NL2011696C2 - Electric power tool and a restart prevention system therefor. - Google Patents

Electric power tool and a restart prevention system therefor. Download PDF

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Publication number
NL2011696C2
NL2011696C2 NL2011696A NL2011696A NL2011696C2 NL 2011696 C2 NL2011696 C2 NL 2011696C2 NL 2011696 A NL2011696 A NL 2011696A NL 2011696 A NL2011696 A NL 2011696A NL 2011696 C2 NL2011696 C2 NL 2011696C2
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NL
Netherlands
Prior art keywords
switch
drive
power
opto
coupler
Prior art date
Application number
NL2011696A
Other languages
Dutch (nl)
Inventor
Jeroen Schroer
Original Assignee
Bosch Gmbh Robert
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Bosch Gmbh Robert filed Critical Bosch Gmbh Robert
Priority to NL2011696A priority Critical patent/NL2011696C2/en
Priority to EP14183269.1A priority patent/EP2886262A3/en
Priority to RU2014139650A priority patent/RU2014139650A/en
Application granted granted Critical
Publication of NL2011696C2 publication Critical patent/NL2011696C2/en

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Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B25HAND TOOLS; PORTABLE POWER-DRIVEN TOOLS; MANIPULATORS
    • B25FCOMBINATION OR MULTI-PURPOSE TOOLS NOT OTHERWISE PROVIDED FOR; DETAILS OR COMPONENTS OF PORTABLE POWER-DRIVEN TOOLS NOT PARTICULARLY RELATED TO THE OPERATIONS PERFORMED AND NOT OTHERWISE PROVIDED FOR
    • B25F5/00Details or components of portable power-driven tools not particularly related to the operations performed and not otherwise provided for

Abstract

The present invention relates to an electric power tool, in particular a grinder. The invention comprises a mains connector to be selectively connected to a power supply by a user, a hardware switch, which is operable by a user and an electric drive, in particular an electric motor, wherein the switch is arranged in a connection between the connector and the drive to selectively allow supply of power to the drive with the connector connected to the supply, a restart prevention system, comprising at least one opto-coupler, CHARACTERISED IN THAT the restart prevention system is configured to prevent restart of the drive after temporary disconnection from or interruption of power supply with the switch in a state to supply power to the drive, wherein the opto-coupler is connected to conductors of the connection and there arranged in series with a normally conducting switch part of the switch, which is opened to a non-conductive state in conjunction with user operation of the switch to activate the drive, and the opto-coupler is arranged in a by-pass excluding the switch part of the switch, when the switch part of the switch is in said non-conductive state, to maintain current flow through the opto-coupler while connected via the connection to the power supply. Furthermore the invention relates to a system configured to prevent restart of an electric power tool.

Description

ELECTRIC POWER TOOL AND A RESTART PREVENTION SYSTEM THEREFOR
The present invention relates to an electric power tool having a system to prevent restart of an electric power tool, in particular a grinder, in particular after inadvertent temporary disconnection or interruption of a connector, like a plug, from a power source, like a mains power supply socket.
The invention further relates to a system to prevent restart of power tools in general also on its own. A prior art situation, to which the present invention relates, is schematically represented in figure 1. Therein, a power tool 1 is depicted, comprising a housing 3, from which a power cord 7 extends to a plug 2, which can be inserted into a mains power supply socket 6. The tool 1 further comprises a switch 5 extending from housing 3. The switch 5 is user operable to activate the drive in the form of a motor 4. When the plug 2 is inserted (arrow A) into the socket 6, preferably, switch 5 is in a position to keep the motor 4 deactivated. However, this is often not secure. For instance in a situation where plug 2 is taken out of socket 6 (arrow C) while motor 4 has been activated by operation of switch 5 (arrow B), for instance by accident, many less experienced users will tend to simply insert plug 2 into the socket 6 (arrow D). If this is attempted, then motor 4 will be activated immediately upon inserting plug 2 into socket 6. This results in a dangerous situation for the user. Likewise, a similar situation may occur after a fuse is blown, or an (extension) cord is cut, and/or the like. Consequently, where herein after reference is made to interruption or disconnection of power supply to a tool, any one or a combination of such or other causes is intended.
To the best knowledge of the inventors of the present development, which is disclosed herein below and protection for which is defined in the appended claims, no adequate solution to this problem is available. Namely, a solution to such a problem must be sturdy and be able to withstand disrupting or even wear and tear promoting dust.
Notwithstanding such a consideration, the person skilled in the art in the technical field of power tools is most likely to envisage a solution in the direction of mechanical safety switches or the like, using mechanical transmissions or the like, or incorporate moving components in general. Such solutions will always be susceptible to the disrupting and where promoting influence of dust.
Moreover such potential approach to solving this problem requires considerable space, which is not available, in particular in smaller power tools, for instance for domestic users.
The above approach to the present problem and/or similar solutions, that may be expected from the skilled person from within the range of his skill, are all anticipated to be complex and costly, whereas especially for smaller electric power tools for the domestic market, required space and simplicity should be as low as possible. If such requirements for solving the above identified problem can be met within the context of smaller hand tools, for instance for the domestic market, then such a solution should also be expected to be suitable for larger and more professional power tools, where price considerations and required space or volume are less decisive with respect to potential embodiments of solution to address the above-mentioned problem.
Although the above reference is made to a problem with respect to potentially dangerous activation of a drive when replugging a power tool into a mains power supply, and to potential solutions with respect to such problems, none of the potential solutions referred to constitutes known as prior art, with which the inventors of the below disclosed solution are familiar.
In order to provide a solution to the above-mentioned problems, embodiments of electric power tools, in particular grinders, are provided as comprising: - a mains connector to be selectively connected to a power supply by a user; - a hardware switch, which is operable by a user; - an electric drive, in particular an electric motor, - wherein the switch is arranged in a connection between the connector and the drive to selectively allow supply of power to the drive with the connector connected to the supply, - a restart prevention system, arranged to prevent restart of the drive after temporary disconnection of the connector to the power supply with the switch in a state to supply power to the drive, comprising at least one opto-coupler.
The use of an opto-coupler, which is completely insensitive to influences like dust, vibrations, and the like, results in a power tool like a grinder and a system to prevent inadvertent activation of a drive, in particular a motor, after re-plugging a plug of the tool into the mains power supply with a switch thereof in a motor activating state. The provided solution allows for minimum volume and/or space requirements and an optimal simplicity, and is even applicable in the context of professional, larger and more powerful power tools in view of the robustness of the presented solution.
In preferred embodiments, the electric power tool exhibit the feature that the restart prevention system comprises a rectifier. This is in particular useful and relevant in case an opto-coupler requires DC power supply, which is common, although embodiments of opto-couplers may function also on mains AC power. In any case, when a rectifier is provided, for DC power supply to the opto-coupler, this appears to run against the desire for a compact design and minimum space or volume requirements. However, embodiments of this feature may be implemented quite advantageously in a very simple circuit design, for instance on a compact printed circuit board, for instance together with the opto-coupler.
In specific embodiments, electric power tools may additionally or alternatively relative to the preceding features exhibit the feature that the restart prevention system is arranged between the mains connector and the switch. Such a feature runs against a first inclination of a skilled person to implement any solution in conjunction with the drive for motor, and emphasises that are very compact and elegant design of a circuit or system can be arranged practically anywhere within the housing of the power tool or electric hand tool.
In specific embodiments, electric power tools may additionally or alternatively relative to the preceding features exhibit the feature that the opto-coupler is arranged in series with a normally conducting switch part of the switch, which is opened to be non-conductive by user operation of the switch to activate the drive. The combination of the opto-coupler with the normally conducting switch part of the switch allows for a very simple realisation of a very effective solution to the posed problem. More in particular, in such an embodiment with the series configuration of the opto-coupler and the switch part of the switch, the electric power tool may further exhibit the feature that the opto-coupler is arranged with a by-pass along the switch part of the switch. Once the opto-coupler has been activated with the switch part in a conductive state thereof, it will take over to ensure a continued conductive state of the circuit, regardless of the actual state of the normally conductive switch part. When power supply is then interrupted, supplying power to the drive for motor will continue to be disabled, as long as the switch part is not returned to the normally conductive state thereof, i.e. as long as the switch for power supply to the drive or motor is not returned first to the state thereof in which direct power supply from the plug to the drive for motor is interrupted.
In specific embodiments, electric power tools may additionally or alternatively relative to the preceding features exhibit the feature that the opto-coupler is associated with a relay in at least one conductor from the connector to either or both of the switch and the drive.
Only when the opto-coupler is in a conductive state, potentially bypassing the switch part, if provided, can the relay be driven to enable power supply from the plug to the drive for motor. In such an embodiment it can be preferable to provide the feature that the relay is a solid state relay. Thereby, the use of moving parts can be avoided. Further also in embodiments exhibiting a relay, the relay itself can comprise a further opto-coupler. Thereby, the use of moving parts, and a required space therefore, can be avoided.
In specific embodiments, electric power tools may additionally or alternatively relative to the preceding features exhibit the feature that the switch comprises a switch part in connection with the opto-coupler and a further switch part in connection with a conductor from the connector to the drive. Consequently, when a user activates the switch, the switch part associated with the opto-coupler can be changed from the normally conductive state thereof to the non-conductive state, with as a result a high degree of reliability and efficiency. In such an embodiment, the electric power tool may further exhibit the feature that another of normally at least two conductors from the connector to the drive forms a direct connection between the connector and the drive, without any switch part of the switch therein. Thereby, the number of switch parts can be reduced relative to the situation where a two switch parts are provided, one for each conductor between the plug and the drive or motor, with additionally a further switch part for association with the opto-coupler; only a single switch part needs to be provided for one of normally two conductors between the plug and the drive or motor, with additionally also the further switch part for association with the opto-coupler. Thus, a further simplification can be achieved.
Above, embodiments of solutions for the posed problem have been outlined in relatively generic terms, corresponding with the features of the below appended claims. Below, a description of more detailed embodiments will follow, on the basis of the appended drawing. It is, however, emphasised here that such embodiments are merely exemplary and can by no means impose any limitation on the interpretation of the scope of protection, since the scope of protection for the embodiments is defined in the appended claims, in particular the appended independent claim. In the drawing : figure 1 shows a schematic view, described above, to set out the challenge of solving the problem identified above; figure 2 shows a schematic representation of a first embodiment; figure 3 shows a more detailed embodiment, which essentially corresponds with figure 2 and exhibits more detail thereof; figure 4 shows an implementation on a simple circuit board of an embodiment with an adaptation to the tools switch; and figure 5 shows a more detailed embodiment as in figure 3, having the adapted switch of figure 4.
Figures 2 and 3 exhibit an embodiment of circuitry, to be arranged within a housing 13 of a power tool. The circuitry comprises a rectifier circuit 17, arranged in parallel over conductors of power cord 7. The rectifier circuit 17 is shown in more detail in figure 3, where for the sake of clarity the plug 2 and drive or motor 14 are omitted. A rectified power is supplied by the rectifier circuit 17 to a detection circuit 23. The detection circuit 23 comprises opto-coupler 20. Further, the detection circuit 23 is connected to a switch part 19, which forms part of or is associated with the user operable hardware switch 15. The switch part 19 is normally conductive, i.e. when switch 15 has not been operated by the user. Consequently, when an AC voltage is applied over the rectifier 17 after plug 2 has been inserted into a mains power supply source, like a socket 6 in figure 1, the rectifier 17 provides a rectified voltage of for instance 5 V (or any other voltage appropriate for the opto-coupler 20) to the detection circuit 23 comprising the opto-coupler 20. Opto-couplers are known to be able to function also at AC voltages, in which case the rectifier can be omitted and/or replaced by for instance a transformer, to only adapt the voltage level to an AC voltage value required for the opto-coupler to work.
As soon as the appropriate voltage from the rectifier 17 is arranged over the opto-coupler 20, switch part 19 will be bypassed and current will flow through the switch part 19 as well as the bypass. Normally, the user will only thereafter activate switch 15 to set the drive for motor 14 into motion. Simultaneously with closing by the user of the switch parts of the switch 15 to the drive for motor 14, switch part 19 will go into a none conductive state thereof. However, the bypass along the switch 19 will ensure a flow path for current to end from the rectifier 17. This flow of current is only interrupted, after plug 2 is taken from socket 6. If this occurs, then power supply to the rectifier 17 is stopped, and the opto-coupler 20 becomes nonconductive, the same as the state of switch part 19. Consequently, when the plug is reinserted into the socket, the detector 23 will remain powerless.
The detector 23 also comprises a further opto-coupler 21 forming part of a relay circuit 18. With the current flowing through the opto-coupler 20, the opto-coupler 21 is also conductive to allow power to be transferred along the conductors to the drive for motor 14, if switch 15 has been manually operated by the user accordingly. When the plug 2 has been taken from the socket 6, without returning the switch 15 and the switch part 19 to the normal position thereof, reinserting the plug 2 cannot lead to uncontrolled reactivation of the drive or motor 14. More in particular, the detector circuit 23 comprising the opto-coupler 20 will in those circumstances prevent power from being transported from plug 2 to the drive or motor 14, when the relay circuit 18 is in a non-conductive state. As long as the detection circuit 23 remains powerless, the relay circuit 18 will prevent power from being provided to the drive for motor 14. The detection circuit 23 comprising the opto-coupler 20 can only be returned to the original state thereof by reverting the switch 15 and thereby the normally conductive switch part 19 to establish flow of current through the detection circuit 23 and allow the opto-coupler with the bypass to take over the current flow, regardless of the position or state thereafter of the switch part 19. Consequently, when the user subsequently again operates the switch 15 to set the drive for motor 14 into motion, this can be achieved and maintained as long as plug 2 is in the socket 6 and the switch 15 is set to power the drive or motor 14.
Figure 4 exhibits an embodiment of a printed circuit board 24, which allows a considerable freedom of design, for instance with respect to the shape of the printed circuit board 24 to allow the printed circuit board 24 to be arranged within a housing of a power tool.
Likewise, the design of the circuits in figures 2 and 3 exhibits considerable freedom with respect to design parameters. For instance, a solid state relay could be employed instead of the relay circuit 18, provided the costs thereof allow for a commercially viable implementation. However, the relay circuit 18 in figures 2 and 3 comprises for instance a TRIAC 22, which allows the design to be adapted to a power requirement of the motor. Normally, solid state relays do not allow such flexibility in the design of the circuitry, which is why a tailor made solution on a printed circuit board 24 may be preferred over a standardised solid state relay, even though a standard solid state relays may also form part of implementations of present embodiments.
Further, the embodiment of figure 4 exhibits the two-part switch design of the switch 25 comprising a normally non-conductive switch part 26 and the normally conductive switch part 19. Further, switch part 26 of switch 25 acts on a single conductor leading to the drive or motor 14, as exemplified in figure 5. The other conductor comprises the relay circuit 18. Consequently, an essentially traditional two-part 19, 26 switch can be employed to embody the switch 25, provided one of the poles is switch part 19, which is redesigned to be normally conductive. Consequently, a considerable simplification can be achieved using the embodiment of figures 4 and 5, which correspond with respect to essentially only the configuration of the switch 25. A capacitor 27 is arranged in figure 5 between the two conductors leading to drive or motor 14. The capacitor is designed and dimensioned for RFI protection to prevent disruption of exterior devices by reducing radio frequency interference that could be caused by the drive or motor. Further, the capacitor 27 may serve to suppress supply voltage ripples. The capacitor 27 further may serve for ESD (electro-static discharge) protection of the circuitry of at least one of detector 20, relay 18 and rectifier 17, in conjunction and/or cooperation with other electrical components, in particular other capacitors in rectifier 17, relay 18 and/or detector 20 (such other capacitors are not individually indicated in figures 2, 3 or 5 with individual reference numbers).
One connection of the capacitor is arranged between switch part 26 and the drive. Consequently, a discharge of the capacitor 27 over the pins of plug 6 is prevented.
For remaining parts and components, the printed circuit board 24 could comprise a circuit according to figure 5, or according to a combination of figures 2 and 3, but also other practical circuits and designs can be implemented.
From this preceding consideration and also the disclosure above and in the appended drawings as a whole it is directly and immediately evident, that many alternative and additional embodiments are possible within the framework of a solution to the problem commonly underlying all described and specifically shown embodiments, from which it is considered self evident that no specific features or functions or components or circuits of the above specific embodiment description, referring to the appended drawings, can be taken as a limitation on the scope of protection for embodiments as defined in the appended claims, in particular the independent claims thereof. For example, other power tools then grinders can benefit from a restart prevention system. The relay circuit 18 can be embodied in any manner, without any limitation to the specific embodiment of figures 2, 3 and 5, for instance using solid-state relays, which have already been mentioned above as a potential alternative. It is in principle possible to arrange the relay 18 and switch part 26 of switch 25 in one of the conductors between the connector or plug 6 and the drive or motor 14, even though in such an embodiment inductive effects on the circuitry need to be addressed using additional components and/or features, which are in themselves well within the realm of the skilled person's capabilities. From these considerations it is evident that only the terms and definition of embodiments according to the appended claims can limit the scope of protection therefore .

Claims (12)

1. Een elektrisch gereedschap, in het bijzonder een slijper, omvattende: - een door een gebruiker selectief op een vermogensvoeding aan te sluiten voedingsconnector; - een door een gebruiker te bedienen hardware schakelaar; en - een elektrische aandrijving, in het bijzonder een elektrische motor, - waarbij de schakelaar is aangebracht in een verbinding tussen de voedingsconnector en de aandrijving om selectief toevoer van vermogen naar de aandrijving toe te staan, wanneer de voedingsconnector is verbonden met de vermogens, GEKENMERKT DOOR - een herstart voorkomend systeem, dat is ingericht om herstart van de aandrijving te voorkomen na tijdelijke afsluiting of onderbreking van de vermogensvoeding met de schakelaar in een stand voor toevoer van vermogen aan de aandrijving, welke tenminste een opto-koppelaar omvat.An power tool, in particular a grinder, comprising: - a power supply connector to be selectively connected to a power supply by a user; - a hardware switch to be operated by a user; and - an electric drive, in particular an electric motor, - wherein the switch is arranged in a connection between the power connector and the drive to allow selective supply of power to the drive when the power connector is connected to the power, FEATURES DOOR - a restart preventing system, which is arranged to prevent a restart of the drive after a temporary shutdown or interruption of the power supply with the switch in a position for supplying power to the drive, which comprises at least one opto-coupler. 2. Het elektrische gereedschap volgens conclusie 1, waarbij het herstart voorkomende systeem een gelijkrichter omvat.The power tool of claim 1, wherein the restart preventive system comprises a rectifier. 3. Het elektrische gereedschap volgens conclusie 1 of 2, waarbij het herstart voorkomende systeem is aangebracht tussen de voedingsconnector en de schakelaar.The power tool of claim 1 or 2, wherein the restart preventive system is disposed between the power connector and the switch. 4. Het elektrische gereedschap volgens conclusie 1, 2 of 3, waarbij de opto-koppelaar in serie is geschakeld met een normaal geleidend schakelaardeel van de schakelaar, dat geopend wordt niet-geleidend te zijn door bediening door een gebruiker van de schakelaar om de aandrijving te activeren.The power tool of claim 1, 2 or 3, wherein the opto-coupler is connected in series with a normally conductive switch portion of the switch, which is opened to be non-conductive by operation by a user of the switch about the drive to activate. 5. Het elektrische gereedschap volgens conclusie 4, waarbij de opto-koppelaar is aangebracht in een bypass langs het schakelaardeel van de schakelaar.The power tool of claim 4, wherein the opto-coupler is arranged in a bypass along the switch portion of the switch. 6. Het elektrische gereedschap volgens een willekeurige van de voorgaande conclusies, waarbij de opto-koppelaar samenhangt met een relais in ten minste een geleider van de voedingsconnector naar een of elk van de schakelaar en de aandrijving.The power tool according to any of the preceding claims, wherein the opto-coupler is associated with a relay in at least one conductor from the power connector to one or each of the switch and the drive. 7. Het elektrische gereedschap volgens conclusie 6, waarbij het relais een solid state relais is.The power tool of claim 6, wherein the relay is a solid state relay. 8. Het elektrische gereedschap volgens conclusie 6 of 7, waarbij het relais een verdere opto-koppelaar omvat.The power tool according to claim 6 or 7, wherein the relay comprises a further opto-coupler. 9. Het elektrische gereedschap volgens een willekeurige van de voorgaande conclusies, waarbij de schakelaar een schakelaardeel omvat, dat in verbinding staat met de opto-koppelaar, alsmede een verder schakelaardeel, dat in verbinding staat met een geleider van de voedingsconnector naar de aandrijving.The power tool according to any of the preceding claims, wherein the switch comprises a switch part that is connected to the opto-coupler, as well as a further switch part that is connected to a conductor from the power connector to the drive. 10. Het elektrische gereedschap volgens conclusie 9, waarbij een andere van ten minste twee geleiders van de voedingsconnector naar de aandrijving een directe verbinding vormt tussen de voedingsconnector en de aandrijving, zonder enig schakelaardeel van de schakelaar daarin.The power tool of claim 9, wherein another of at least two conductors from the power connector to the drive forms a direct connection between the power connector and the drive, without any switch part of the switch therein. 11. Het elektrische gereedschap volgens conclusies 6 en 9, waarbij een andere van ten minste twee geleiders van de voedingsconnector naar de aandrijving het relais omvat.The power tool according to claims 6 and 9, wherein another of at least two conductors from the power connector to the drive comprises the relay. 12. Een systeem, dat is geconfigureerd om herstart van een elektrisch gereedschap, in het bijzonder een slijper, te voorkomen, meer in het bijzonder van een aandrijving van het gereedschap na tijdelijke afsluiting van een voedingsconnector van de vermogens, met een door een gebruiker bedienbare schakelaar van het gereedschap in een toestand voor het voeden van vermogen aan de aandrijving, waarbij het systeem de eigenschap van tenminste een van de voorgaande conclusies omvat om tenminste een opto-koppelaar te bevatten.12. A system configured to prevent a power tool, in particular a sharpener, from being restarted, more particularly a power tool drive after temporary disconnection of a power supply connector with a user-operable switch of the tool in a power supply state to the drive, the system comprising the feature of at least one of the preceding claims to include at least one opto-coupler.
NL2011696A 2013-10-29 2013-10-29 Electric power tool and a restart prevention system therefor. NL2011696C2 (en)

Priority Applications (3)

Application Number Priority Date Filing Date Title
NL2011696A NL2011696C2 (en) 2013-10-29 2013-10-29 Electric power tool and a restart prevention system therefor.
EP14183269.1A EP2886262A3 (en) 2013-10-29 2014-09-02 Electric power tool and a restart prevention system therefor
RU2014139650A RU2014139650A (en) 2013-10-29 2014-09-30 ELECTRIC DRIVE TOOL AND SYSTEM FOR PREVENTING ITS RE-STARTING

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
NL2011696 2013-10-29
NL2011696A NL2011696C2 (en) 2013-10-29 2013-10-29 Electric power tool and a restart prevention system therefor.

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NL2011696C2 true NL2011696C2 (en) 2015-04-30

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NL2011696A NL2011696C2 (en) 2013-10-29 2013-10-29 Electric power tool and a restart prevention system therefor.

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NL (1) NL2011696C2 (en)
RU (1) RU2014139650A (en)

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Publication number Priority date Publication date Assignee Title
WO2017022361A1 (en) * 2015-07-31 2017-02-09 日立工機株式会社 Electric tool
US10833503B2 (en) * 2017-08-11 2020-11-10 Black & Decker Inc. Hardware control for prevention of dangerous restart in a power tool

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US20120306291A1 (en) * 2009-10-28 2012-12-06 Bernd Wirnitzer Electric machine tool comprising a starting inhibitor

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Publication number Priority date Publication date Assignee Title
US4307325A (en) * 1980-01-28 1981-12-22 Black & Decker Inc. Digital control system for electric motors in power tools and the like
JPH10127073A (en) * 1996-10-17 1998-05-15 Hitachi Koki Co Ltd Soft starter
US6087815A (en) * 1997-04-23 2000-07-11 Fiskars Inc. Portable power system using DC to DC converter
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US20120306291A1 (en) * 2009-10-28 2012-12-06 Bernd Wirnitzer Electric machine tool comprising a starting inhibitor
DE102011013884A1 (en) * 2011-03-04 2012-09-06 C. & E. Fein Gmbh control unit

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EP2886262A3 (en) 2015-08-12
EP2886262A2 (en) 2015-06-24
RU2014139650A (en) 2016-04-20

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