rotational speed (n) is shifted by setting the operating rotational speed range (AD) to a desired operating rotational speed range.
18. The method of claim 15, wherein the position of said operating plateau (AP) over said rotational speed (n) is shifted by setting a desired operating rotational speed.
19. The method of claim 15, wherein said electronically formed power characteristic line is scaled with a preselected operating rotational speed range (AD) or with a preselected operating rotational speed of the work apparatus.
20. The method of claim 15, wherein said electronically formed power characteristic line is scaled in a direction of an axis of the rotational speed or in the direction of the axis of the rotational speed and in a direction of an axis of the electric power.
21. The method of claim 15, wherein said power characteristic line is changed so as to cause electric power (P.sub.in) drawn by the electric motor to lie below a thermal power limit of the electric motor.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The invention will now be described with reference to the drawings wherein:
(2)
(3)
(4)
(5)
DESCRIPTION OF THE PREFERRED EMBODIMENTS OF THE INVENTION
(6)
(7) The work apparatus 50 shown in
(8) A pivot lever or a linearly movable adjusting element, which can be configured as a rotational speed setter, for example, in the form of an adjustable potentiometer 26 (
(9) The work apparatus 50 shown in
(10) An electric motor 6, which is connected to a voltage source 11 (
(11) The drive 5, the electric motor 6, the control unit 10 and the rechargeable battery 7 are arranged in a housing 8 which has a handle 9 for the user to carry the harvesting apparatus. A pivot lever is provided in the handle as the operator-controlled element 24 for the operating rotational speed of the driving electric motor 6; the pivot lever can foe configured as a rotational speed setter, for example, in the form of an adjustable potentiometer 26 (
(12) The shown work apparatuses 50 are given as an example and serve to illustrate the invention; the work apparatus 50 can also be configured as a cut-off machine, a hedge trimmer, a blower apparatus or similar work apparatus.
(13) As
(14) As shown in
(15) During operation of, for example, a chain saw 20 according to
(16) Through this configuration of the characteristic line 30, an improved guiding of the work apparatus 50 is possible for the user because the user can easily run up to and maintain the operating point A on the operating plateau AP. If the load, for example, at the hook 3 (harvesting device according to
(17) The formed operating plateau AP can be configured differently according to
(18) The work apparatus 50 configured as a harvesting device 1 according to the embodiment of
(19) For this, according to the invention, a setting device 12 is provided on the work apparatus 50, in the embodiment the setting device being configured as an electric setting device and being connected to the control unit 10 via lines 13. The setting device 12 can provide the control unit 10 with a setting value according to which the control unit 10 modifies the power characteristic line 30 in such a manner that the position of the power maximum M with respect to the rotational speed (n) and in particular the position of the operating plateau with respect to the rotational speed (n) change.
(20) The setting device 12 can be an adjusting member 14 (
(21) By adjusting the adjusting member 14 of the setting device 12, the control unit 10 is given a modified setting value according to which it, for example, changes the characteristic line 30 in the coordinate system of rotational, speed (n) and power P (
(22) The modification of the initial characteristic line 30 for setting a stable operating point is done in such a manner that a maximum power is achieved with a thermally healthy electric motor. For this reason, it is provided that all characteristic lines 30 to 33 lie below a thermally permissible power characteristic line T. It can be practical to allow the thermal power characteristic line T to be exceeded temporarily.
(23) If the user were to run up to a corresponding operating point B on the unchanged initial characteristic line 30, then this operating point B would be very difficult to maintain. With an increasing load and falling rotational speed (n), the power P of the electric motor also falls in accordance with the characteristic line section in front of the power maximum M, as a result of which the operating point B on the characteristic line 30 slips further downward, that is, the power P is also reduced further so that a significant dip in rotational speed is unavoidable. If, however, the reduced load decreases, the rotational speed (n) and, on account of the position of the operating point B in front of the maximum power P, the power consumption of the electric motor 6 also increase. Scaling the characteristic line 30 to the characteristic line 31 results in a stable operating point A1 now being formed at the same rotational speed at operating point 8 with the operating point A1 lying on a curve section of the operating plateau AP which hardly changes with an increasing rotational speed and turning into a significantly falling curve section only at its end as a result of which the operating point A1 can be easily run up to and maintained by the user.
(24) A characteristic line 32 or a characteristic line 33 is formed in a corresponding manner by adjusting the setting device 12 and the setting value, which is changed as a result, using the control unit 10, so that the user can always set and run up to a stable operating point (A, A1, A2, A3) at different rotational speeds (n) depending on the type of work apparatus 50 and its intended use.
(25) According to a feature of the invention, a button 28 (
(26) In a further embodiment of the invention, an electronics system 38 can be provided which is purposefully integrated in the control unit 10 and initiates automatic adjustment of the characteristic line 30. If, for example, the user operates the work apparatus over a predefined period of time at a largely identical rotational speed (it being possible to determine this by monitoring the output signal from the rotational speed sensor 35 or by using information relating to the rotational speed which is already present in the control unit 10), the electronics system 38 prompts storage of this identical rotational speed as the selected working rotational speed, as a result of which the control unit 10 adjusts the characteristic line 30 in accordance with the stored, selected working rotational speed.
(27) Automatic adjustment of the characteristic line 30 in dependence on the duration of a motor rotational speed, which is selected by the user, can be continuously active. If the user operates the work apparatus at another working rotational speed for a predetermined time period, the electronics system 38 again prompts the current motor rotational speed to be assumed as a new working rotational speed in the memory, and the control unit 10 adjusts the characteristic line in accordance with the new working rotational speed.
(28) Automatic adjustment of the characteristic line or deletion of a setting of the characteristic line can be performed in dependence on the signal from a sensor, for example, a rotation rate sensor, pressure sensor, temperature sensor, capacitive and/or inductive sensor or the like.
(29) As an alternative or in addition, provision can be made for the stored working rotational speed to be deleted by pressing the button 28.
(30) The electric motor 6 is preferably an electronically commutated electric motor, it being possible to change the driving rotating field of this electric motor using the control unit 10 in such a way that the characteristic lines (30, 31, 32, 33) illustrated in
(31) It is understood that the foregoing description is that of the preferred embodiments of the invention and that various changes and modifications may be made thereto without departing from the spirit and scope of the invention as defined in the appended claims.