CA2008682C - Method of and apparatus for making mineral insulated cable - Google Patents

Method of and apparatus for making mineral insulated cable

Info

Publication number
CA2008682C
CA2008682C CA002008682A CA2008682A CA2008682C CA 2008682 C CA2008682 C CA 2008682C CA 002008682 A CA002008682 A CA 002008682A CA 2008682 A CA2008682 A CA 2008682A CA 2008682 C CA2008682 C CA 2008682C
Authority
CA
Canada
Prior art keywords
blocks
column
conductor
groove
tape
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.)
Expired - Lifetime
Application number
CA002008682A
Other languages
French (fr)
Other versions
CA2008682A1 (en
Inventor
Dennis Gill
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
CITY ELECTRICAL FACTORS Ltd
Original Assignee
CITY ELECTRICAL FACTORS LTD.
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
Priority claimed from GB898901911A external-priority patent/GB8901911D0/en
Priority claimed from GB898927533A external-priority patent/GB8927533D0/en
Application filed by CITY ELECTRICAL FACTORS LTD. filed Critical CITY ELECTRICAL FACTORS LTD.
Publication of CA2008682A1 publication Critical patent/CA2008682A1/en
Application granted granted Critical
Publication of CA2008682C publication Critical patent/CA2008682C/en
Anticipated expiration legal-status Critical
Expired - Lifetime legal-status Critical Current

Links

Classifications

    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01BCABLES; CONDUCTORS; INSULATORS; SELECTION OF MATERIALS FOR THEIR CONDUCTIVE, INSULATING OR DIELECTRIC PROPERTIES
    • H01B13/00Apparatus or processes specially adapted for manufacturing conductors or cables
    • H01B13/004Apparatus or processes specially adapted for manufacturing conductors or cables for manufacturing rigid-tube cables
    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B3/00Ohmic-resistance heating
    • H05B3/40Heating elements having the shape of rods or tubes
    • H05B3/42Heating elements having the shape of rods or tubes non-flexible
    • H05B3/48Heating elements having the shape of rods or tubes non-flexible heating conductor embedded in insulating material
    • H05B3/52Apparatus or processes for filling or compressing insulating material in tubes

Landscapes

  • Engineering & Computer Science (AREA)
  • Manufacturing & Machinery (AREA)
  • Manufacturing Of Electric Cables (AREA)
  • Extrusion Moulding Of Plastics Or The Like (AREA)
  • Ropes Or Cables (AREA)
  • Electric Cable Installation (AREA)
  • Paper (AREA)
  • Superconductors And Manufacturing Methods Therefor (AREA)
  • Processes Specially Adapted For Manufacturing Cables (AREA)
  • Cable Transmission Systems, Equalization Of Radio And Reduction Of Echo (AREA)
  • Insulated Conductors (AREA)

Abstract

A method and apparatus for making mineral insulated cable, in which preformed blocks of mineral insulant are continuously supplied, each of the blocks having at least one groove therein and having a first end and a second end.
The blocks are continuously disposed in at least one column, with the first end of each of the blocks in the column abutting against the second end of an adjacent one of the blocks in the column, and with the at least one groove of each of the blocks in the column in alignment with the at least one groove of the adjacent one of the blocks in the column, to form a continuous groove extending over the length of the column of blocks. At least one conductor is continuously laid in the at least one continuous groove, and a metal tube is continuously formed around the resultant conductor/blocks assembly with the at least one conductor embedded in the mineral insulant and electrically insulated from the metal tube by the mineral insulant. Preferably, at least one step of cross-section reduction of the entubed assembly is performed, with each followed by an annealing step.

Description

METHOD OF AND APPARATUS FOR MAKING MINERAL
INSULATED CABLE

The present invention relates to a method of and apparatus for making a mineral insulated cable.

Mineral insulated cable comprises an outer metal tubular sheath, usually made of copper, containing one or more conductors embedded in an insulating mineral, usually magnesium oxide. Mineral insulated cable is used in applications where the cable has to withstand high temperatures or fires, for instance in emergency lighting systems and fire alarm systems. Such cables have conventionally been made by either a batch process or a continuous process.

In a known batch process, preformed blocks of mineral insulant having through-holes are inserted into a metal tube which will form the outer sheath in the finished cable. The holes in the blocks are aligned and conductor rods are inserted through the aligned holes. This arrangement forms a blank which is then further processed, for instance by repeated drawing or rolling and annealing to reduce the cross section and provide a finished cable. In alternative batch processes, the conductors are embedded in mineral insulant in powder form, the metal tube being arranged vertically and the powder being inserted from above. A ram may be used to compact the powder within the tube.

By their very nature, such batch processes are capable of producing cables of limited maximum length. Also, these ~- 20~868~

processes have a relatively low rate of production, and the finished cable made by such processes is relatively expensive.

A known continuous process is illustrated in Figure 1 of the accompanying drawings, which illustrates manufacture of a mineral insulated cable having two conductor cores.

The conductors are made from a pair of copper rods 1 which are supplied continuously through bores in a spacer block 2. Copper strip 3 for forming the cable outer sheath is likewise continuously supplied to a tube forming mill illustrated diagrammatically by a pair of rollers 4 and 5. Powdered magnesium oxide 6 is fed under gravity from a hopper 7 through a tube 8 so as to fill the outer sheath. A welding station 9 welds the tube seam in the immediate vicinity of the rollers 4 and 5 so as to form a completed blank 10. The completed blank 10 is continuously fed to a plurality of rolling stages 11 and annealing stages 12, only one of each being shown in Figure 1.

In practice, the continuous process illustrated in Figure 1 has to be performed vertically, at least up to the first rolling stage 11. This requires a considerable vertical space.

According to a first aspect of the invention, there is provided a method of making mineral insulated cable, comprising supplying preformed blocks of mineral insulant having at least one groove and laying at least one conductor in the or each groove.

Preferably, the preformed blocks are supplied continuously and the or each conductor is continuously laid in the or each groove. Preferably, a metal tube is continuously formed around the blocks. Although the Z0(~868~

method according to the first aspect of the invention can be used with advantage in various processes, such as the batch process described hereinbefore, it is particularly advantageous when used in a continuous process.

Preferably, the method comprises at least one further step of cross section reduction, such as drawing or rolling, with the or each further step being followed by an annealing step.

The preformed blocks may be supplied as sets of blocks having opposing faces provided with corresponding grooves, the blocks of each set being brought together such that the corresponding grooves form at least one duct containing a respective conductor. For instance, the sets may comprise pairs of blocks, each of which is hemi-cylindrical and has at least one longitudinally extending groove in a flat surface.

In an alternative arrangement, the blocks may be formed as substantially cylindrical blocks with at least one longitudinally extending peripheral groove for receiving a respective conductor. After the or each conductor has been laid in the respective groove, mineral insulant in the form of blocks or powder may be introduced into the or each groove so that the or each conductor becomes embedded. Alternatively, a subsequent cross section reduction step may be sufficient to close the mineral insulant around the or each conductor.

The blocks may be held in place around the or each conductor, prior to forming the metal tube, by a plurality of rollers. Alternatively, the blocks may be held in place by winding an elongate material therearound. For instance, the elongate material may be a thread, such as a glass fibre thread, wound helically around the blocks. The elongate material may ._ 4 alternatively be an electrically insulating tape, preferably self-adhesive, wound so as to cover or partially cover the blocks. Electrically insulating tape may alternatively be applied longitudinally around the blocks and formed into a tube. The tape may, for instance, be a silicone rubber which can have the advantage of being self-amalgamating. However, other types of tape may be used, such as mica tape or polytetrafluoroethylene tape.

The use of electrically insulating tape to surround the blocks has advantages in addition to holding the blocks in place. The insulating properties of the finished cable between the or each conductor and earth are improved. When a continuous production process has to be interrupted, the ingress of moisture into the blocks is reduced or eliminated and this avoids possible problems caused by degrading of the insulation, expansion of the blocks, and production of steam within the cable during subsequent heat treatment, such as annealing.

According to a second aspect of the invention, there is provided an apparatus for making mineral insulated cable, comprising means for supplying preformed blocks of mineral insulant having at least one groove and means for laying at least one conductor in the or each groove.

It is thus possible to provide a method and apparatus which can be performed horizontally or in any convenient arrangement, thus reducing the cost of manu~acturing plant. The conductors are held accurately in place 200~i8.~

without the need for any guidance, which reduces or eliminates the possibility of metal particles or slivers being produced during guidance of the conductor or conductors and entering the insulant. It is not necessary to use fused magnesium oxide, and hence damage to the conductor surface is reduced or eliminated. Thus, it is not necessary to use over-sized conductors in order to achieve a desired current rating. The density of the mineral insulant can ~sily be varied in order to obtain mineral insulated cable with desired properties. A much higher rate of production can be achieved compared with any known process for making mineral insulated cables.
Thus, the cost of the cable can be reduced and a cable with better defined geometry and properties can be made.

The invention will be further described, by way of example, with reference to the accompanying drawings, in which:

Figure 1 is a diagram illustrating a known continuous process for manufacturing mineral insulated cable, as hereinbefore described;

Figure 2 is a diagram illustrating a method of and apparatus for making mineral insulated cable constituting a first preferred embodiment of the present invention;

Figure 3 is a cross sectional view of a preformed block of mineral insulant for use in the method illustrated in Figure 2;

Figure 4 is a cross sectional view of parts of a mineral insulated cable before tube forming to form an outer sheath;

zo~368~

Figure 5 is a cross sectional view of a finished mineral insulated cable constituting a preferred embodiment of the invention;

Figures 6 to 13 are cross sectional views of different shapes of preformed blocks which may be used in preferred methods;

Figure 14 is a diagra~ illustrating a method of and apparatus for making mineral insulated cable constituting a second preferred embodiment of the present invention;
and Figures 15 to 19 are cross-sectional views on lines I-I
to V-V, respectively, of Figure 14.

The method and apparatus illustrated diagrammatically in Figure 2 show all the steps required to make preformed blocks and finished mineral insulated cable. In the first step 21, a mineral insulating powder, such as magnesium oxide, is mixed and supplied to a powder granulating step 22. The granules of insulant are supplied to a tablet making step 23 which forms the mineral into the desired shape of the preformed blocks.
These blocks are then supplied to a heat treatment step 24 which ensures that the blocks have a sufficiently stable form for the subsequent steps.

The preformed blocks 25 have the shape shown in Figure 3 i.e. substantially hemi-cylindrical with a diameter of approximately 1" (approximately 2.5. centimetres) and a length of approximately 8" (approximately 20 centimetres). The flat surface of the block has two longitudinally extending grooves 26 which are also hemi-cylindrical in shape with a diameter of approximately 1/5" (approximately 5 millimetres).

Z0(~868~

The preformed blocks 25 are automatically supplied in facing pairs at 27 and 28 so as to entrain therebetween two copper conductors 29 supplied in the form of continuous rods. The opposing grooves 26 of the pairs of blocks 25 form continuous ducts containing the conductors 29.

The blocks 25 and the conductors 29, together with a continuous strip 30 of- copper, are supplied to a tube-forming mill 31 in which the strip 30 is formed into a tube around the blocks. The resulting seam is welded at 32 to form a continuous blank which is then supplied to a plurality of further processing steps. Figure 3 shows, purely by way of example, three rolling steps 33 to 35, each of which is followed by a respective annealing step 36 to 38, the final annealing step 38 being followed by a coiling step 39 for the finished mineral insulated cable.

Figure 4 illustrates the partly formed blank as supplied to the forming mill 31, whereas Figure 5 illustrates the finished blank after the welding step 32. In fact, the rolling and annealing steps 33 to 38 do not alter the form, so that Figure 5 also illustrates the finished mineral insulated cable, having a weld seam at 40.

Figure 6 illustrates the pairs of blocks 25, showing the cylindrical ducts 41 provided by the opposed grooves 26.
Figure 7 illustrates two blocks 42 which have grooves arranged to provide a single duct 43 for a single core cable. The step of laying the conductors in the grooves of the blocks may be performed in any suitable way. For instance, as described above, the blocks 25 are brought together around the continuously fed conductors 29.
However, in an alternative configuration, the lower blocks of the pairs are supplied so as to define two continuous grooves with the conductors being laid in the ~ Z0C~868~2 grooves from above. The upper blocks may then be placed on top so as to complete the laying in of the conductors.

Figures 8 and 9 illustrate two alternative forms of blocks 44 and 45. The blocks 44 shown in Figure 8 are continuously supplied so as to define two continuous diametrically opposite grooves 46. The blocks 45 in Figure 9 differ in that the grooves 47 are side-by-side and extend downwardly~- The conductors are laid into the grooves 46 from the side whereas the conductors are laid into the grooves 47 from above. In order that the conductors be embedded within the mineral insulant, it may be sufficient merely to perform the rolling operations so that the mineral insulant closes around the conductors. However, it is also possible to fill the grooves 46 or 47, after the conductors have been laid therein, with mineral insulant. Suitably shaped preformed lengths of mineral insulant may be provided for this purpose. Alternatively, mineral powder or granules may be used, particularly with the blocks 46 shown in Figure 9.

Figure 10 shows a set of four identical blocks 48, each of which is generally quarter-cylindrical in shape with grooves extending longitudinally along the two flat surfaces of each block. When placed together as shown in Figure 10, the blocks 48 define four ducts 49 for receiving conductors in order to provide a four core cable. The blocks 50 shown in Figure 11 differ in that each is generally third-cylindrical in shape, these blocks being used to provide a three core cable.

Figures 12 and 13 illustrate two possible forms of dissimilar pairs of blocks. The blocks 51 and 52 ln Figure 12 differ from the blocks 25 in Figure 6 in that the block 51 has a longitudinal tongue 53 which extends between ducts 54 into a correspondingly shaped groove in Z00868~

the block 52. Figure 12 shows the block 51 disposed above the block 52, but the reverse arrangement is possible and may have advantages in that the tongue 53 assists in correctly locating the conductors during laying in.

The lower block 55 in Figure 13 is similar to the block 45 shown in Figure 9 but has a centre limb of reduced height for co-operating with a preformed upper block 46 to close the conductors within ducts 57.

Figure 14 illustrates another process for continuously forming mineral insulated cable. Preformed blocks 60 of mineral insulant, such as magnesium oxide, are continuously supplied in the direction of production, indicated by arrow 61, so as to form a column. As shown in Figure 15, the blocks 60 are substantially identical to the blocks 25 shown in Figure 6 and are arranged in the column with their grooves 62 aligned and facing upwardly.

As the blocks move along the production line, copper conductors 63 are supplied from reels 64 or the like and are laid into the grooves 62 as illustrated in Figure 16.
Further insulating blocks 65 are continuously supplied from above and are positioned on top of the blocks 60 so as to enclose fully the conductors 63, as shown in Figure 17.

The blocks 60 and 65 and the conductors 63 are next covered with a layer of insulation in the form of an insulating tape 66 supplied from a reel 67 or the like.
As the blocks 60 and 65 and the conductors 63 move in the direction of production, the reel 67 is rotated around the axis of the cable and supplies the tape 66 so as to form a continuous layer around the blocks 60 and 65. The tape 66 is electrically insulating and preferably self-'~ Z00868~
adhesive so as to adhere to the outer curved surfaces ofthe blocks 60 and 65. For instance, the tape 66 may be a silicone rubber provided on one surface with an adhesive.
Although Figure 18 indicates that the edges of the adjacent turns of the tape abut against each other, the pitch of the tape may be such that the edges overlap in order to ensure complete enclosure of the blocks 60 and 65. It is also possible to adopt a coarser winding pitch such that the layer of tape does not completely enclose the blocks 60 and 65. Such an arrangement ensures that the blocks are held in place for subsequent production steps, but does not provide the advantages associated with complete enclosure, such as improved insulating properties and exclusion of moisture from the blocks 60 and 65.

Various other types of tape may be used, such as polytetrafluoroethylene and mica tape. In general, the tape 66 is required to have electrical insulating properties and must withstand subsequent heat treatment of the mineral insulated cable. Also, the insulating material of the tape should not break down in an undesirable way at the high temperatures at which the cable is required to be able to operate, for instance as a fire-proof cable. It is preferable for the material of the tape not to contain carbon, as this could impair the insulating properties of the cable when subjected to elevated temperatures. It is also generally preferable that the material of the tape should not break down and produce substantial quantities of gas, which could cause the cable to rupture when subjected to elevated temperatures. Where the tape is provided with an adhesive, the adhesive should preferably have similar properties so as not to compromise the performance of the cable.

20~868~

Although a winding arrangement has been shown for helically winding the tape 66 around the blocks 60 and 65, other techniques may be used. For instance, tape of width equal to or greater than the circumference of the blocks 60 and 65 may be supplied longitudinally and may be wrapped around the blocks in a manner similar to a tube forming mill.

In cases where improved insulation provided by the layer of tape 66 is not necessary, a thread may be wound helically around the blocks 60 and 65 so as to hold them in place on the conductors 63 for subsequent production steps. For instance, a fibre glass thread may be used for this purpose and will not impair the insulating properties of the cable. Alternatively, the blocks 60 and 65, or only the blocks 65, may be held in position by means of rollers.

The next step in the production process comprises the forming of a metal tube around the layer of tape 66.
Figure 14 shows a copper strip 68 of sufficient width being supplied continuously from a reel 69. The strip 68 is formed into a tube by a rolling mill (not shown), for instance of the type illustrated in Figure 1, and the edges of the strip are welded together at a welding station 70 so as to form a weld seam 71 as shown in Figure 19. The cable is then supplied to a plurality of rolling or drawing steps alternating with annealing steps so as to reduce the cross section to the final desired size of the mineral insulated cable, after which the cable is stored in a coiling step or the like.

The continuous process for producing mineral insulated cable can operate at great speed and the length of cable produced is limited only by mechanical handling and inspection considerations. The preformed blocks 60 and 65 provide excellent geometrical stability which allows ~ 20~68~

the insulating properties of the cable to the maximised.
The absence of any abrasive steps in the process prevents the ingress of copper particles or slivers or other material into the mineral insulant so that the insulating properties are not compromised. Further, the copper conductors suffer little or no surface damage and their cross sections do not therefore have to be over-specified in order to ensure adequate electrical conductivity in the finished cable. ~lso, "hot-spots" causing high potential gradients are not created by the process so that the insulating properties are not compromised.

The provision of an insulating layer around the blocks further improves the insulating properties of the cable, but has additional advantages. For instance, if the production process has to be stopped and then restarted, the layer prevents the ingress of moisture into the blocks which might impair the insulation performance and might cause problems during subsequent production steps.
For instance, during heat treatment such as annealing, any moisture trapped within the blocks could generate steam and, in severe cases, could rupture the outer metal tube or cause substantial distortion. The provision of the layer of insulating tape avoids this.

Because the mineral insulant is supplied in the form of preformed blocks, there is little or no loose mineral powder at any stage in the cable production. Thus, there is substantially no contamination at the welding stage of the outer tube. Also, there is little or no loss of insulant material or production of powder dust so that the process is very clean and does not waste raw materials.

Because of the geometrical stability in cables made by this method, it is possible to alter the conductor-to-conductor spacing compared with each conductor-to-sheath Z0~868~2 spacing in order to maximise the dielectric performance of the cable. For instance, the conductor-to-conductor spacing may be made greater than the conductor-to-sheath spacing and this provides a cable with better insulating properties than one in which the spacings are the same or, alternatively, allows the diameter of the cable to be reduced.

Claims (19)

1. A method of making mineral insulated cable, the method comprising the steps of:
continuously supplying preformed blocks of mineral insulant, each of the blocks defining at least one groove therein and having a first end and a second end;
continuously disposing said blocks in one or more columns, with the first end of each of the blocks in the column abutting against the second end of an adjacent one of the blocks in the column, and with the at least one groove of each of the blocks in the column in alignment with the at least one groove of the adjacent one of the blocks in the column to form a continuous groove extending over the length of the column of blocks;
continuously laying at least one conductor in the at least one continuous groove;
continuously forming a metal tube around the resultant conductor/blocks assembly, with the at least one conductor embedded in the mineral insulant and electrically insulated from the metal tube by the mineral insulant.
2. A method as claimed in claim 1, including performing at least one step of cross-section reduction on the entubed assembly.
3. A method as claimed in claim 2, wherein the at least one step of cross-section reduction alternates with an annealing step.
4. A method as claimed in claim 1, 2 or 3, in which the preformed blocks are supplied as sets of blocks having opposing faces provided with corresponding grooves, the blocks of each set being brought together such that the corresponding grooves form a duct for receiving the at least one conductor.
5. A method as claimed in any one of claims 1 to 4, in which the preformed blocks are supplied as substantially cylindrical blocks with at least one longitudinally extending peripheral groove for receiving the at least one conductor.
6. A method as claimed in any one of claims 1 to 5, in which an elongate material is wound around the preformed blocks after the at least one conductor has been laid therein.
7. A method as claimed in claim 6, in which the elongate material is an electrically insulating material.
8. A method as claimed in claim 7, in which the elongate material is a thread.
9. A method as claimed in claim 7, in which the elongate material is a glass fibre thread.
10. A method as claimed in claim 7, in which the elongate material is a tape.
11. A method as claimed in claim 7, in which the elongate material is a tape, wound so as to enclose the preformed blocks.
12. A method as claimed in any one of claims 1 to 5, in which a tape is applied longitudinally of the preformed blocks and is wrapped around the preformed blocks.
13. A method as claimed in claim 12, in which the tape is made of an electrically insulating material.
14. A method as claimed in claim 7, in which the elongate material is a silicone tape.
15. Apparatus for making mineral insulated cable, the apparatus comprising:
means for continuously supplying preformed blocks of mineral insulant, each of the blocks defining at least one groove therein and having a first end and a second end;
means for continuously disposing said blocks in one or more columns, with the first end of each of the blocks in the column abutting against the second end of an adjacent one of the blocks in the column, and with the at least one groove of each of the blocks in the column in alignment with the at least one groove of the adjacent one of the blocks in the column to form a continuous groove extending over the length of the column of blocks;
means for continuously laying at least one conductor in the at least one continuous groove;
means for continuously forming a metal tube around the resultant conductor/blocks assembly, with the at least one conductor embedded in the mineral insulant and electrically insulated from the metal tube by the mineral insulant.
16. Apparatus as claimed in claim 15, including means for performing at least one step of cross-section reduction on the entubed assembly.
17. Apparatus as claimed in claim 16, further comprising cross-section reducing means and an annealing means.
18. Apparatus as claimed in claim 15, 16 or 17, further comprising means for winding an elongate material around the preformed blocks after the at least one conductor has been laid in the groove therein.
19. Apparatus as claimed in any one of claims 15 to 18, further comprising tube forming means for applying a tape longitudinally of the blocks and for wrapping the tape around the blocks.
CA002008682A 1989-01-28 1990-01-26 Method of and apparatus for making mineral insulated cable Expired - Lifetime CA2008682C (en)

Applications Claiming Priority (4)

Application Number Priority Date Filing Date Title
GB8901911.1 1989-01-28
GB898901911A GB8901911D0 (en) 1989-01-28 1989-01-28 Method of and apparatus for making mineral insulated cable and mineral insulated cable made by such or apparatus
GB8927533.3 1989-12-06
GB898927533A GB8927533D0 (en) 1989-12-06 1989-12-06 Method of and apparatus for making mineral insulated cable and mineral insulated cable made by such method or apparatus

Publications (2)

Publication Number Publication Date
CA2008682A1 CA2008682A1 (en) 1990-07-28
CA2008682C true CA2008682C (en) 1998-12-29

Family

ID=26294890

Family Applications (1)

Application Number Title Priority Date Filing Date
CA002008682A Expired - Lifetime CA2008682C (en) 1989-01-28 1990-01-26 Method of and apparatus for making mineral insulated cable

Country Status (13)

Country Link
EP (1) EP0382359B1 (en)
JP (1) JPH02270226A (en)
AT (1) ATE87393T1 (en)
AU (1) AU615372B2 (en)
CA (1) CA2008682C (en)
DE (1) DE69001142T2 (en)
DK (1) DK0382359T3 (en)
ES (1) ES2040554T3 (en)
HK (1) HK76993A (en)
IE (1) IE62978B1 (en)
NO (1) NO900386L (en)
NZ (1) NZ232262A (en)
SG (1) SG66193G (en)

Families Citing this family (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0393264A1 (en) * 1989-04-18 1990-10-24 Inco Alloys Limited Method for making mineral insulated metal sheathed cables
GB9010582D0 (en) * 1990-05-11 1990-07-04 Ass Elect Ind Manufacture of mineral insulated electric cables
DE10125061C1 (en) * 2001-05-23 2003-02-27 Bosch Gmbh Robert Production of a metal casing line used for lambda probes arranged in combustion engines comprises using a filler body formed by pressing powder
DE102004048596A1 (en) * 2004-10-06 2006-04-13 Robert Bosch Gmbh Method for producing a metal sheathed cable
CN102835185B (en) * 2010-04-09 2015-11-25 国际壳牌研究有限公司 Insulated conductor heater and at least part of method for the formation of insulated electric conductor
JO3139B1 (en) 2011-10-07 2017-09-20 Shell Int Research Forming insulated conductors using a final reduction step after heat treating
CN104733134A (en) * 2015-03-27 2015-06-24 沈汉财 Method for assembling magnesium oxide knob insulators of mineral insulating fireproof cable
CN107785122B (en) * 2017-09-20 2019-08-13 中天合金技术有限公司 A kind of preparation process of seamless Through ground wire
CN110853834A (en) * 2018-08-20 2020-02-28 浙江万马股份有限公司 Preparation method of prefabricated magnesium oxide knob insulator mineral insulated cable
CN111383796B (en) * 2020-03-12 2021-02-02 广州市穗羽电线电缆有限公司 Novel mineral insulated cable and preparation method thereof

Family Cites Families (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE708904C (en) * 1936-06-06 1941-07-31 Siemens & Halske Akt Ges Method for attaching spacers to an electrical conductor, in particular for telecommunication cables that are insulated from air space
DE912949C (en) * 1944-03-19 1954-06-08 Siemens Ag Method for applying spacer bodies to the inner conductor of concentric high-frequency lines
BE474207A (en) * 1945-09-07
GB1109402A (en) * 1966-03-31 1968-04-10 Decca Ltd Improvements in or relating to position indicators for use in mobile craft
NL8003259A (en) * 1979-07-27 1981-01-29 Okazaki Mfg Co Ltd CABLE ASSEMBLY, METHOD FOR PRODUCING THE SAME
US4317003A (en) * 1980-01-17 1982-02-23 Gray Stanley J High tensile multiple sheath cable
DE3137956A1 (en) * 1981-09-24 1983-04-28 Lothar 5190 Stolberg Hanf Electrical cable and a method for its production

Also Published As

Publication number Publication date
NO900386D0 (en) 1990-01-26
NZ232262A (en) 1991-12-23
HK76993A (en) 1993-08-06
EP0382359B1 (en) 1993-03-24
AU615372B2 (en) 1991-09-26
NO900386L (en) 1990-07-30
CA2008682A1 (en) 1990-07-28
EP0382359A1 (en) 1990-08-16
ES2040554T3 (en) 1993-10-16
AU4884290A (en) 1990-08-02
SG66193G (en) 1993-08-06
IE62978B1 (en) 1995-03-08
IE900324L (en) 1990-07-28
DK0382359T3 (en) 1993-04-19
ATE87393T1 (en) 1993-04-15
DE69001142D1 (en) 1993-04-29
DE69001142T2 (en) 1993-08-12
JPH02270226A (en) 1990-11-05

Similar Documents

Publication Publication Date Title
US5133121A (en) Stranded electric conductor manufacture
CA2008682C (en) Method of and apparatus for making mineral insulated cable
US4232935A (en) Communications cable with optical waveguides
US5254188A (en) Coaxial cable having a flat wire reinforcing covering and method for making same
CA2545161A1 (en) Data cable with cross-twist cabled core profile
US5262589A (en) High velocity propagation ribbon cable
US4512827A (en) Method of manufacturing mineral insulated electric cable and like elements
US5732875A (en) Method for producing a sector conductor for electric power cables
US4663098A (en) Method of manufacturing high performance flat cable
US3813479A (en) Coaxial cable joint
US3051770A (en) Normal joint for high tension cables and process of making the same
JPH0773751A (en) High-temperature superconductor consisting of corrugated metallic conduit
GB2101505A (en) Cable manufacture
GB2137907A (en) Coaxial Cables
DE3204887C2 (en)
GB2239981A (en) Mineral insulated cable
EP0560920B1 (en) Asymmetrically shaped jacketed coaxial electrical transmission line and method for its manufacture
WO1995005668A1 (en) Signal cable having equal field characteristics for each signal conductor
US3035114A (en) Splice-sleeve assemblies and methods of making the same
GB2243941A (en) Manufacture of mineral insulated electric cables
JPS626291B2 (en)
JPH0448740B2 (en)
EP0210411A2 (en) Manufacturing method of a metallic jacket for an electric cable externally having an angular and internally a rounded outline
JP3739310B2 (en) Production method of shielded multi-core cable
CA1056471A (en) Process and apparatus for manufacturing flexible shielded coaxial cable

Legal Events

Date Code Title Description
EEER Examination request
MKEX Expiry