AT63012B - Device for passing through the synchronism of rotary field induction motors, to whose slip rings multi-phase collector machines with self-excitation are connected. - Google Patents

Device for passing through the synchronism of rotary field induction motors, to whose slip rings multi-phase collector machines with self-excitation are connected.

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Publication number
AT63012B
AT63012B AT63012DA AT63012B AT 63012 B AT63012 B AT 63012B AT 63012D A AT63012D A AT 63012DA AT 63012 B AT63012 B AT 63012B
Authority
AT
Austria
Prior art keywords
synchronism
excitation
self
passing
slip rings
Prior art date
Application number
Other languages
German (de)
Original Assignee
Siemens Schuckertwerke Gmbh
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 Siemens Schuckertwerke Gmbh filed Critical Siemens Schuckertwerke Gmbh
Application granted granted Critical
Publication of AT63012B publication Critical patent/AT63012B/en

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  • Synchronous Machinery (AREA)

Description

  

   <Desc/Clms Page number 1> 
 
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 dann auch das Statorstuomsystem ist mit, das ja nur vom Rotor aus durch irgend eine vorhandene Phasendrehung der Bürsten oder der Wicklung erhalten wird. 



   Unter Zugrundelegung eines   Vektordiagrammes   für die Stromsysteme wie in Fig. 3 würde also auch   der Magnetisierungsstrom, und   daher auch das Feld und die elektromotorische Kraft 
 EMI2.2 
 dauernd im Raume rotieren, ebenso natürlich auch die Stromsysteme und die elektromotorische   Kraft-Wirkliches Gleichgewicht kann   nur dann vorhanden sein. wenn die elektromotorische Kraft E, des Rotors von vornherein genau in die Richtung des   Rotorstromsvstemes i, fällt,   das sie erzeugen und aufrechterhalten soll. Diese Lage ist in Fig. 4 dargestellt. Das magnetisierende Stromsystem muss senkrecht auf dem Rotorstromsysteme stehen, damit das Feld eine dem Strome gleichgerichtete Spannung erzeugen kann. 



   An jeder Drehfeldkollektormaschine stehen zwei Grössen willkürlich zur Wahl, der Phasenwinkel   #035   zwischen Stator-und Rotorstromsystem. der beispielsweise durch Bürstenverdrehung geregelt werden kann, und das   Verhältnis   der wirksamen   A. ll1perewindungszahlen   von Rotor und Stator, kurz die   Stromübersetzung genannt.   die durch Transformatoren, Stromabzweigungen. doppelte Bürstensätze und ähnliche Mittel geregelt werden kann. Um nun die Drehfeldmaschine mit Selbsterregung zur Erzeugung von Gleichstrom geeignet zu machen, sollen diese beiden Grössen gemäss der Erfindung in der Weise voneinander abhängig geregelt werden, dass während des Durchschreiten des Synchronismus die Strom übersetzung gleich dem Cosinus des Phasenwinkels 
 EMI2.3 
 gewicht erfüllt. 



   Die Berechnung der   Stromübersetzung   und des Phasenwinkels kann an vorliegenden Maschinen nach den üblichen   Regeln über Stromverzweigung   in Gleichstromnetzen geschehen und bietet daher keine Schwierigkeiten. Die Bedingung für Gleichstromerzeugung ist selbst-   verständlich   nicht mathematisch genau zu verstehen, da die Diagramme wegen der Abweichung aller Grössen von der Sinusform, wegen der   Hysteresis. Wirbel-und Kurzschlussströme nur   in der 
 EMI2.4 
   ausgerüstet sind,   deren Abstand auf einfachste Weise die Cbersetzung zu regeln gestattet, ohne dass regelbare Transformatoren in die Stromkreise eingeschaltet zu werden brauchen.

   Nähert man die beweglichen   Bürsten beim Durchschreiten des Synchronismus sehr. dann   hat man den weiteren Vorteil. dass ein starkes Feld zur Erzielung einer erheblichen elektromotorischen Kraft 
 EMI2.5 
 arbeitet. 



     PATENTANSPRüCHE   : l. Einrichtung zum Durchschreiten des Synchronismus von Drehfeldinduktionsmotoren. an deren Schleifringe mehrphasige Kollektormaschinen mit Selbsterregung angeschlossen sind. gekennzeichnet durch eine voneinander   abhängige   Einstellung der Stator-und Rotorwindungszahlen und des Kollektorbürstenverschiebungswinkels, so dass beim Synchronismus das Ver-   haltnis   der wirksamen Amperewindungen von Rotor und Stator der Kollektormaachine ganz oder nahezu mit dem Cosinus des Phasenwinkels der   Rot. or- und Statorstromsysteme Überein-     stimmt.   zum Zwecke. die Erzeugung von Gleichstrom in der Kollektormaschine zu ermöglichen.



   <Desc / Clms Page number 1>
 
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 then also the stator stator system is included, which is only obtained from the rotor by any existing phase rotation of the brushes or the winding.



   On the basis of a vector diagram for the current systems as in FIG. 3, the magnetizing current would also be, and therefore also the field and the electromotive force
 EMI2.2
 Rotate continuously in space, just as naturally also the current systems and the electromotive force-real equilibrium can only exist then. when the electromotive force E, of the rotor from the outset falls exactly in the direction of the rotor current system i, which it is intended to generate and maintain. This position is shown in FIG. The magnetizing current system must be perpendicular to the rotor current system so that the field can generate a voltage that is rectified to the current.



   There are two arbitrary variables to choose from on each rotating field collector machine, the phase angle # 035 between the stator and rotor current system. which can be regulated, for example, by rotating the brush, and the ratio of the effective number of turns of rotor and stator, known as the current transmission for short. those through transformers, branch circuits. double sets of brushes and similar means can be regulated. In order to make the induction machine with self-excitation suitable for generating direct current, according to the invention, these two variables are to be controlled as a function of one another in such a way that the current translation equals the cosine of the phase angle while the synchronism is passed
 EMI2.3
 weight met.



   The calculation of the current translation and the phase angle can be carried out on the present machines according to the usual rules about current branching in direct current networks and therefore does not present any difficulties. The condition for direct current generation is of course not to be understood mathematically precisely because the diagrams are due to the deviation of all variables from the sinusoidal shape, due to the hysteresis. Eddy currents and short circuit currents only in the
 EMI2.4
   are equipped, the distance of which allows the translation to be regulated in the simplest possible way without the need for controllable transformers to be switched into the electrical circuits.

   If you get very close to the moving brushes when stepping through the synchronism. then you have the further advantage. that a strong field to achieve a significant electromotive force
 EMI2.5
 is working.



     PATENT CLAIMS: l. Device for stepping through the synchronism of rotating field induction motors. Multi-phase collector machines with self-excitation are connected to their slip rings. characterized by an interdependent setting of the number of stator and rotor turns and the collector brush displacement angle, so that with synchronism the ratio of the effective ampere turns of the rotor and stator of the collector machine corresponds entirely or almost to the cosine of the phase angle of the rotator and stator current systems . for the purpose. to enable the generation of direct current in the collector machine.

 

Claims (1)

2. Einrichtung nach Anspruch 1. gekennzeichnet durch eine KollektoimaschLue mit. gegen- emanderbeweglichen Bürstensätzen. 2. Device according to claim 1, characterized by a KollektoimaschLue with. brush sets that can be moved against one another.
AT63012D 1910-08-04 1911-06-10 Device for passing through the synchronism of rotary field induction motors, to whose slip rings multi-phase collector machines with self-excitation are connected. AT63012B (en)

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
DE63012X 1910-08-04

Publications (1)

Publication Number Publication Date
AT63012B true AT63012B (en) 1914-01-10

Family

ID=5631755

Family Applications (1)

Application Number Title Priority Date Filing Date
AT63012D AT63012B (en) 1910-08-04 1911-06-10 Device for passing through the synchronism of rotary field induction motors, to whose slip rings multi-phase collector machines with self-excitation are connected.

Country Status (1)

Country Link
AT (1) AT63012B (en)

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