Feedthrough
09614199 ยท 2017-04-04
Assignee
Inventors
Cpc classification
Y10T29/4911
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y02E60/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H01M50/188
ELECTRICITY
H01M50/553
ELECTRICITY
H01M10/0525
ELECTRICITY
C03C8/24
CHEMISTRY; METALLURGY
International classification
C03C8/24
CHEMISTRY; METALLURGY
Abstract
A feedthrough, for example through a part of a housing, such as a battery housing, is, for example, made of a metal, such as a light alloy, for example aluminum, an aluminum alloy, AlSiC, magnesium, a magnesium alloy, titanium, a titanium alloy, steel, stainless steel or high-grade steel. The housing part has at least one opening through which at least one conductor having a cross-section is guided in a glass or glass ceramic material. The conductor has at least two sections, a first section having a first, substantially round, for example a circular, cross section having a diameter in the region of the feedthrough through the glass or glass ceramic material, and a second section having a second, substantially non-round, for example a substantially rectangular cross-section, and the conductor is formed in one piece.
Claims
1. A feedthrough through a housing component of a housing, the feedthrough comprising: a material which is a glass material or a ceramic material; and at least one conductor embedded in said material and guided through an opening in the housing component, said at least one conductor having a cross section and at least two sections including a first section having a first substantially round cross section with a diameter (ID) in a region of the feedthrough through said material and a second section having a second substantially non-round cross section, said at least one conductor being a one-part component, said first substantially round cross section having a first cross-sectional area which is substantially the same as a second cross-sectional area of said second substantially non-round cross section.
2. The feedthrough according to claim 1, wherein the housing is a battery housing.
3. The feedthrough according to claim 1, wherein the housing consists essentially of a metal.
4. The feedthrough according to claim 3, wherein said metal is a light metal.
5. The feedthrough according to claim 4, said light metal being one of aluminum, an aluminum alloy, AlSiC, magnesium, a magnesium alloy, titanium, a titanium alloy, steel, stainless steel and a high-grade steel.
6. The feedthrough according to claim 1, wherein said first substantially round cross section is a circular cross section.
7. The feedthrough according to claim 1, wherein said second substantially non-round cross section is a substantially rectangular cross section.
8. The feedthrough according to claim 1, said second section having at least two bends.
9. The feedthrough according to claim 1, said second section having a region which is connectable with at least one of an anode and a cathode.
10. The feedthrough according to claim 9, said second section having an additional region extending substantially horizontal, said additional region being located perpendicular to at least one of said first section and said region which is connectable with at least one of an anode and a cathode.
11. The feedthrough according to claim 10, said second section including a stiffening.
12. The feedthrough according to claim 11, said stiffening being a U-profile.
13. The feedthrough according to claim 12, said stiffening being in said additional region of said second section.
14. The feedthrough according to claim 10, wherein said at least one conductor is a pin-shaped conductor embedded in said glass material or said glass ceramic material, said pin-shaped conductor being inserted in a region of said opening of the housing component.
15. The feedthrough according to claim 14, further comprising a base body accommodated by said opening of the housing component of the housing, said material which is a glass material or a glass ceramic material is introduced between said base body and said at least one conductor.
16. The feedthrough according to claim 15, said material which is a glass material or a glass ceramic material has a sealing temperature which is lower than a melting temperature of at least one of said base body, said conductor, and a material of the housing.
17. The feedthrough according to claim 15, the housing component has an outside and an inside and said base body is connected with at least one of said inside of the housing component and said outside of the housing component.
18. The feedthrough according to claim 17, wherein said base body is connected with at least one of said inside of the housing component and said outside of the housing component through one of a welding connection, a soldering connection and pressing.
19. The feedthrough according to claim 18, wherein the housing component is a cover of the housing.
20. The feedthrough according to claim 19, wherein the housing component is a cover of a battery housing having an inside and an outside, said additional region of said second section extending substantially horizontal and parallel to said inside of said battery housing and having a surface defining a maximum distance to said inside of said battery housing, said maximum distance of said surface to said inside of said battery housing being in a range between approximately 0.7.Math.ID to 1.5.Math.ID or in a range of 3 millimeters (mm) to 5 mm.
21. The feedthrough according to claim 20, wherein said additional region of said second section extends substantially horizontal and parallel to said cover of said battery housing and said maximum distance to said inside of said battery housing is in a range between approximately 3.5 mm to 4.5 mm.
22. The feedthrough according to claim 21, further comprising an insulating material arranged between said inside of the housing component and a second surface of said second section opposite said surface defining said maximum distance to said inside of said battery housing.
23. The feedthrough according to claim 22, wherein said insulating material is a plastic insulating material.
24. The feedthrough according to claim 1, said at least one conductor being formed from a material which is a metal.
25. The feedthrough according to claim 24, said metal of said at least one conductor being one of copper, CuSiC, a copper alloy, aluminum, AlSiC, an aluminum alloy, magnesium, a magnesium alloy, NiFe, a NiFe jacket with an interior copper part, silver, a silver alloy, gold, a gold alloy, and a cobalt-iron alloy.
26. The feedthrough according to claim 1, said material which is a glass material or a glass ceramic material including in mole percent (mol-%): TABLE-US-00006 P.sub.2O.sub.5 35-50 mol-%; Al.sub.2O.sub.3 0-14 mol-%; B.sub.2O.sub.3 2-10 mol-%; Na.sub.2O 0-30 mol-%; M.sub.2O 0-30 mol-%, wherein M is one of K, Cs and Rb; PbO 0-10 mol-%; Li.sub.2O 0-45 mol-%; BaO 0-20 mol-%; and Bi.sub.2O.sub.3 0-10 mol-%.
27. The feedthrough according to claim 26, said material which is a glass material or a glass ceramic material including in mol-%: TABLE-US-00007 P.sub.2O.sub.5 39-48 mol-%; Al.sub.2O.sub.3 2-12 mol-%; B.sub.2O.sub.3 4-8 mol-%; Na.sub.2O 0-20 mol-%; M.sub.2O 12-20 mol-%; PbO 0-9 mol-%; Li.sub.2O 0-40 mol-%; BaO 5-20 mol-%; and Bi.sub.2O.sub.3 1-5 mol-%.
28. The feedthrough according to claim 27, said material which is a glass material or a glass ceramic material including in mol-%: TABLE-US-00008 PbO 0 mol-%; Li.sub.2O 17-40 mol-%; and Bi.sub.2O.sub.3 2-5 mol-%.
29. The feedthrough according to claim 26, said material which is a glass material or a glass ceramic material including in mol-%: TABLE-US-00009 P.sub.2O.sub.5 38-50 mol-%; Al.sub.2O.sub.3 3-14 mol-%; B.sub.2O.sub.3 4-10 mol-%; Na.sub.2O 10-30 mol-%; K.sub.2O 10-20 mol-%; and PbO 0-10 mol-%.
30. The feedthrough according to claim 29, said material which is a glass material or a glass ceramic material including in mol-%: TABLE-US-00010 P.sub.2O.sub.5 39-48 mol-%; Al.sub.2O.sub.3 4-12 mol-%; B.sub.2O.sub.3 4-8 mol-%; Na.sub.2O 14-20 mol-%; K.sub.2O 12-19 mol-%; and PbO 0-9 mol-%.
31. The feedthrough according to claim 30, said material which is a glass material or a glass ceramic material including 0 mol-% PbO.
32. A housing, comprising: a housing component having an opening; and at least one feedthrough including: a material which is a glass material or a ceramic material; and at least one conductor embedded in said material and guided through said opening in said housing component, said at least one conductor having a cross section and at least two sections including a first section having a first substantially round cross section with a diameter (ID) in a region of the feedthrough through said material and a second section having a second substantially non-round cross section, said at least one conductor being a one-part component, said first substantially round cross section having a first cross-sectional area which is substantially the same as a second cross-sectional area of said second substantially non-round cross section.
33. The housing according to claim 32, wherein the housing is for a battery cell.
34. An accumulator, comprising: a feedthrough including: a material which is a glass material or a ceramic material; and at least one conductor embedded in said material, said at least one conductor having a cross section and at least two sections including a first section having a first substantially round cross section with a diameter (ID) in a region of the feedthrough through said material and a second section having a second substantially non-round cross section, said at least one conductor being a one-part component, said material which is a glass material or a glass ceramic material including in mol-%: TABLE-US-00011 P.sub.2O.sub.5 39-48 mol-%; Al.sub.2O.sub.3 2-12 mol-%; B.sub.2O.sub.3 4-8 mol-%; Na.sub.2O 0-20 mol-%; M.sub.2O 12-20 mol-%; PbO 0-9 mol-%; Li.sub.2O 0-40 mol-%; BaO 5-20 mol-%; and Bi.sub.2O.sub.3 1-5 mol-%.
35. The accumulator according to claim 34, wherein said accumulator is a battery.
36. The accumulator according to claim 35, said battery being a lithium-ion battery.
37. The accumulator according to claim 35, said battery having a battery housing.
38. The accumulator according to claim 37, the battery housing including a housing component having an opening, said at least one conductor embedded in said material which is a glass material or a glass ceramic material being guided through said opening.
39. The accumulator according to claim 34, the accumulator being a lithium-ion accumulator.
40. A feedthrough through a housing component of a housing, the feedthrough comprising: a material which is a glass material or a ceramic material; a base body; and at least one conductor embedded in said material and guided through said base body; an opening in the housing component receiving said base body with said conductor, said at least one conductor having a cross section and at least two sections including a first section having a first substantially round cross section with a diameter (ID) in a region of the feedthrough through said material and a second section having a second substantially non-round cross section, said at least one conductor being a one-part component, said first substantially round cross section having a first cross-sectional area which is substantially the same as a second-cross-sectional area of said second substantially non-round cross section.
41. The feedthrough according to claim 40, wherein a thickness of a housing material of said housing is smaller than a thickness of said base body.
42. The feedthrough according to claim 40, wherein a thickness of a housing material of said housing is less than or equal to 1.5 mm.
43. The feedthrough according to claim 40, wherein a thickness of said base body is at least 2.0 mm.
44. A housing, comprising: a housing component having a housing opening; a base body placed in said housing opening and having a body opening; and at least one feedthrough including: a material which is a glass material or a ceramic material; and at least one conductor embedded in said material and guided through said body opening in said base body, said at least one conductor having a cross section and at least two sections including a first section having a first substantially round cross section with a diameter (ID) in a region of the feedthrough through said material and a second section having a second substantially non-round cross section, said at least one conductor being a one-part component, said first substantially round cross section having a first cross-sectional area which is substantially the same as a second-cross-sectional area of said second substantially non-round cross section.
45. The housing according to claim 44, wherein said housing includes a housing material with a thickness which is less than a thickness of said base body.
46. The housing according to claim 45, wherein said thickness of said housing material is less than or equal to 1.5 mm.
47. The housing according to claim 45, wherein said thickness of said base body is at least 2.0 mm.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The above-mentioned and other features and advantages of this invention, and the manner of attaining them, will become more apparent and the invention will be better understood by reference to the following description of embodiments of the invention taken in conjunction with the accompanying drawings, wherein:
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(15) Corresponding reference characters indicate corresponding parts throughout the several views. The exemplifications set out herein illustrate embodiments of the invention and such exemplifications are not to be construed as limiting the scope of the invention in any manner.
DETAILED DESCRIPTION OF THE INVENTION
(16) Referring now to the drawings, and more particularly to
(17)
(18) Housing component 5 has an opening 7 which is placed into the housing component. The inventive feedthrough, including the base body, for example essentially ring-shaped base body 9, which accommodates one section of a conductor, for example essentially pin-shaped conductor 11, is inserted into opening 7. In the illustrated arrangement a section, for example the first section of the conductor, having a substantially round, for example a circular, cross section is sealed into substantially ring-shaped base body 9. In order to provide a hermetic feedthrough of the conductor, for example the substantially pin-shaped conductor 11, through the base body and thereby opening 7, the section of substantially pin-shaped conductor 11 is sealed into a glass plug consisting essentially of a glass- or glass ceramic material, in other words, base body 9 and substantially pin-shaped conductor 11 are fused with glass 13. If materials with different coefficients of expansion are used, for example for base body 9, pin-shaped conductor 11 and glass material 13, then a so-called compression seal feedthrough can be provided. The advantage of a compression seal feedthrough consists in that, that even under a greater load upon the glass plug, for example in the event of compressive stress, expulsion of the glass plug with the metal pin from the base body is avoided. The sealing temperature of the glass- or glass ceramic material is, for example, 20K to 100K below the melting temperature of the material of base body 9 and/or of pin-shaped conductor 11. If base body 9 is constructed of a metal having a low melting point, for example a light metal, such as aluminum, an aluminum alloy, magnesium, a magnesium alloy or AlSiC, titanium, a titanium alloy, but also steel, stainless steel or high-grade steel, then a glass material through which the conductor is guided and which includes the following components in mol.-% may be used:
(19) TABLE-US-00003 P.sub.2O.sub.5 35-50 mol-%, for example 39-48 mol-%; Al.sub.2O.sub.3 0-14 mol-%, for example 2-12 mol-%; B.sub.2O.sub.3 2-10 mol-%, for example 4-8 mol-%; Na.sub.2O 0-30 mol-%, for example 0-20 mol-%; M.sub.2O 0-20 mol-%, for example 12-20 mol-%, whereby M = K, Cs or Rb; PbO 0-10 mol-%, for example 0-9 mol-%, such as 0 mol-%; Li.sub.2O 0-45 mol-%, for example 0-40 mol-%, or 17-40 mol-%; BaO 0-20 mol-%, for example 0-20 mol-%, or 5-20 mol-%; and Bi.sub.2O.sub.3 0-10 mol-%, for example 1-5 mol-%, or 2-5 mol-%.
(20) In a further embodiment the glass composition includes the following components in mol.-%:
(21) TABLE-US-00004 P.sub.2O.sub.5 38-50 mol-%, for example 39-48 mol-%; Al.sub.2O.sub.3 3-14 mol-%, for example 4-12 mol-%; B.sub.2O.sub.3 4-10 mol-%, for example 4-8 mol-%; Na.sub.2O 10-30 mol-%, for example 14-20 mol-%; K.sub.2O 10-20 mol-%, for example 12-19 mol-%; and PbO 0-10 mol-%, for example 0-9 mol-%, or 0 mol-%.
(22) In one variation of the present invention, the glass composition includes at least 17 mol-% Li.sub.2O and at most 35 mol-% Li.sub.2O. Such glass compositions are sufficiently resistant to electrolytes which contain Lithium, as well as being sufficiently crystallization-stable, whereby melting of the glasses at temperatures of generally <600 C. is not impeded.
(23) An exemplary glass composition includes 4-8 mol-% Bi.sub.2O.sub.3. Bi.sub.2O.sub.3 can replace the environmentally damaging PbO. Moreover, the water resistance can be clearly increased through the addition of Bi.sub.2O.sub.3. In particular, even with a small addition of 1 mol-% Bi.sub.2O.sub.3, an alkali-phosphate glass composition with an essentially same alkali content can be made already surprisingly 10-times more water resistant than an alkali-phosphate glass composition in which no Bi.sub.2O.sub.3 with the exception of contamination, is present. This effect was surprising for an expert.
(24) Because of environmental reasons, glasses which, with the exception of contaminations, do not contain Pb, that isPbO is 0 mol-% are advantageous. In this application, to be free of Pb with the exception of contamination meansas mentioned previously that the glass contains an amount of <100 parts per million (ppm), for example <10 ppm, or <1 ppm lead.
(25) Below, eight exemplary compositions are shown in Table 1 for the aforementioned glass compositions.
(26) TABLE-US-00005 TABLE 1 Examples: AB1 AB2 AB3 AB4 AB5 AB6 AB7 AB8 Mol-% P.sub.2O.sub.5 47.6 43.3 43.3 43.3 37.1 40.0 42.0 46.5 B.sub.2O.sub.3 7.6 4.8 4.7 4.8 4.9 6.0 6.0 7.6 Al.sub.2O.sub.3 4.2 8.6 8.7 2.0 2 12.0 12.0 4.2 Na.sub.2O 28.3 17.3 15.0 16.0 28.3 K.sub.2O 12.4 17.3 17.3 18.0 19.0 12.4 PbO 9.0 BaO 8.7 8.7 15.4 14 Li.sub.2O 17.3 34.6 42.1 Bi.sub.2O.sub.3 5 1 Hemispherical 513 554 564 540 625 553 502 Temperature ( C.) (20-300 C.) 19 16.5 14.9 13.7 14.8 16.7 16.0 19.8 (10.sup.6/K) Tg ( C.) 325 375 354 369 359 392 425 347 Density 2.56 3 3.02 2.63 [g/cm.sup.3] Leaching 18.7 14.11 7.66 12.63 1.47 3.7 29.01 8.43 in Mass-% Weight 10.7 0.37 0.1 0.13 0.13 n.B. 0.006/0.001 0.45/0.66 loss (%) after 70 hours in 70 C.- water
(27) The aforementioned special glass composition distinguishes itself in that the glass materials have very high thermal expansions in the range of >1510.sup.6/K, for example in the range of 1510.sup.6/K to 2510.sup.6/K for temperatures between 20 C. and 300 C., and therefore in the range of the thermal expansion of light metals such as aluminum, but also of similar metals for essentially pin-shaped conductor 11, which are guided through the glass material, namely copper. At room temperature, aluminum has a thermal expansion of =2310.sup.6/K, copper of 16.510.sup.6/K. In order to avoid that during the sealing process the light metal of the base body, and possibly also the metal pin melts or deforms, the melting temperature of the glass material is below the melting temperature of the material of the base body and/or the conductor. The sealing temperature of the listed glass composition is then in the range of 250 C. to 650 C. Sealing of essentially pin-shaped conductor 11 into base body 9 prior to placing the feedthrough into opening 7 is achieved in that the glass together with the conductor, for example the pin-shaped conductor is heated to the sealing temperature of the glass, so that the glass material softens and surrounds the conductor, in particular the pin-shaped conductor in the opening and fits against base body 9. If, for example as described above, aluminum is used for base body 9 as light metal having a melting point T.sub.melt=660.32 C., then the sealing temperature of the glass material is, as described above, for example in the range of 350 C. to 640 C. The material of pin-shaped conductor 11 may be identical to the material of the base body which has the advantage that the coefficient of expansion for the base body and for the metal pin is identical. The pin-shaped conductor may include aluminum, an aluminum alloy, AlSiC, copper, a copper alloy, CuSiC- or NiFe-alloys, a copper core, that is a NiFe jacket with an interior copper part, silver, a silver alloy, gold or a gold alloy. If the coefficient of expansion in the range of 20 C. to 300 C. of the glass or glass ceramic material is not completely adapted to the material of the base body then a compression seal feedthrough is provided. Otherwise it is a so-called adapted feedthrough.
(28) Glass compositions AB1, AB2, AB3, AB4, AB5, AB7 and AB8 of the above-identified examples are lead free with the exception of contamination, thereby reducing potential environmental impact.
(29) Potential materials for the base body are light metals, such as aluminum (Al), AlSiC, an aluminum alloy, magnesium, a magnesium alloy, titanium, a titanium alloy. Alternative materials for the base body are metals such as steel, stainless steel, high-grade steel or tool steel.
(30) The sealing temperature of the glass or glass ceramic is to be understood to be the temperature of the glass or the glass ceramic whereby the glass material softens and then fits closely against the metal with which is to be sealed so that a bonded joint connection is obtained between the glass or the glass ceramic and the metal.
(31) The sealing temperature may, for example, be determined through the hemispherical temperature, as described in R. Grke, K. J. Leers: Keram. Z. 48 (1996) 300-305, or according to DIN 51730, ISO 540 or CEN/TS 15404 and 15370-1, whose disclosure content is incorporated in its entirety into the current patent application. The measurement of the hemispherical temperature is described in detail in DE 10 2009 011 182 A1, whose disclosure content is incorporated in its entirety into the current patent application. The solder glasses having become known from DE 10 2009 011 182 A1 pertain to high temperature applications, for example fuel cells.
(32) The previously cited phosphate glass compositions have a Lithium-share of up to 45 mol-%, for example 35 mol-%. Surprisingly, these glass compositions are crystallization-stable, meaning they do not display detrimental crystallization during a downstream sintering process, in particular any substantial crystallization for less than 35 mol-%.
(33) The previously mentioned glass compositions contain Lithium which is integrated in the glass structure. The glass compositions are hereby especially suited for Lithium-ion storage devices which includes electrolytes based on Lithium, for example a 1 M LiPF.sub.6-solution, including a 1:1 mixture of ethylene-carbonate and dimethyl-carbonate.
(34) Low sodium, or respectively sodium-free, glass compositions are feasible since the diffusion of the alkali-ions occurs in Na+>K+>Cs+ sequence and since therefore low sodium or respectively sodium-free glasses are especially resistant to electrolytes, especially those which are used in Lithium-ion storage devices.
(35) The previously cited glass compositions have a thermal expansion (20 C. to 300 C.)>14.Math.10.sup.6/K, for example between 15.Math.10.sup.6/K and 25.Math.10.sup.6/K. An additional advantage of the glass composition is that sealing of the glass with the surrounding light metal or respectively the metal of the conductor, for example in the embodiment of a metal pin, is possible also in a gaseous atmosphere which is not an inert gas atmosphere. In contrast to the previously used method, a vacuum is also no longer necessary for Aluminum-sealing. This type of sealing can rather occur under atmospheric conditions. For both types of sealing N.sub.2 or Ar can be used as inert gas. As a pre-treatment for sealing, the metal is cleaned and/or etched, and if necessary is subjected to targeted oxidizing or coating. During the process temperatures of between 300 and 600 C. are used at heating rates of 0.1 to 30 degrees Kelvin per minute (K/min.) and dwell times of 1 to 60 minutes.
(36) Furthermore, a housing part 5 of the housing of the battery or battery cell, in this case the battery cover is illustrated in
(37) In the case of lithium-ion batteries, typically a non-aqueous electrolyte, typically consisting of a carbonate, for example a carbonate mixture, such as a mixture of ethylene-carbonate and dimethyl-carbonate is used, whereby the aggressive non-aqueous battery electrodes include a conducting salt, for example conducting salt LiPF.sub.6 in the form of a 1-Molar solution.
(38) According to the first example, base body 3 features a protrusion 30, whereby wall thickness W.sub.1 of the ring-shaped body in the example according to
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(40) Other than that, the arrangement according to
(41) Whereas the base body according to
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(43) In contrast to the arrangements according to
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(45) One advantage of the arrangement according to
(46) Shown
(47) In contrast to the variations according to
(48) Further shown in
(49) The arrangement according to
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(55) A recess 2002 in which an electrode connecting part 2020 is inserted is provided on the pin-shaped conductor. The electrode connecting component serves again either as cathode or as anode of electrochemical cell 2004 of battery cell 1000. Housing 1100 surrounds battery cell 1000 in the embodiment of battery cell housing. Electrode connecting component and conductor are thereby two separate components which must be connected with one another.
(56) As can be seen in
(57) In order to minimize the non-utilized space in the battery cell housing, a two-component configuration according to
(58) Identical components as in
(59)
(60) The embodiments illustrated in
(61) In the arrangement according to
(62) In the arrangement according to
(63) In all of
(64)
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(66) The first section of conductor 9005.1, 9005.2 has a substantially circular cross section, in the region of the seal into a glass or glass ceramic material. In order to lose as little space as possible, the glazed seal is performed directly in openings 9007.1, 9007.2. If the material used for the housing or respectively the battery cover is aluminum or an aluminum alloy, then glass materials having an accordingly low sealing temperaturefor example in the range of between approximately 250 C. and 650 C. are used.
(67) In contrast to the embodiments according to
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(69) Also clearly visible is the additional region of the second section which has the same cross section as the first section that is circular. Due to the circular cross section a relatively large space is lost. The space loss can be expressed in height H in
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(71) Also clearly visible in the top view in
(72) The conductor is illustrated again in detail in
(73) The difference between the first section with the circular cross section and the second section with the rectangular cross section can be clearly seen in
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(75) Identical components as in
(76) Like
(77) As can be clearly seen in
(78) In the arrangement according to
(79) The possibility to be able to freely select the length of additional region 10020.1, 10020.2 in the reshaping step allows for electrode distance EA to be adapted to the respective battery cell. The cathode or anode or respectively the connection of the second section of the conductor with the cathode or anode occurs with the assistance of welding, for example ultrasonic welding, resistance welding or laser welding.
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(82) The current invention cites for the first time a feedthrough for a housing, in particular a battery cell housing, for example for a lithium-ion battery which can be pre-manufactured and which is especially suited to be utilized in housing components of battery cell housings. The battery cell housing includes, for example a light metal such as aluminum (Al), an aluminum alloy, AlSiC, magnesium, a magnesium alloy, titanium or a titanium alloy. However, metals such as steel or high-grade steel, such as stainless steel or tool steel are possible as materials for the battery cell housing. In such a case the materials of the base body and/or the essentially pin-shaped conductor are adapted.
(83) The inventive solution further allows reverting to a cost-effective manufacturing process and basic materials. In a first embodiment the entire feedthrough can be in the embodiment of a pre-manufactured component into which the metal pin is sealed into a base body by a bonding material that is, for example, a glass plug, before the base body is placed into the housing component. This ensures that there is no loss of strain-hardening in the housing component. Moreover, material thicknesses and materials for the housing component and the base body can be selected independently. The feedthrough can be mechanically as well as thermally relieved through a special arrangement with a relief device.
(84) An alternative hereto is direct sealing which saves space. In direct sealing the glass material must have a sealing temperature which is adapted to the housing material, whereby the housing material is selected so that it has sufficient strength.
(85) With the present invention, the electrode distances can be very easily adapted to different battery cells. Moreover, due to the constant conductive cross section in the region of the feedthrough and the electrode connecting region the conductive loss is minimized and thereby also the heat loss. Because of the round cross section in the region of the seal, a reliable seal is provided.
(86) While this invention has been described with respect to at least one embodiment, the present invention can be further modified within the spirit and scope of this disclosure. This application is therefore intended to cover any variations, uses, or adaptations of the invention using its general principles. Further, this application is intended to cover such departures from the present disclosure as come within known or customary practice in the art to which this invention pertains and which fall within the limits of the appended claims.