Line bushing and terminal studs with increased ignition gaps

Information

  • Patent Grant
  • 11444506
  • Patent Number
    11,444,506
  • Date Filed
    Friday, June 1, 2018
    6 years ago
  • Date Issued
    Tuesday, September 13, 2022
    2 years ago
Abstract
The invention relates to a line bushing (1) in a housing (2) of an electrical machine (1) in explosive atmospheres, having a threaded bush (100) and a terminal stud (200), wherein the threaded bush (100) is an insulator and is located in, particularly screwed into, a recess in the housing (2), wherein the terminal stud (200) is made from an electrically conductive material and is provided, at least in sections, with a thread, wherein connection options (206) for lines and braids are provided at either end of the terminal stud (200), wherein the terminal stud (200) can be screwed into the threaded bush (100).
Description
CROSS-REFERENCES TO RELATED APPLICATIONS

This application is the U.S. National Stage of International Application No, PCT/EP2018/064420, filed Jun. 1, 2018, which designated the United States and has been published as International Publication No. WO 2018/220156 A1 and which claims the priority of European Patent Application, Serial No. 17174312.3, filed Jun. 2, 2017, pursuant to 35 U.S.C. 119(a)-(d).


BACKGROUND OF THE INVENTION

The invention relates to a line bushing in a dynamo-electric machine that is to be operated in explosive atmospheres.


To this end the dynamo-electric machine and its attachments must comply with specifications set out in DIN EN 60079-0. According to these, Ex-d motors permit an explosion in the interior of the motor. It must merely be ensured that no sparks or flames can escape through openings in the housing of the dynamo-electric machine. To prevent this, so-called ignition gaps are provided, in which the ignited gas is cooled until it is extinguished and therefore there can be no outward harmful effects.


It must however nevertheless be ensured that the dynamo-electric machine is supplied with voltage and current via energy supply lines, so that an electrical connection must be established between the interior and the exterior of the dynamo-electric machine. These line lead-throughs must likewise comply with these specifications, so that the entire dynamo-electric machine satisfies the explosion protection specifications.


In line bushings of Ex-d motors a threaded bush has until now been screwed into a housing of the motor. Screwing to the housing in this way creates an ignition gap in the form of a threaded joint. The different types of ignition gaps are set out in standard DIN EN 60079-1 and are provided with the minimum dimensions stipulated there.


The current conduction from outside to inside has until now been realized by a bolt which in this case has a cylindrical gap between its threaded bush and its surface. This gap is to be worked precisely to high tolerances, in order to influence the width of the gap and thus the ignition gap and to keep its geometric dimensions as small as possible.


Based on this, the object underlying the invention is to provide a line bushing which with comparatively little effort and production costs complies with the necessary ignition gaps of a dynamo-electric machine, in particular a motor, in particular in accordance with the above-mentioned standard.


SUMMARY OF THE INVENTION

This object is achieved by a line bushing in a housing of a dynamo-electric machine in explosive atmospheres, having a threaded bush and a terminal stud, wherein the threaded bush is an insulator and is located in, in particular screwed into, a recess in the housing, wherein the terminal stud is made from an electrically conductive material and is provided, at least in sections, with a thread, wherein connection options for lines or braids are provided at either end of the terminal stud, wherein the terminal stud can be screwed into the threaded bush.


The set object is also achieved by a dynamo-electric machine having a line bushing.


According to the invention, the terminal stud is now provided with a thread, in just the same way as the threaded bush is provided with a thread, in order to be fixed in the housing of the motor.


Thanks to this inventive embodiment of the line bushing with two threaded joints, the number as well as the length of the ignition gap is increased, so that any gas ignited in the interior of the dynamo-electric machine is cooled via the gap until it is extinguished.


Thanks to the inventive structure of the line bushing the overall installation space occupied by this line bushing is additionally reduced. The dimensions of a threaded joint are, in the case of a predetermined length, e.g. of a housing wall, significantly longer than the size of a cylindrical gap. Furthermore, the production of a thread is significantly less expensive than the production of a long comparatively high-tolerance cylindrical bolt, which is very complex to produce. The gap width within a thread is also significantly easier to produce. In this respect threads can be produced significantly less expensively and can be more easily inspected for dimensional accuracy.


According to the invention, a dynamo-electric machine now has, on a line bushing, an electrically conductive terminal stud, e.g. made of copper, which is electrically conductively connected to the interior of the machine, in other words for example to the winding system or sensor lines. Energy supply lines or sensor lines are connected outwardly to the terminal studs. The terminal stud is positioned and fixed on the housing of a dynamo-electric machine via an electrically insulating threaded bush.





BRIEF DESCIRPTION OF THE DRAWING

The invention and the advantageous embodiment of the invention are described in greater detail by reference to the following exemplary embodiments; in the figures:



FIG. 1 shows a side view of a threaded bush,



FIG. 2 shows a section through a threaded bush,



FIG. 3 shows a side view of a terminal stud,



FIG. 4 shows a section through a terminal stud,



FIG. 5 shows an assembled state of terminal studs and threaded bush,



FIG. 6 shows a section through the assembled state of terminal studs and threaded bush,



FIG. 7 shows a longitudinal section of a dynamo-electric machine having a line bushing of this type.





DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS


FIG. 1 shows a side view of a threaded bush 100, which can be subdivided into several sections. These sections are a lower section 102, a collar 103 and an upper section 104.


The threaded bush 100 is rotationally symmetrical in respect of its axis 109. A male thread 101 is provided in the lower section 102 on a predefinable axial length of said section 102. The threaded bush 100 is fixed in the housing 2 of a dynamo-electric machine 1 via said male thread 101, as illustrated later.



FIG. 2 shows a longitudinal section of the threaded bush 100, with its sections 102, 103 and 104, wherein the threaded bush 100 has a recess 106 in the lower section 102, as well as on a certain predefinable axial section of the collar 103. In the remaining section of the collar 103 as well as in the upper section 104, a further recess is provided, which at least across an axial part of said sections 103 and 104 has a female thread 105.



FIG. 3 shows a terminal stud 200 with a lower section 202 which has a stop shoulder 207 and in a transition to the upper section 204 has a groove 203. Two male threads are provided in the upper section 204. A male thread 201 in the lower part of the upper section 204 and a male thread 205 in the upper part of the upper section 204. Wherein in this embodiment the male thread 201 has a larger diameter than the male thread 205.



FIG. 4 shows, in the longitudinal section of the terminal stud 200 in the lower section 202, a connection option 206 for lines and braids, e.g. for the electrical supply of the dynamo-electric machine. Furthermore, in this representation too, both male threads 205 and 201 are represented in the upper section 204 of the terminal stud 200.



FIG. 5 shows in the assembled state the threaded bush 100 with the terminal stud 200, which has been screwed into the threaded bush 100. The male thread 205 can be seen in the upper section of the terminal stud 200.



FIG. 6 shows, in a longitudinal section of the assembled state according to FIG. 5, the threaded bush 100 and the terminal stud 200. By screwing the terminal stud 200 into the threaded bush 100 or screwing the threaded bush 100 into the terminal stud 200 and the associated stop 207 on the shoulder 108, an ignition gap with its maximum screw reach 14 is formed by the thread 201.


This threaded connection has an axial thread length 15 in the engagement of the terminal stud 200 in the threaded bush 100.


Furthermore, a maximum screw reach 13 of the threaded bush is likewise provided in the housing 2. This threaded connection has an axial thread length 16 in the engagement of the threaded bush 100 in a housing 2.


A lock nut (not shown in greater detail) can be set, e.g. for positioning and fixing, on the male thread 205 in the upper part of the upper section 204 of the terminal stud 200.


In this case the ignition gaps are significantly longer than the axial thread lengths 15, 16 because of the thread configurations known per se. The width of the ignition gap also becomes comparatively narrow thanks to this threaded connection of terminal stud 200 and threaded bush 100 and/or threaded bush 100 and housing 2.



FIG. 7 shows a schematic longitudinal section of a dynamo-electric machine 3. The lines of a terminal box 12 are energy supply lines 6 and/or sensor lines 7, which run as a line bushing 1 through the housing 2 of the dynamo-electric machine 3. Energy supply lines 6 are necessary for the winding system 4 of the dynamo-electric machine 3 and generate an electromagnetic field in the stator 8, and as a result of electromagnetic interactions with a rotor 9 result in a rotation of the shaft 10, which is supported on the housing 2 by bearings 11.


The lines are electrically conductively contacted with the one or more terminal studs 200, which are embodied as electrically conductive.


The threaded bush 100 is made from electrically insulating material.

Claims
  • 1. A dynamo-electric machine for explosive environments, comprising: a housing having a threaded recess; anda line bushing made from an electrically conductive material and having a threaded portion and a stop shoulder and opposite ends, each of the opposite ends having a connection option for a line or braid,a threaded bush configured as an insulator and having a shoulder and an external thread with a first thread length for threaded engagement with the threaded recess of the housing, said shoulder and external thread defining a first ignition gap when the threaded bush is screwed into the threaded recess of the housing, andan internal thread with a second thread length for threaded engagement with the threaded portion of a terminal stud, with the second thread length being greater than the first thread length, said stop shoulder in conjunction with the second thread length defining a second ignition gap when the terminal stud is screwed into the threaded bush.
  • 2. The dynamo-electric machine of claim 1, wherein the threaded bush has a thread height and the terminal stud has a thread height which is identical to the thread height of the threaded bush.
  • 3. The dynamo-electric machine of claim 1, wherein the line is embodied as an energy supply line, a sensor line, or a data line.
Priority Claims (1)
Number Date Country Kind
17174312 Jun 2017 EP regional
PCT Information
Filing Document Filing Date Country Kind
PCT/EP2018/064420 6/1/2018 WO
Publishing Document Publishing Date Country Kind
WO2018/220156 12/6/2018 WO A
US Referenced Citations (69)
Number Name Date Kind
1618877 Henry Feb 1927 A
2080678 Van Horn May 1937 A
2218003 Hawley, Jr. Oct 1940 A
2311805 Yost Feb 1943 A
2600079 Scully Jun 1952 A
2740059 Conery Mar 1956 A
2845551 Potter Jul 1958 A
3058156 O'Connor Oct 1962 A
3176379 Brown Apr 1965 A
3308316 Pfahl Mar 1967 A
3335323 Molin Aug 1967 A
3638055 Zimmermann Jan 1972 A
4015633 Mandell Apr 1977 A
4260918 Engle Apr 1981 A
4401734 Meyer Aug 1983 A
4421947 Kyle Dec 1983 A
4483065 Meyer Nov 1984 A
4626721 Ouchi Dec 1986 A
4961018 Akhter Oct 1990 A
5203723 Ritter Apr 1993 A
5352097 Itou Oct 1994 A
5504382 Douglass Apr 1996 A
5889343 Bryant Mar 1999 A
6118620 Grantz Sep 2000 A
6368451 Goulette Apr 2002 B1
6537104 Hagmann Mar 2003 B1
7443067 Schlosser Oct 2008 B2
7786635 Gasser Aug 2010 B2
7804212 Moody Sep 2010 B2
8482173 Wright Jul 2013 B2
9145764 Burton Sep 2015 B2
9831739 Tejano Nov 2017 B2
9929608 Friedman Mar 2018 B2
9973053 Nakazumi May 2018 B2
10047752 Hayakawa Aug 2018 B2
10978225 Podpaly Apr 2021 B1
20050074343 Naito Apr 2005 A1
20070013245 Bevington Jan 2007 A1
20070086902 Dooley Apr 2007 A1
20090152962 Gasser Jun 2009 A1
20090155101 Fukasaku Jun 2009 A1
20100176673 Wright Jul 2010 A1
20100237721 Ishizue Sep 2010 A1
20110095163 Phan Apr 2011 A1
20110097219 Hsu Apr 2011 A1
20110133582 Bingler Jun 2011 A1
20110181221 Asahi Jul 2011 A1
20130234541 Oleson Sep 2013 A1
20130320792 Fukasaku Dec 2013 A1
20130336817 Honda Dec 2013 A1
20140050605 Inada Feb 2014 A1
20140150592 Kremerman Jun 2014 A1
20140271271 Intelisano Sep 2014 A1
20140339939 Illingworth Nov 2014 A1
20140375157 Taguchi Dec 2014 A1
20150083487 Leedecke Mar 2015 A1
20150110657 Spiegl Apr 2015 A1
20150256054 Northwall Sep 2015 A1
20160128213 Wöhrstein May 2016 A1
20160365770 Nelson Dec 2016 A1
20160372987 Tejano Dec 2016 A1
20170141634 Honda May 2017 A1
20170194830 Poretti Jul 2017 A1
20170229943 Hattori Aug 2017 A1
20170241246 Harnsberger Aug 2017 A1
20170244294 Holzmueller Aug 2017 A1
20170291847 Fritz Oct 2017 A1
20170324296 Fritts Nov 2017 A1
20190047904 Fritz Feb 2019 A1
Foreign Referenced Citations (4)
Number Date Country
0087960 Jun 1988 EP
2409385 Mar 2016 EP
1 031 353 Jun 1966 GB
2 117 186 Oct 1983 GB
Non-Patent Literature Citations (3)
Entry
DIN EN 60079-0 (VDE 0170-1); Explosionsgefährdete Bereiche—Tell 0: Betriebsmittel—Allg. Anforderungen (IEC 60079-0:2017; Deutsche Fassung EN IEC 60079-0:2018; Gesamtumfang 158 Seiten.
DIN EN 60079-1 (VDE 0170-5); Explosionsgefährdete Bereiche—Tell 1: Geräteschutz durch druckfeste Kapselung “d” (IEC 60079-1:2014); Deutsche Fassung EN 60079-1:2014; Gesamtumfang 101 Seiten.
PCT International Search Report and Written Opinion of International Searching Authority dated Aug. 28, 2019 corresponding to PCT International Application No. PCT/EP2018/064420 filed Jun. 1, 2018.
Related Publications (1)
Number Date Country
20210159754 A1 May 2021 US