EP3380853A1 - Prüfeinrichtung für elektroantriebe - Google Patents
Prüfeinrichtung für elektroantriebeInfo
- Publication number
- EP3380853A1 EP3380853A1 EP16819426.4A EP16819426A EP3380853A1 EP 3380853 A1 EP3380853 A1 EP 3380853A1 EP 16819426 A EP16819426 A EP 16819426A EP 3380853 A1 EP3380853 A1 EP 3380853A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- hydraulic
- unit
- electric drive
- test device
- hydraulic unit
- Prior art date
- Legal status (The legal status 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 status listed.)
- Withdrawn
Links
Classifications
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01R—MEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
- G01R31/00—Arrangements for testing electric properties; Arrangements for locating electric faults; Arrangements for electrical testing characterised by what is being tested not provided for elsewhere
- G01R31/001—Measuring interference from external sources to, or emission from, the device under test, e.g. EMC, EMI, EMP or ESD testing
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01M—TESTING STATIC OR DYNAMIC BALANCE OF MACHINES OR STRUCTURES; TESTING OF STRUCTURES OR APPARATUS, NOT OTHERWISE PROVIDED FOR
- G01M15/00—Testing of engines
- G01M15/02—Details or accessories of testing apparatus
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01R—MEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
- G01R31/00—Arrangements for testing electric properties; Arrangements for locating electric faults; Arrangements for electrical testing characterised by what is being tested not provided for elsewhere
- G01R31/005—Testing of electric installations on transport means
- G01R31/006—Testing of electric installations on transport means on road vehicles, e.g. automobiles or trucks
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01R—MEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
- G01R29/00—Arrangements for measuring or indicating electric quantities not covered by groups G01R19/00 - G01R27/00
- G01R29/08—Measuring electromagnetic field characteristics
- G01R29/0807—Measuring electromagnetic field characteristics characterised by the application
- G01R29/0814—Field measurements related to measuring influence on or from apparatus, components or humans, e.g. in ESD, EMI, EMC, EMP testing, measuring radiation leakage; detecting presence of micro- or radiowave emitters; dosimetry; testing shielding; measurements related to lightning
- G01R29/0821—Field measurements related to measuring influence on or from apparatus, components or humans, e.g. in ESD, EMI, EMC, EMP testing, measuring radiation leakage; detecting presence of micro- or radiowave emitters; dosimetry; testing shielding; measurements related to lightning rooms and test sites therefor, e.g. anechoic chambers, open field sites or TEM cells
Definitions
- the invention relates to a test device for electric drives and to a method for testing an electric drive by means of a test device.
- EMC regulations electromagnetic compatibility
- the electric drives which consist for example of a 20E! Ektromotor and an associated control unit for controlling this motor, measured in an EMC laboratory in a corresponding measuring chamber under realistic loads.
- Electric drive is connected to an electrical generator, which generates electrical energy in the load operation of the electric drive from mechanical energy (provided by the electric drive) and in
- 35Recuperation operation outputs mechanical energy to the electric drive to simulate overrun operation.
- test setup is very large and heavy and therefore difficult to handle
- Femer is a method for testing an electric drive
- the invention relates to a
- the testing device comprises a measuring chamber shielded against electromagnetic radiation. These In particular, it may be a chamber shielded with respect to high-frequency electromagnetic radiation. Furthermore, the test device comprises a receptacle arranged in the measuring chamber for an electric drive to be tested, which is in particular an electric motor.
- the electric drive is fixed mechanically.
- an electric drive coupled on the output side, integrated into a hydraulic circuit hydraulic unit is provided, which is designed to provide a hydraulic load and / or a hydraulic drive for the electric drive to be tested.
- “Abortion” means in
- Hydraulic unit in particular a rotatably mounted shaft of this hydraulic unit is connected.
- the hydraulic unit can be formed in particular by a rotary piston pump.
- the main advantage of the test device according to the invention is the fact that at a given power of the electric drive, the hydraulic load or the hydraulic drive forming
- the hydraulic unit is in the
- Measuring chamber arranged. Unlike one
- the hydraulic circuit is to
- a control unit may be provided, which for a load operation the
- Hydraulic unit as hydraulic pump operates and for a
- the hydraulic circuit comprises a first hydraulic control valve for regulating the fluid flow through the
- the hydraulic circuit has a first arranged between a fluid container and the hydraulic unit
- the fluid container can in particular form a reservoir for hydraulic fluid, from which hydraulic fluid is withdrawn in the advance direction and flows back into the hydraulic fluid from the return line.
- the hydraulic fluid in the fluid container can be depressurized
- the first hydraulic pump is for supplying a pressurized hydraulic fluid to the first hydraulic pump
- Hydraulic unit designed to allow cavitation in the hydraulic fluid
- the first hydraulic pump may also be provided with hydraulic fluid a pressure to provide such that the hydraulic unit is operable as a hydraulic motor.
- the hydraulic circuit has a unit for providing a hydraulic pressure to the hydraulic unit, which is designed to provide a pressurized hydraulic fluid such that the hydraulic unit can be operated as a drive of the electric drive to be tested.
- the unit for providing a hydraulic pressure is formed by a second hydraulic pump, which is connected on the pressure side to the hydraulic unit. This second
- the hydraulic pump may have an output such that the hydraulic unit acting as a hydraulic pump is driven by the pressurized hydraulic fluid provided by it in such a way that a pushing operation and thus a recuperation operation are simulated on the electric drive to be tested. It should be mentioned that in common
- in the hydraulic circuit is a
- Hydraulic fluid provided which is fluidly coupled to the hydraulic unit such that for operating the hydraulic unit as a hydraulic motor of this hydraulic unit pressurized hydraulic fluid from the storage unit can be fed.
- the storage unit has the advantage that a lower power hydraulic pump can be used to charge the storage unit, since the load cycles of the electric drive can be used to charge the storage unit by the hydraulic pump.
- a second hydraulic control valve for controlling the drive power of the hydraulic unit is provided between the hydraulic unit and the storage unit.
- the storage unit is coupled to the second hydraulic pump.
- This second hydraulic pump is for
- Electric drive is driven by the second hydraulic pump
- the storage unit is coupled to the hydraulic unit such that when operating the hydraulic unit as a hydraulic pump, the storage unit by the hydraulic unit itself with
- the load phases of the electric drive to be tested are used to charge the storage unit.
- the hydraulic fluid provided by the hydraulic unit is supplied to the storage unit and stored there until the initiation of the recuperation phase.
- the hydraulic unit is then driven by the pressurized hydraulic fluid present in the storage unit.
- the hydraulic lines of the hydraulic circuit are formed at least in the inner region of the measuring chamber and / or in the lead-through region by the walls of the measuring chamber made of an electrically non-conductive material. Thus, these hydraulic lines cause no negative interference with respect to the EMC measurements.
- the testing device is characterized by its mobile training.
- the electric drive and the associated hydraulic unit can be placed at almost 195 monten locations in the measuring chamber, which in the case of an electrical load in the form of a generator due to the
- the receptacle is formed by a frame or a mount for direct mechanical fixation of the electric drive to be tested, or the receptacle is formed by a motor mount built into a motor vehicle.
- the electric drive for testing either directly on the bracket or the receptacle
- the entire vehicle which in this case is an electric vehicle or a hybrid vehicle and is driven by the electric drive, is placed in the measuring chamber. This allows both individual electric motors (possibly together with their control units) and motor vehicles directly in terms
- 210elektromag netisch compatibility can be measured.
- the output-side coupling of the electric drive to be tested with the hydraulic unit takes place via at least one roller of a chassis dynamometer.
- the electric drive is about the 215Wheels of the motor vehicle with the at least one role of
- Hydraulic unit drivingly coupled. This allows the
- Electric drive mechanical energy transferred to the hydraulic unit EMC measurement in load operation of the electric drive
- Electric drive mechanical energy transferred to the hydraulic unit (EMC measurement in load operation of the electric drive) or it can be a
- the chassis dynamometer is formed by a platform acting as a mobile platform in the measurement chamber
- the mobile platform may include the rollers of the chassis dynamometer and one or more hydraulic units.
- This at least one hydraulic unit can after introduction of the platform in the test room by means of hydraulic hoses in the
- the invention relates to a
- Method of testing an electric drive for electromagnetic compatibility comprises the following steps:
- FIG. 1 shows by way of example a first embodiment of a test device in a schematic block diagram representation
- 265 shows by way of example a second embodiment of a test device in a schematic block diagram representation
- FIG. 3 shows by way of example a third embodiment of a test device in a schematic block diagram representation
- FIG. 4 shows by way of example a fourth embodiment of a test device in a schematic block diagram representation
- FIG. 5 shows by way of example an embodiment of a test device with a 275 arranged in the measuring chamber chassis dynamometer.
- FIG. 1 shows a first embodiment of a test device 1 according to the invention.
- the testing device 1 comprises a for
- test object 280 (EMC) of test objects suitable measuring chamber 2, which is designed to receive an electric drive to be tested 3, hereinafter also called the test object.
- the measuring chamber 2 can, in particular, against the entry or exit of high-frequency electromagnetic
- the electric drive 3 to be tested can in particular a in the Automobilg. Shipping technology, bicycle technology or motorcycle technology 290insuitable electric motor.
- the electric drive 3 may in particular also include an electronic control unit, which is designed to control the electric motor.
- the measuring chamber 2 In the measuring chamber 2 is a receptacle for the to be tested
- This receptacle can in particular be designed such that the electric drive 3 is held directly mechanically fixed for its testing. It can be formed for example by a frame or a motor mount.
- the electric drive 3 under load and / or in recuperation, i. in a state in which the electric drive 3 is driven externally and thus functions as an electric generator to test is a
- Hydraulic unit 5 is provided. This hydraulic unit 5 can be any hydraulic unit 5.
- the electric drive 3 is
- the hydraulic unit 5 is preferably arranged inside the measuring chamber 2.
- the hydraulic unit 5 is integrated in a hydraulic circuit 4, in which a hydraulic fluid can be conveyed circumferentially.
- the hydraulic circuit may in particular comprise a fluid container 7, which serves as a reservoir for hydraulic fluid.
- Hydraulic unit 5 in a first operating state as a hydraulic pump operable. This is due to the mechanical
- a first hydraulic control valve 6 is provided in the hydraulic circuit 4. This hydraulic control valve 6 is in particular designed such that, depending on a control variable applied to the first hydraulic control valve 6
- the volumetric flow rate per unit of time conveyed in the hydraulic circuit 4 is variable.
- This hydraulic control valve 6 is preferably provided with respect to the flow direction F of the hydraulic fluid after the hydraulic unit 5, i. on the pressure side of the hydraulic unit 5 operated as a hydraulic pump.
- the load state of the electric drive 3 can be varied.
- the hydraulic unit 5 is fluidly coupled to a first hydraulic pump 8 on the suction side, so that hydraulic fluid can be supplied to the suction side of the hydraulic unit 5 under pressure by the first hydraulic pump 8.
- the hydraulic pump 8 can be driven by an electric motor 8.1, for example.
- the hydraulic pump 8 may be designed such that hydraulic fluid is provided to the hydraulic unit 5 with a predefined set pressure to prevent cavitation (ie, bubble formation in the hydraulic fluid).
- Hydraulic circuit 4 for example, the first hydraulic control valve 6, the fluid tank 7, and the first hydraulic pump 8 are provided outside this measuring chamber 2. In other words, only the
- Hydraulic unit 5 and provided for the supply of this hydraulic unit lines within the measuring chamber 2 provided to
- the hydraulic lines can by means of high frequency dense or substantially high-frequency-tight passages through one or more
- Passages are formed by one or more waveguides (e.g., tube having a round, rectangular, or polygonal cross-section of electrically conductive material) whose cut-off frequency is above the frequency range in the EMC measurements in measuring chamber 2
- waveguides e.g., tube having a round, rectangular, or polygonal cross-section of electrically conductive material
- the waveguide serves as a short circuit for the propagating in the measuring chamber 2 electromagnetic radiation.
- the waveguide becomes conductive only above the cut-off frequency, so that the measuring chamber 2 in the region of the waveguide for electromagnetic radiation with frequencies below the cut-off
- the waveguide can be passed through an opening in the wall of the measuring chamber 2 and suitably,
- the waveguide can be unilaterally or protrude from both sides of the wall of the measuring chamber 2.
- the hydraulic line can be formed by the waveguide itself.
- the waveguide for example, suitable
- the hydraulic lines are preferably designed as electrically non-conductive hydraulic lines.
- Measuring chamber 2 are closed briefly, so that entry or exit of electromagnetic radiation by the migration of the measuring chamber 2 is effectively avoided.
- Test device 1 according to Figure 1, a method for testing a
- Electric drive 3 described in more detail. First, the test of the electric drive 3 under load by means of the hydraulic unit 5 will be described. In this case, the electric drive 3 is supplied with electrical energy such
- the hydraulic unit 5 acts as a hydraulic pump and delivers hydraulic fluid in the flow direction F.
- the hydraulic fluid is conveyed to the first hydraulic control valve 6 by the hydraulic unit 5.
- This hydraulic control valve is controlled such that a desired flow rate per unit time
- Electric drive 3 can be varied.
- the hydraulic fluid is used in particular 400 taken in a closed circuit from the fluid container 7 and conveyed back after flowing through the hydraulic unit 5 and the hydraulic control valve 6 in the fluid container 7.
- the provided between the fluid tank 7 and the hydraulic unit 5 first hydraulic pump 8 serves to promote the hydraulic fluid with a certain target pressure
- the first hydraulic pump 8 can also be designed in such a way that this pressurized hydraulic fluid of the hydraulic unit
- the electric motor 3 is not as a drive but as a load in relation to the
- Hydraulic unit 5 used.
- the hydraulic fluid flow provided by the first hydraulic pump 8 is converted by the hydraulic unit 5 into a rotational movement, which is used to drive the electric drive 3
- Hydraulic unit 5 deliver less power when operating as a hydraulic motor
- the method for testing the electric drive 3 can be carried out at intervals, i. in successive
- the hydraulic unit 5 alternately acts as a drive (Hydraulic unit 5 is operated as a hydraulic motor) or as a load (hydraulic unit 5 is operated as a hydraulic pump) for the
- the time intervals in which the hydraulic unit 5 is used as a load are longer than the time intervals
- control unit not shown in the figures, may be provided for controlling the above-mentioned processes or for controlling the components of the
- the electric drive 3 e.g., electrical power supply to the electric drive 3.
- FIG. 2 shows a second exemplary embodiment of a testing device 1 according to the invention. Below are just those
- test device 1 according to FIG. 2 The essential difference between the test device 1 according to FIG. 2 and the test device 1 according to FIG. 1 is that in the hydraulic circuit 4, 460, in particular, between the first hydraulic pump 8 and the
- Hydraulic unit 5 a recuperation unit 20 is provided by means of the hydraulic unit 5 is supplied in the energy recovery operation with pressurized hydraulic fluid such that the
- Hydraulic unit 5 is operated as a hydraulic motor. More in detail is in
- Fluid container 7 connects to the hydraulic unit 5, a three-way valve 22 is provided, the first fluid line connection with a leading in the direction of the fluid container 7 and the first hydraulic pump 8
- Fluid line connection with a second hydraulic pump ⁇ is connected.
- the second hydraulic pump 9 can for example by a
- the second hydraulic pump 9 is suction side by means of a fluid line 21 to the pressure side of the first
- the three-way valve 22 is controlled such that in the case of operation of the hydraulic unit 5 as a hydraulic pump, a fluidic connection between the first hydraulic pump 8 and the fluid container 7 and the
- Three-way valve 22 controlled such that a direct promotion of the hydraulic fluid from the first hydraulic pump 8 and the fluid container 4907 is suppressed to the hydraulic unit 5, but a promotion of
- Hydraulic fluid by means of the second hydraulic pump 9 in the direction of the hydraulic unit 5 (indicated by the arrow P2) is made possible.
- the second hydraulic pump 9 is designed to promote hydraulic fluid to the hydraulic unit 5 to the hydraulic unit 5 as
- FIG. 3 shows a third exemplary embodiment of a test device 1 according to the invention.
- the third exemplary embodiment of the test device 1 will be described in more detail, by means of which this exemplary embodiment differs from the previously described second exemplary embodiment according to FIG. 2.
- test device 1 according to FIGS. 1 and 2 or of the method for testing the electric drive 3.
- a first essential difference of the test device 1 according to FIG. 3 compared to the test device according to FIG. 2 is that a storage unit 10 is provided in the fluid line between the second hydraulic pump 9 and the three-way valve 22, which is designed to store pressurized hydraulic fluid ,
- the storage unit 10 is fluidly connected to the three-way valve 22 via a second hydraulic control valve 11.
- Hydraulic pump 8 connected. Alternatively, however, too
- the three-way valve is driven such that a fluidic connection between the first hydraulic pump 8 and the fluid container 7 and the
- suction side of the hydraulic unit 5 is produced (indicated by the arrow P1).
- pressurized hydraulic fluid is introduced into the storage unit 10 by means of the second hydraulic pump 9 and due to the with respect to the pressure side of the storage unit 10th
- Hydraulic unit 5 can be promoted, thereby causing the drive of the hydraulic unit 5 and thus their operation as a hydraulic motor. At this time, the second hydraulic control valve 11 becomes so
- Hydraulic unit 5 as a hydraulic motor by providing pressurized hydraulic fluid from the storage unit 10) to charge.
- FIG. 4 shows a fourth exemplary embodiment of a testing device 1 according to the invention. Below are just those
- test device 1 Analogous to the exemplary embodiments described above according to FIGS. 2 and 3, the test device 1 according to FIG.
- a three-way valve 22 which is switchable in at least two states, in a first state (arrow P1), in which a fluidic connection between the first hydraulic pump 8 and the hydraulic unit 5 is made ( Hydraulic unit 5 as a hydraulic pump) and a second state (arrow P1)
- Storage unit 10 is charged by the hydraulic unit 5 even during their operation as a hydraulic pump, so that can be dispensed with the use of a second hydraulic pump 9.
- a further three-way valve 23 is provided in the fluid line between the first hydraulic control valve 5806 and the fluid container 7, which can be switched into two switching states, namely a first switching state (arrow P3), in which via the further three-way valve 23, a fluid connection between the first hydraulic control valve 6 and the fluid container 7 is made, and a second switching state 590 (arrow P4) , in which via the further three-way valve 23, a fluid connection between the first hydraulic control valve 6 and the
- Storage unit 10 is produced.
- Hydraulic pump acts, the three-way valve 22 in the direction of arrow P1 and the other three-way valve 23 is connected in the direction of arrow P4
- the fluid tank 7 is preferably dimensioned such and it includes so much hydraulic fluid that it is completely filled
- the control of the first hydraulic control valve 6 is preferably designed such that the resistance caused by the first hydraulic control valve 6 for the
- Hydraulic fluid is reduced. Alternatively, between the
- Lastentkopplung the hydraulic unit 5 may be provided by the memory unit 10.
- the further three-way valve 23 can be controlled such that a fluid flow in the direction of the arrow P3
- 620lm energy recovery interval of the electric drive 3 (hydraulic unit 5 acts as a hydraulic motor) is the three-way valve 22 according to
- Hydraulic unit 5 as a hydraulic motor, the mechanical drive of
- Hydrauliikregelventil 11 serves to control the performance of the hydraulic unit fifth
- Hydraulic fluid from the storage unit 10) to charge.
- FIG. 5 shows a further exemplary embodiment in which a roller dynamometer 30 (also called a vehicle test bench) is provided in the measuring chamber 2.
- Roller test stands 30 per se are well known to the person skilled in the art. They have at least two pairs of rollers 31, which are provided for receiving the 645Reifen the drive axle. In four-wheel drive
- Vehicles four pairs of rollers 31 are provided to accommodate all driven tires in pairs of rollers.
- a motor vehicle 32 can be placed on the chassis dynamometer 65030 so that its driven wheels (wheels of the wheels).
- the motor vehicle 32 an electric vehicle or a
- Be hybrid vehicle i. the drive of the motor vehicle 32 is effected by an electric drive 3.
- Motor mount for example, a motor mount on the
- At least one roller 31 of the chassis dynamometer 30 is connected to the
- Hydraulic unit 5 This operative connection can by a direct
- Coupling or indirect coupling for example via a gearbox.
- either the hydraulic unit 5 can be driven by the roller 31 665 or the roller 31 by the hydraulic unit 5. Since the roller 31 are drivingly coupled to the electric drive 3 via the wheels of the motor vehicle 32, a drive connection is produced between the electric drive 3 and the hydraulic unit 5.
- 670lm case of multiple pairs of rollers can be several hydraulic units 5
- hydraulic units 5 may in particular be incorporated into the hydraulic circuit 4 in such a way that they are subjected to the same or essentially the same drive power or braking power.
- the hydraulic units 5 can be integrated into the hydraulic circuit 4 parallel to one another, ie the hydraulic units 5 are arranged in parallel branches of the hydraulic circuit 4.
- the rollers 31 a plurality of pairs of rollers via a transmission with a Hydraulic unit 5 to be connected.
- Hydraulic unit 5 may be coupled.
- Hydraulic circuit 4 may alternatively be selected according to one of the embodiments according to Figures 2 to 4, i. the measuring chamber 2 can in these embodiments according to figures 2 to 4 instead of a direct
- the essential advantage of the embodiment according to FIG. 5 is that even an electric drive 3 already installed in a motor vehicle 32
- Compatibility can be measured.
- at least one hydraulic unit 5 for driving or for loading the rollers 31 of the chassis dynamometer 30 is achieved that it is much smaller and lighter at the same power and thus designed to be mobile
- the hydraulic unit 5 is neutral or essentially neutral with respect to EMC aspects, ie. it is revealed by the
- Hydraulic unit 5 no or substantially no parasitic effects in the 710EMV measurement.
- test device 1 compared to
- Electric drive or an electrical load is used, cheaper to produce.
- the chassis dynamometer 30 may be particularly mobile.
- the rollers 31 and the at least one hydraulic unit 5 can be installed in the mobile chassis dynamometer 30 so that it can be introduced into the test space, in particular into the measuring chamber 2. After the introduction of the chassis dynamometer 30
- the hydraulic unit 5 can be integrated, for example via hydraulic hoses in the hydraulic circuit 4 and thus to the other components of the hydraulic circuit 4, which are provided in particular outside the measuring chamber 2, are connected. This results in a significant cost savings compared to stationary chassis dynamometers 30
- test rooms can be used that were originally not structurally intended for such a chassis dynamometer.
- 735Hydraulikpumpe 9 according to the third exemplary embodiment ( Figure 3) is used to - if necessary - in addition to the conveyed by the hydraulic unit 5 in the operating state as a hydraulic pump fluid to supply the memory unit 10 with pressurized hydraulic fluid. 740Bezugs Schweizer Liste
Landscapes
- Physics & Mathematics (AREA)
- General Physics & Mathematics (AREA)
- Chemical & Material Sciences (AREA)
- Engineering & Computer Science (AREA)
- Combustion & Propulsion (AREA)
- Electromagnetism (AREA)
- Fluid-Pressure Circuits (AREA)
- Testing Of Devices, Machine Parts, Or Other Structures Thereof (AREA)
- Investigating Strength Of Materials By Application Of Mechanical Stress (AREA)
Abstract
Description
Claims
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| DE102015120652.8A DE102015120652A1 (de) | 2015-11-27 | 2015-11-27 | Prüfeinrichtung für Elektroantriebe |
| PCT/DE2016/100541 WO2017088853A1 (de) | 2015-11-27 | 2016-11-22 | Prüfeinrichtung für elektroantriebe |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| EP3380853A1 true EP3380853A1 (de) | 2018-10-03 |
Family
ID=57680028
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP16819426.4A Withdrawn EP3380853A1 (de) | 2015-11-27 | 2016-11-22 | Prüfeinrichtung für elektroantriebe |
Country Status (3)
| Country | Link |
|---|---|
| EP (1) | EP3380853A1 (de) |
| DE (3) | DE102015120652A1 (de) |
| WO (1) | WO2017088853A1 (de) |
Families Citing this family (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN108333456B (zh) * | 2018-04-17 | 2024-03-29 | 珠海英搏尔电气股份有限公司 | 一种适用于旋转负载的emc测试系统及其测试方法 |
| DE102019133393A1 (de) * | 2019-12-06 | 2021-06-10 | TDK Europe GmbH | Hydraulische Vorrichtung zur Prüfung der elektromagnetischen Verträglichkeit und/oder anderer Eigenschaften eines Elektromotors |
| CN118937859A (zh) * | 2024-08-29 | 2024-11-12 | 杭叉集团股份有限公司 | 工业车辆电驱系统电磁兼容测试装置及其测试方法 |
Citations (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| DE3623264C1 (de) * | 1986-07-10 | 1993-02-11 | Renk Ag Zahnraeder | Pruefeinrichtung fuer Antriebseinheiten |
| CN103941107A (zh) * | 2014-05-05 | 2014-07-23 | 中国商用飞机有限责任公司 | 用于电机的电磁辐射测试的扭矩加载系统 |
Family Cites Families (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| DE102011105923A1 (de) * | 2011-06-29 | 2013-01-03 | Robert Bosch Gmbh | Hydraulisches Antriebsystem mit mehreren Hydraulikpumpen und einer Energierückgewinnung |
| DE102012212886B4 (de) * | 2012-07-23 | 2017-08-03 | Bayerische Motoren Werke Aktiengesellschaft | Mobiler Prüfstandaufbau auf einer fahrbaren Palettenkonstruktion zur Durchführung einer EMV-Messung |
| EP2803996A1 (de) * | 2013-05-15 | 2014-11-19 | Merck Patent GmbH | Messvorrichtung der Leitfähigkeit einer Flüssigkeit zum Bestimmen sehr niedriger Mengen an gesamtem organisch gebundenem Kohlenstoff (TOC) in reinem und ultrareinem Wasser |
-
2015
- 2015-11-27 DE DE102015120652.8A patent/DE102015120652A1/de not_active Withdrawn
-
2016
- 2016-11-22 DE DE202016008598.1U patent/DE202016008598U1/de not_active Expired - Lifetime
- 2016-11-22 EP EP16819426.4A patent/EP3380853A1/de not_active Withdrawn
- 2016-11-22 WO PCT/DE2016/100541 patent/WO2017088853A1/de not_active Ceased
- 2016-11-22 DE DE112016005429.7T patent/DE112016005429A5/de not_active Withdrawn
Patent Citations (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| DE3623264C1 (de) * | 1986-07-10 | 1993-02-11 | Renk Ag Zahnraeder | Pruefeinrichtung fuer Antriebseinheiten |
| CN103941107A (zh) * | 2014-05-05 | 2014-07-23 | 中国商用飞机有限责任公司 | 用于电机的电磁辐射测试的扭矩加载系统 |
Non-Patent Citations (2)
| Title |
|---|
| "HYDRAULIKPRESSE - KUNDEN- UND MITARBEITERMAGAZIN DER HANSA-FLEX GRUPPE / MAGAZINE FOR CUSTOMERS AND EMPLOYEES OF THE HANSA-FLEX GROUP, 3/2015", 25 November 2015, article -: "WELTWEIT EINMALIGES EMV-PRÜFSTANDSKONZEPT", pages: 12 - 14, XP055734547 * |
| See also references of WO2017088853A1 * |
Also Published As
| Publication number | Publication date |
|---|---|
| DE102015120652A1 (de) | 2017-06-01 |
| WO2017088853A1 (de) | 2017-06-01 |
| DE112016005429A5 (de) | 2018-08-16 |
| DE202016008598U1 (de) | 2018-08-01 |
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