US20020015882A1 - Structure for positioning electrode plates in a battery casing - Google Patents

Structure for positioning electrode plates in a battery casing Download PDF

Info

Publication number
US20020015882A1
US20020015882A1 US09/759,532 US75953201A US2002015882A1 US 20020015882 A1 US20020015882 A1 US 20020015882A1 US 75953201 A US75953201 A US 75953201A US 2002015882 A1 US2002015882 A1 US 2002015882A1
Authority
US
United States
Prior art keywords
battery
plates
negative
positive
electrode plates
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.)
Abandoned
Application number
US09/759,532
Inventor
Tai-Her Yang
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.)
Individual
Original Assignee
Individual
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 Individual filed Critical Individual
Publication of US20020015882A1 publication Critical patent/US20020015882A1/en
Abandoned legal-status Critical Current

Links

Images

Classifications

    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01MPROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
    • H01M10/00Secondary cells; Manufacture thereof
    • H01M10/06Lead-acid accumulators
    • H01M10/12Construction or manufacture
    • H01M10/16Suspending or supporting electrodes or groups of electrodes in the case
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01MPROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
    • H01M50/00Constructional details or processes of manufacture of the non-active parts of electrochemical cells other than fuel cells, e.g. hybrid cells
    • H01M50/50Current conducting connections for cells or batteries
    • H01M50/528Fixed electrical connections, i.e. not intended for disconnection
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01MPROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
    • H01M50/00Constructional details or processes of manufacture of the non-active parts of electrochemical cells other than fuel cells, e.g. hybrid cells
    • H01M50/50Current conducting connections for cells or batteries
    • H01M50/531Electrode connections inside a battery casing
    • H01M50/54Connection of several leads or tabs of plate-like electrode stacks, e.g. electrode pole straps or bridges
    • YGENERAL 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
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E60/00Enabling technologies; Technologies with a potential or indirect contribution to GHG emissions mitigation
    • Y02E60/10Energy storage using batteries
    • YGENERAL 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
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02PCLIMATE CHANGE MITIGATION TECHNOLOGIES IN THE PRODUCTION OR PROCESSING OF GOODS
    • Y02P70/00Climate change mitigation technologies in the production process for final industrial or consumer products
    • Y02P70/50Manufacturing or production processes characterised by the final manufactured product

Definitions

  • This invention relates to a structure for mounting battery electrode plates in a battery case, and in particular to a structure for mounting battery electrode plates in a battery case so as to prolong the operating life of the battery.
  • the lead acid battery 10 is mainly comprised of components including a case 11 , a negative plate group 12 , a positive plate group 13 , separators 14 , electrolyte 15 , and a sealing cover 16 .
  • the inside of the battery case 11 can be divided into several cell compartments 112 through partition plate 111 , and each cell compartment 112 is installed with negative plates 12 and positive plates 13 which are made of lead (Pb) and lead bi-oxide (PbO 2 ) which are respectively immersed in an electrolyte 15 made of a diluted sulfuric acid (H 2 SO 4 ) solution.
  • the negative plates 12 and the positive plates 13 are separated by the separator 14 to avoid short-circuits due to mutual contact.
  • the plate connectors 121 , 123 of the positive and negative plates 12 , 13 protrude upward, and the plate connectors 121 of the negative plates 12 are series combined with the negative terminal post 122 , while the plate connectors 131 of the positive plates 13 are series combined with the positive terminal post 132 .
  • the negative terminal posts 122 and the positive terminal posts 132 in different cell compartments 112 can be further respectively series combined by the cell connectors 17 , to respectively provide the electric terminal posts at the top of sealing cover 16 , including a negative terminal post 123 and a positive terminal post 133 .
  • the lead acid battery 10 will provide an electric discharge function.
  • the electric charge/discharge reactions are as follows:
  • the lead acid battery 10 has adequate electric charge/discharge functions, it is disadvantageous in that the battery case 11 is subject to resonant vibrations during charging/discharging operations. Because the negative and positive plates 12 , 13 in fact are supported exclusively by the series combination of the negative terminal post 122 and the positive terminal post 132 at the top of the casing, with no series combination positioning structure being provided at the bottom, the negative and positive plates 12 , 13 are not positioned in a stable manner. As a result, when a resonant vibration occurs, the negative and positive plates 12 , 13 are usually vibrated at the same time, which causes the chemically-active materials to either drop off or to expand, thereby damaging the charging recoverability of the battery 10 and shortening its operating life.
  • the objective of the invention is to provide an improved mounting structure for mounting the battery electrode plates within the battery casing, such that the bottoms of the negative and positive plates are respectively series combined with electric conductive or non-conductive materials; thereof the for the improved combining structure between the battery electrode plates and the battery casing, beside that the bottoms of the electrode plates can be series combined with electric conductive or non-conductive materials.
  • foot slots may be provided at the bottom of the battery casing for insertion of the plate connector.
  • FIG. 1 is a schematic diagram of a conventional lead acid battery.
  • FIG. 2 is a sectional schematic diagram of a first preferred embodiment of the invention, illustrating the combination between the battery casing and a first kind of electrode plate.
  • FIG. 3 is a schematic diagram of the invention illustrating the aforesaid first kind of electrode plate.
  • FIG. 4 is a sectional schematic diagram of a variation of the first preferred embodiment of the invention, illustrating the combination between the battery casing and a second kind of electrode plate.
  • FIG. 5 is a schematic diagram of the invention illustrating the aforesaid second kind of electrode plate.
  • FIG. 6 is a sectional schematic of a variation of the first preferred embodiment of the invention, illustrating the combination between the battery casing and a third kind of electrode plate.
  • FIG. 7 is a schematic diagram of the invention illustrating the aforesaid third kind of electrode plate.
  • FIG. 8 is a sectional schematic diagram of a second preferred embodiment of the invention, illustrating a combination between the variation of the first kind of battery casing and the first kind of electrode plate.
  • FIG. 9 is a sectional schematic diagram of a variation of the second preferred embodiment of the invention, illustrating a combination between the variation of the first kind of battery casing and the second kind of electrode plate.
  • FIG. 10 is a sectional schematic diagram of a variation of the second preferred embodiment of the invention, illustrating a combination between the variation of the first kind of battery casing and the third kind of electrode plate.
  • FIG. 11 is a sectional schematic diagram of a variation of the second preferred embodiment of the invention, illustrating a combination between a first kind of battery casing foot slot and the electrode plates.
  • FIG. 12 is a sectional schematic diagram of a variation of the second preferred embodiment of the invention, illustrating a combination between a second kind of battery casing and the first kind of electrode plate.
  • FIG. 13 is a sectional schematic diagram of a variation of the second preferred embodiment of the invention, illustrating a combination between the second kind of battery casing and the second kind of electrode plate.
  • FIG. 14 is a sectional schematic diagram of a variation of the second preferred embodiment of the invention, illustrating the combination between the second kind of battery casing and the third kind of electrode plate.
  • FIG. 15 is a sectional schematic diagram of a variation of the second preferred embodiment of the invention, illustrating the combination between a fourth kind of battery casing and electrode plate.
  • FIG. 16 is a sectional schematic diagram of a variation of the second preferred embodiment of the invention, illustrating the combination between a fifth kind of battery casing and electrode plate.
  • FIG. 17 is a sectional schematic diagram of a variation of the second embodiment of the invention illustrating the combination between a sixth kind of battery casing and electrode plate.
  • FIG. 18 is a schematic diagram of a variation of the second preferred embodiment of the invention, illustrating terminal connections of a single cell compartment.
  • FIG. 19 is a schematic diagram of a variation of the second preferred embodiment of the invention, illustrating multiple cell terminal connections.
  • the improved mounting structure of the first preferred embodiment of the invention is mainly comprised of a battery casing 20 , and electrode plates including at least two negative plates 30 , and at least one positive plate 40 (the illustrated embodiment includes four negative plates and three positive plates).
  • the negative and positive plates 30 , 40 are installed within the battery casing 20 , which is of the same type as the conventional hollow rectangular casing open at the top.
  • the negative and positive plates 30 , 40 are alternately arranged and are mutually separated by separators 100 to avoid short circuits due to mutual contact. As shown in FIG.
  • the bottoms of the negative and positive plates 30 , 40 are respectively series combined by a negative electrode combining strap 31 and a positive electrode combining strap 41 , made either of conductive material (such as lead, lead alloy, etc.) or non-conductive material (such as anti-corrosive plastics, etc.), arranged to positively position the bottoms of the negative and positive plates 30 , 40 .
  • a negative electrode combining strap 31 and a positive electrode combining strap 41 made either of conductive material (such as lead, lead alloy, etc.) or non-conductive material (such as anti-corrosive plastics, etc.), arranged to positively position the bottoms of the negative and positive plates 30 , 40 .
  • two plate connectors 301 , 302 , 401 , 402 are respectively symmetrically formed at the two diagonal corners of the negative and positive plates 30 , 40 , which cause the said negative and positive plates 30 , 40 to appear to have a “” shaped structure.
  • the negative and positive plates 30 , 40 can be welded through their bottom plate connectors 301 , 401 to respective negative and positive electrode combining straps 31 , 32 , while the top plate connectors 302 , 402 can be series connected to the negative terminal post 32 and positive terminal post 42 .
  • FIGS. 4 and 5 An alternative design of the negative and positive plates is shown in FIGS. 4 and 5.
  • the negative and positive plates 33 , 43 also have bottom and top plate connectors 331 , 332 , 431 , 432 , but the plate connectors are formed at the top and bottom ends of one side of the negative and positive plates 33 , 43 , which cause said negative and positive plates 33 , 43 to appear to have a “T” shaped structure.
  • the bottom plate connectors 331 , 431 are again respectively welded to the negative and positive electrode combining straps 34 , 44 made of electric conductive and non-conductive materials, while the top plate connectors 332 , 432 are series connected to the negative terminal post 35 and positive terminal post 45 .
  • each of the negative and positive plates has only one plate connector 361 , 461 respectively, and the plate connectors 361 , 461 protrude upwardly. Consequently, they can be series connected to the negative terminal post 37 and the positive terminal post 47 and, further, the bottoms of the negative and positive plates 36 , 46 can be respectively welded with negative and positive electrodes combining straps 38 , 48 made of electric conductive or non-conductive materials to improve the positioning of the plates.
  • the negative electrode combining straps 31 , 34 , 38 and positive electrode combining straps 41 , 44 , 48 are made of conductive material, in addition to providing better positioning of the aforesaid negative and positive plates, better uniformity of electric conduction on the aforesaid negative and positive plates is obtained, reducing the internal resistance of the aforesaid negative and positive plates, and increasing the battery discharge capacity.
  • the positive electrode combining straps 41 , 44 , 48 are series combined at the bottoms of the positive plates 40 , 43 , 46 while the bottoms of the negative plates 30 , 33 , 36 are not series combined, or the negative and positive electrode combining straps 31 , 34 , 38 , 41 , 44 , 48 are respectively series combined with the bottoms of the negative and positive plates 30 , 33 , 36 , 40 , 43 , 46 ; or the negative electrode combining straps 31 , 34 , 38 are series combined at the bottoms of the negative plates 30 , 33 , 36 while the bottoms of the positive plates 40 , 43 , 46 are not series combined.
  • FIGS. 8, 9 and 10 A second preferred embodiment of the invention having an improved mounting structure between the electrode plates and the battery casing is illustrated in FIGS. 8, 9 and 10 .
  • each bottom of the two sides of the battery casing 50 is installed with a foot slot 51 , but the structural designs of the negative and positive plates 60 , 70 are the same as in the first preferred embodiment, i.e., the second preferred embodiment also includes three types of structural designs for the negative and positive plates 60 , 70 , 61 , 71 , 62 , 72 , with the bottoms of the plates again being respectively series welded to the negative electrodes combining strap 63 and the positive electrodes combining strap 73 made of electric conductive or non-conductive materials.
  • the bottom plate connectors 601 , 611 , 701 , 711 of the negative and positive plates 60 , 61 , 70 , 71 and the negative and positive electrode series combining straps 63 , 73 are inserted in the foot slots 51 , so that the bottoms of the negative and positive plates 60 , 61 , 70 , 71 are combined with the battery casing 50 to improve the positioning effect.
  • the bottom negative and positive electrode series combining straps 63 , 73 can be inserted in the foot slots 51 , and as a result, the positioning effects of the negative and positive plates 62 , 72 can be improved.
  • FIG. 11 shows the optimum condition for the bottom plate connectors 601 , 611 , 701 , 711 of the negative and positive plates 60 , 61 , 70 , 71 inserted into the foot slots 51 of the battery casing 50 (this figure only shows, by way of illustration, the case in which the bottom plate connector 701 of the positive plate 70 is inserted into the foot slot 51 ).
  • the foot slot height “A” is more than 7 mm
  • the welding depth B of the positive electrode combining strap 73 is 2-3 mm, when the insertion is done, and the foot slot 51 is filled with epoxy resin or acid solution.
  • the epoxy resin is filled in the space 511 between the foot slot 51 and the plate connector 701 to avoid acid drop off from the positive plate 70 , and to eliminate the possibility of lack-acid on the plate, while the filled-up acid solution maintains the adequate “acid remains” between the battery casing 50 and the electrode plates so as to provide a good charging recoverability and to prolong the battery operating life.
  • the battery casing 52 may be of another different structural design, in which the bottom of the battery casing 52 is installed with a protruding support post 521 .
  • the support post 521 can support the bottoms of the negative and positive plates to improve positioning of the negative and positive plates, and lengthen the battery operating life.
  • FIG. 15 is a schematic diagram of another battery casing 53 and the negative and positive plates 64 , 74
  • the bottom of each cell compartment 531 of the battery casing 53 may be installed with negative and positive electrode combining straps 80 , 81 , and several “V” shaped slots 801 , 811 provided on the straps for insertion of the plate connectors 640 , 740 at the bottom of the negative and positive plates 64 , 74 .
  • the negative and positive plates 64 , 74 are separated by the separators 101 , while the negative and positive electrode combining straps 80 , 81 are made of electric conductive or non-conductive materials, and can be independently inserted into the battery casing 53 , or can be integrally manufactured, such as by plastic injection methods, with the battery casing 53 .
  • the negative and positive terminal posts 641 , 741 on the tops of the negative and positive plates 64 , 74 in different cell compartments 531 are series combined with an electrically conducting foil 90 for passing electric current.
  • the series combining strap 81 is first installed at the bottom of the large cell compartment 541 in another battery casing 54 .
  • the middle of the series combining strap 82 is provided with an insert slot 821 for insertion of a separator 542 , and the large cell compartment 541 is divided into two smaller cell compartments 543 .
  • two sides of the middle insert slot 821 of the series combining strap 82 are further installed with several insert slots 822 , 823 for insertion of the bottom plate connectors 650 , 750 of the negative and positive plates 65 , 75 .
  • the series combining strap 82 is made of conductive material and has the effect of series combining the negative and positive plates 65 , 75 .
  • the negative and positive terminal posts 651 , 751 at the tops of the negative and positive plates 65 , 75 are also series combined by an electric conducting foil 91 .
  • the bottom of the battery casing 55 can be installed with a slot 551 for introducing the electric conducting foil 85 , which connects the negative and positive series combining straps 83 , 84 .
  • the series combining straps 83 , 84 are also respectively installed with slots 831 , 841 for insertion of the bottom plate connectors 660 , 760 of the negative and positive plates 66 , 76 , and of course, the respective top plate connectors 661 , 761 of the negative and positive plates 66 , 76 are also series combined using an electric conducting foil 92 .
  • the tops and bottoms of the negative and positive plates 60 , 70 of the battery casing 50 are extended to provide power output terminals 110 , 120 , and the extended terminals 110 , 120 at the tops and bottoms of the electrode plates 60 , 70 having the same polarity are all arranged in positive to positive and negative to negative combinations to supply power.
  • the polarities of the negative and positive plates 60 , 70 between the cells are mutually series combined, and the top and bottom terminal posts of the said negative and positive electrode plates 60 , 70 are all extended to provide a pair of positive and negative power output terminals 1100 , 1200 .
  • the two terminals 1100 , 1200 provide positive to positive and negative to negative combinations to supply power simultaneously to reduce the internal resistance of the electrode plates.
  • the bottoms of the negative and positive plates 30 , 33 , 36 , 40 , 43 , 46 are respectively series combined through series combining straps 31 , 34 , 38 , 41 , 44 , 48 made of non-conductive or conductive materials, so that the bottoms of the aforesaid plates are positively positioned, the more integrated positioning effect of the electrode plates having the effect of avoiding resonant vibrations to reduce drop-offs of the chemically-active materials or expanded growth, resulting in greater battery efficiency and the advantage of prolonging the battery operating life.
  • the bottom side of the battery casing 50 can be also installed with foot slots 51 for inserting the plate connectors 601 , 611 , 701 , 711 of the negative and positive plates 60 , 61 , 70 , 71 and the series combining straps 63 , 67 , to further improve positioning of the bottoms of the negative and positive plates 60 , 61 , 62 , 70 , 71 , 72 .
  • the foot slots 51 can be filled in with epoxy resin or acid solution to retain adequate “acid remnants” in the battery casing 50 , thereby providing the effect and advantage of maintaining good charging recoverability of the battery.
  • the bottom of the battery casing 52 can also be installed with a protruding support post 521 to support the aforesaid negative and positive plates and thereby improve the positioning effect of the aforesaid electrode plates and prolong the operating life of the battery.
  • the series combining straps 63 , 73 are made of electric conductive material, besides improving the positioning effect of the negative and positive plates 60 , 61 , 62 , 70 , 71 , 72 , the internal resistance of the aforesaid electrode plates can be also reduced, and furthermore, the effect and advantage of increasing battery discharging capacity are obtained. 4.
  • the bottoms of the battery casings 53 , 54 , 55 can be directly series combined with the series combining straps 80 , 81 , 82 , 83 , and inserting slots 801 , 811 , 822 , 823 , 833 , 834 can be further installed on the series combining straps for insertion of the negative and positive plates 64 , 74 , 65 , 75 , 66 , 76 , thereby improving positioning of the aforesaid electrode plates, and providing the effect and advantage of increasing the battery operating life. 5.

Landscapes

  • Engineering & Computer Science (AREA)
  • Manufacturing & Machinery (AREA)
  • Chemical & Material Sciences (AREA)
  • Chemical Kinetics & Catalysis (AREA)
  • Electrochemistry (AREA)
  • General Chemical & Material Sciences (AREA)
  • Secondary Cells (AREA)
  • Connection Of Batteries Or Terminals (AREA)

Abstract

An improved combining structure between the battery electrode plates and the battery casing, wherein it is mainly comprised of that the bottoms of the electrode plates are respectively series combined by the series combining straps made of electric conductive or non-conductive materials; and for the improved combining structure between the electrode plates and the battery casing, besides of that the bottoms of the electrode plates can be series combined by the series combining straps, the bottom of the battery casing can be provided with foot slots for inserting the plate connectors, or the inside bottom of the battery casing is installed with the support posts protruding upward to support the electrode plates, or the inside bottom of the battery casing is installed with the series combining straps with slots for inserting the electrode plates; thereby with this composition, not only the positioning effect of the electrode plates can be improved, when the series combining straps are made of electric conductive material, the uniformity of the electric conduction on the electrode plate is also improved, whereby the battery operating life is also extended.

Description

    BACKGROUND OF THE INVENTION
  • 1. Field of the Invention [0001]
  • This invention relates to a structure for mounting battery electrode plates in a battery case, and in particular to a structure for mounting battery electrode plates in a battery case so as to prolong the operating life of the battery. [0002]
  • 2.Description the Prior Art [0003]
  • In recent years, applications of batteries have become very popular, especially after the development of motorcycles and automobiles. The lead acid battery has become an indispensable component of such vehicles. As shown in FIG. 1, the [0004] lead acid battery 10 is mainly comprised of components including a case 11, a negative plate group 12, a positive plate group 13, separators 14, electrolyte 15, and a sealing cover 16. The inside of the battery case 11 can be divided into several cell compartments 112 through partition plate 111, and each cell compartment 112 is installed with negative plates 12 and positive plates 13 which are made of lead (Pb) and lead bi-oxide (PbO2) which are respectively immersed in an electrolyte 15 made of a diluted sulfuric acid (H2SO4) solution. The negative plates 12 and the positive plates 13 are separated by the separator 14 to avoid short-circuits due to mutual contact. In addition, the plate connectors 121, 123 of the positive and negative plates 12, 13 protrude upward, and the plate connectors 121 of the negative plates 12 are series combined with the negative terminal post 122, while the plate connectors 131 of the positive plates 13 are series combined with the positive terminal post 132. In addition, the negative terminal posts 122 and the positive terminal posts 132 in different cell compartments 112 can be further respectively series combined by the cell connectors 17, to respectively provide the electric terminal posts at the top of sealing cover 16, including a negative terminal post 123 and a positive terminal post 133. As long as the positive electrode wire (not shown in the figure) is connected to the positive terminal 133, and the negative electrode wire (not shown in the figure) is connected to the negative terminal 123, the lead acid battery 10 will provide an electric discharge function. The electric charge/discharge reactions are as follows:
    Figure US20020015882A1-20020207-C00001
  • Although the [0005] lead acid battery 10 has adequate electric charge/discharge functions, it is disadvantageous in that the battery case 11 is subject to resonant vibrations during charging/discharging operations. Because the negative and positive plates 12, 13 in fact are supported exclusively by the series combination of the negative terminal post 122 and the positive terminal post 132 at the top of the casing, with no series combination positioning structure being provided at the bottom, the negative and positive plates 12, 13 are not positioned in a stable manner. As a result, when a resonant vibration occurs, the negative and positive plates 12, 13 are usually vibrated at the same time, which causes the chemically-active materials to either drop off or to expand, thereby damaging the charging recoverability of the battery 10 and shortening its operating life.
  • SUMMARY OF THE INVENTION
  • The objective of the invention is to provide an improved mounting structure for mounting the battery electrode plates within the battery casing, such that the bottoms of the negative and positive plates are respectively series combined with electric conductive or non-conductive materials; thereof the for the improved combining structure between the battery electrode plates and the battery casing, beside that the bottoms of the electrode plates can be series combined with electric conductive or non-conductive materials. To facilitate integration of the bottoms of the plates into the casing, foot slots may be provided at the bottom of the battery casing for insertion of the plate connector. Through the aforesaid structural design, better positioning results for electrode plates can be obtained, and when the series combining straps are made of electric conductive material, the uniformity of electric conduction on the plate can be improved, thereby lengthening the battery operating life.[0006]
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • FIG. 1 is a schematic diagram of a conventional lead acid battery. [0007]
  • FIG. 2 is a sectional schematic diagram of a first preferred embodiment of the invention, illustrating the combination between the battery casing and a first kind of electrode plate. [0008]
  • FIG. 3 is a schematic diagram of the invention illustrating the aforesaid first kind of electrode plate. [0009]
  • FIG. 4 is a sectional schematic diagram of a variation of the first preferred embodiment of the invention, illustrating the combination between the battery casing and a second kind of electrode plate. [0010]
  • FIG. 5 is a schematic diagram of the invention illustrating the aforesaid second kind of electrode plate. [0011]
  • FIG. 6 is a sectional schematic of a variation of the first preferred embodiment of the invention, illustrating the combination between the battery casing and a third kind of electrode plate. [0012]
  • FIG. 7 is a schematic diagram of the invention illustrating the aforesaid third kind of electrode plate. [0013]
  • FIG. 8 is a sectional schematic diagram of a second preferred embodiment of the invention, illustrating a combination between the variation of the first kind of battery casing and the first kind of electrode plate. [0014]
  • FIG. 9 is a sectional schematic diagram of a variation of the second preferred embodiment of the invention, illustrating a combination between the variation of the first kind of battery casing and the second kind of electrode plate. [0015]
  • FIG. 10 is a sectional schematic diagram of a variation of the second preferred embodiment of the invention, illustrating a combination between the variation of the first kind of battery casing and the third kind of electrode plate. [0016]
  • FIG. 11 is a sectional schematic diagram of a variation of the second preferred embodiment of the invention, illustrating a combination between a first kind of battery casing foot slot and the electrode plates. [0017]
  • FIG. 12 is a sectional schematic diagram of a variation of the second preferred embodiment of the invention, illustrating a combination between a second kind of battery casing and the first kind of electrode plate. [0018]
  • FIG. 13 is a sectional schematic diagram of a variation of the second preferred embodiment of the invention, illustrating a combination between the second kind of battery casing and the second kind of electrode plate. [0019]
  • FIG. 14 is a sectional schematic diagram of a variation of the second preferred embodiment of the invention, illustrating the combination between the second kind of battery casing and the third kind of electrode plate. [0020]
  • FIG. 15 is a sectional schematic diagram of a variation of the second preferred embodiment of the invention, illustrating the combination between a fourth kind of battery casing and electrode plate. [0021]
  • FIG. 16 is a sectional schematic diagram of a variation of the second preferred embodiment of the invention, illustrating the combination between a fifth kind of battery casing and electrode plate. [0022]
  • FIG. 17 is a sectional schematic diagram of a variation of the second embodiment of the invention illustrating the combination between a sixth kind of battery casing and electrode plate. [0023]
  • FIG. 18 is a schematic diagram of a variation of the second preferred embodiment of the invention, illustrating terminal connections of a single cell compartment. [0024]
  • FIG. 19 is a schematic diagram of a variation of the second preferred embodiment of the invention, illustrating multiple cell terminal connections.[0025]
  • DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
  • As shown in FIG. 2, the improved mounting structure of the first preferred embodiment of the invention is mainly comprised of a [0026] battery casing 20, and electrode plates including at least two negative plates 30, and at least one positive plate 40 (the illustrated embodiment includes four negative plates and three positive plates). The negative and positive plates 30, 40 are installed within the battery casing 20, which is of the same type as the conventional hollow rectangular casing open at the top. The negative and positive plates 30, 40 are alternately arranged and are mutually separated by separators 100 to avoid short circuits due to mutual contact. As shown in FIG. 3, the bottoms of the negative and positive plates 30,40 are respectively series combined by a negative electrode combining strap 31 and a positive electrode combining strap 41, made either of conductive material (such as lead, lead alloy, etc.) or non-conductive material (such as anti-corrosive plastics, etc.), arranged to positively position the bottoms of the negative and positive plates 30, 40. As shown in FIGS. 2 and 3, two plate connectors 301, 302, 401, 402 are respectively symmetrically formed at the two diagonal corners of the negative and positive plates 30, 40, which cause the said negative and positive plates 30, 40 to appear to have a “” shaped structure. As a result, the negative and positive plates 30, 40 can be welded through their bottom plate connectors 301, 401 to respective negative and positive electrode combining straps 31, 32, while the top plate connectors 302, 402 can be series connected to the negative terminal post 32 and positive terminal post 42.
  • An alternative design of the negative and positive plates is shown in FIGS. 4 and 5. In this design, the negative and [0027] positive plates 33, 43 also have bottom and top plate connectors 331, 332, 431, 432, but the plate connectors are formed at the top and bottom ends of one side of the negative and positive plates 33, 43, which cause said negative and positive plates 33, 43 to appear to have a “T” shaped structure. The bottom plate connectors 331, 431 are again respectively welded to the negative and positive electrode combining straps 34, 44 made of electric conductive and non-conductive materials, while the top plate connectors 332,432 are series connected to the negative terminal post 35 and positive terminal post 45.
  • As shown in FIGS. 6 and 7, in yet another kind of structural design for the negative and [0028] positive plates 36, 46, each of the negative and positive plates has only one plate connector 361, 461 respectively, and the plate connectors 361, 461 protrude upwardly. Consequently, they can be series connected to the negative terminal post 37 and the positive terminal post 47 and, further, the bottoms of the negative and positive plates 36, 46 can be respectively welded with negative and positive electrodes combining straps 38, 48 made of electric conductive or non-conductive materials to improve the positioning of the plates.
  • It is worth mentioning that when the negative [0029] electrode combining straps 31, 34, 38 and the positive electrode combining straps 41, 44, 48 are made of non-conductive material, the integrated positioning effects of the negative and positive plates 30, 33, 36, 40, 43, 46 are improved, thereby avoiding generation of resonant vibrations during the electric charging/discharging process which cause drop off or expanded growth of the chemically-active materials on the plates, resulting in prolonged battery operating life. When the negative electrode combining straps 31, 34, 38 and positive electrode combining straps 41, 44, 48 are made of conductive material, in addition to providing better positioning of the aforesaid negative and positive plates, better uniformity of electric conduction on the aforesaid negative and positive plates is obtained, reducing the internal resistance of the aforesaid negative and positive plates, and increasing the battery discharge capacity.
  • Regarding the series combination methods, the positive [0030] electrode combining straps 41, 44, 48 are series combined at the bottoms of the positive plates 40, 43, 46 while the bottoms of the negative plates 30, 33, 36 are not series combined, or the negative and positive electrode combining straps 31, 34, 38, 41, 44, 48 are respectively series combined with the bottoms of the negative and positive plates 30, 33, 36, 40, 43, 46; or the negative electrode combining straps 31, 34, 38 are series combined at the bottoms of the negative plates 30, 33, 36 while the bottoms of the positive plates 40, 43, 46 are not series combined.
  • A second preferred embodiment of the invention having an improved mounting structure between the electrode plates and the battery casing is illustrated in FIGS. 8, 9 and [0031] 10. In this embodiment, each bottom of the two sides of the battery casing 50 is installed with a foot slot 51, but the structural designs of the negative and positive plates 60, 70 are the same as in the first preferred embodiment, i.e., the second preferred embodiment also includes three types of structural designs for the negative and positive plates 60, 70, 61, 71, 62, 72, with the bottoms of the plates again being respectively series welded to the negative electrodes combining strap 63 and the positive electrodes combining strap 73 made of electric conductive or non-conductive materials. The bottom plate connectors 601, 611, 701, 711 of the negative and positive plates 60, 61, 70, 71 and the negative and positive electrode series combining straps 63, 73 are inserted in the foot slots 51, so that the bottoms of the negative and positive plates 60, 61, 70, 71 are combined with the battery casing 50 to improve the positioning effect. For the negative and positive plates 62, 72 which have only single plate connectors 621, 721, the bottom negative and positive electrode series combining straps 63, 73 can be inserted in the foot slots 51, and as a result, the positioning effects of the negative and positive plates 62, 72 can be improved.
  • FIG. 11 shows the optimum condition for the [0032] bottom plate connectors 601, 611, 701, 711 of the negative and positive plates 60, 61, 70, 71 inserted into the foot slots 51 of the battery casing 50 (this figure only shows, by way of illustration, the case in which the bottom plate connector 701 of the positive plate 70 is inserted into the foot slot 51). The foot slot height “A” is more than 7 mm, the welding depth B of the positive electrode combining strap 73 is 2-3 mm, when the insertion is done, and the foot slot 51 is filled with epoxy resin or acid solution. The epoxy resin is filled in the space 511 between the foot slot 51 and the plate connector 701 to avoid acid drop off from the positive plate 70, and to eliminate the possibility of lack-acid on the plate, while the filled-up acid solution maintains the adequate “acid remains” between the battery casing 50 and the electrode plates so as to provide a good charging recoverability and to prolong the battery operating life.
  • As is further shown in FIGS. 12, 13 and [0033] 14, the battery casing 52 may be of another different structural design, in which the bottom of the battery casing 52 is installed with a protruding support post 521. Hence, when the negative and positive plates 60, 61, 62, 70, 71, 72 are respectively installed into the battery casing 52, the support post 521 can support the bottoms of the negative and positive plates to improve positioning of the negative and positive plates, and lengthen the battery operating life.
  • As is further shown in FIG. 15, which is a schematic diagram of another [0034] battery casing 53 and the negative and positive plates 64,74, the bottom of each cell compartment 531 of the battery casing 53 may be installed with negative and positive electrode combining straps 80, 81, and several “V” shaped slots 801, 811 provided on the straps for insertion of the plate connectors 640, 740 at the bottom of the negative and positive plates 64, 74. Further, the negative and positive plates 64, 74 are separated by the separators 101, while the negative and positive electrode combining straps 80, 81 are made of electric conductive or non-conductive materials, and can be independently inserted into the battery casing 53, or can be integrally manufactured, such as by plastic injection methods, with the battery casing 53. In addition, the negative and positive terminal posts 641, 741 on the tops of the negative and positive plates 64, 74 in different cell compartments 531 are series combined with an electrically conducting foil 90 for passing electric current.
  • As is further shown in FIG. 16, the [0035] series combining strap 81 is first installed at the bottom of the large cell compartment 541 in another battery casing 54. The middle of the series combining strap 82 is provided with an insert slot 821 for insertion of a separator 542, and the large cell compartment 541 is divided into two smaller cell compartments 543. Furthermore, two sides of the middle insert slot 821 of the series combining strap 82 are further installed with several insert slots 822, 823 for insertion of the bottom plate connectors 650, 750 of the negative and positive plates 65, 75. The series combining strap 82 is made of conductive material and has the effect of series combining the negative and positive plates 65, 75. Of course, the negative and positive terminal posts 651, 751 at the tops of the negative and positive plates 65, 75 are also series combined by an electric conducting foil 91.
  • Furthermore, as is shown in FIG. 17, to allow for electric conduction between the two independent separated negative and positive [0036] series combining straps 83, 84, the bottom of the battery casing 55 can be installed with a slot 551 for introducing the electric conducting foil 85, which connects the negative and positive series combining straps 83, 84. In addition, the series combining straps 83, 84 are also respectively installed with slots 831, 841 for insertion of the bottom plate connectors 660, 760 of the negative and positive plates 66, 76, and of course, the respective top plate connectors 661, 761 of the negative and positive plates 66, 76 are also series combined using an electric conducting foil 92.
  • Finally, it is further shown in FIG. 18 that, for a single cell battery, the tops and bottoms of the negative and [0037] positive plates 60, 70 of the battery casing 50 are extended to provide power output terminals 110,120, and the extended terminals 110, 120 at the tops and bottoms of the electrode plates 60, 70 having the same polarity are all arranged in positive to positive and negative to negative combinations to supply power. For a multiple cell battery, the polarities of the negative and positive plates 60, 70 between the cells are mutually series combined, and the top and bottom terminal posts of the said negative and positive electrode plates 60, 70 are all extended to provide a pair of positive and negative power output terminals 1100, 1200. The two terminals 1100, 1200 provide positive to positive and negative to negative combinations to supply power simultaneously to reduce the internal resistance of the electrode plates.
  • The achievable effects and advantages of the invention are further described as follows: [0038]
  • 1. Regarding the improved structures of the battery electrode plates: [0039]
  • (i) In the invention, the bottoms of the negative and [0040] positive plates 30, 33, 36, 40, 43, 46 are respectively series combined through series combining straps 31, 34, 38, 41, 44, 48 made of non-conductive or conductive materials, so that the bottoms of the aforesaid plates are positively positioned, the more integrated positioning effect of the electrode plates having the effect of avoiding resonant vibrations to reduce drop-offs of the chemically-active materials or expanded growth, resulting in greater battery efficiency and the advantage of prolonging the battery operating life.
  • (ii) When the [0041] series combining straps 31, 34, 38, 41, 44, 48 are made of electric conductive material, in addition to better electrode plate positioning, the electric conduction uniformity of the electrode plates is improved, and thus not only the internal resistance of the aforesaid electrode plates can be reduced, but the effect and advantage of increasing the battery discharge capacity also can be obtained. 2. Regarding the improved combining structure between the battery electrode plates and the battery casing:
  • (i) In the invention, besides merely series combining the bottoms of the negative and positive plates through the series combining straps to improve positioning, the bottom side of the [0042] battery casing 50 can be also installed with foot slots 51 for inserting the plate connectors 601, 611, 701, 711 of the negative and positive plates 60, 61, 70, 71 and the series combining straps 63, 67, to further improve positioning of the bottoms of the negative and positive plates 60, 61, 62, 70, 71, 72. Furthermore, the foot slots 51 can be filled in with epoxy resin or acid solution to retain adequate “acid remnants” in the battery casing 50, thereby providing the effect and advantage of maintaining good charging recoverability of the battery.
  • (ii) In the invention, the bottom of the [0043] battery casing 52 can also be installed with a protruding support post 521 to support the aforesaid negative and positive plates and thereby improve the positioning effect of the aforesaid electrode plates and prolong the operating life of the battery. 3. When the series combining straps 63, 73 are made of electric conductive material, besides improving the positioning effect of the negative and positive plates 60, 61, 62, 70, 71, 72, the internal resistance of the aforesaid electrode plates can be also reduced, and furthermore, the effect and advantage of increasing battery discharging capacity are obtained. 4. In the invention, the bottoms of the battery casings 53, 54, 55 can be directly series combined with the series combining straps 80, 81, 82, 83, and inserting slots 801, 811, 822, 823, 833, 834 can be further installed on the series combining straps for insertion of the negative and positive plates 64, 74, 65, 75, 66, 76, thereby improving positioning of the aforesaid electrode plates, and providing the effect and advantage of increasing the battery operating life. 5. When the series combining straps 80, 81, 82, 83 are made of electric conductive material, besides improving positioning of the negative and positive plates 64, 74, 65, 75, 66, 76, internal resistance of the aforesaid electrode plates is also reduced, thereby obtaining the effect and advantage of increasing the battery discharging capacity.
  • The above disclosed illustrations are only two examples of the invention. Any equivalent modifications or changes that might occur to those familiar with the art of the invention also are intended to be included within the scope of the invention. [0044]

Claims (16)

What is claimed is:
1. An improved structures of the battery electrode plates, wherein it is comprised of at least a positive plate, and at least two negative plates to consitute the negative and positive electrode plate groups, whereof the bottoms of the said plates are series combined by the series combining straps made of non-conductive material to provide bottom positioning of the said plates.
2. The improved structure on the battery electrode plates as in claim 1, wherein the bottoms of the electrode plates are series combined by the series combining straps made of electric conductive material, whereby to provide bottom of plate positioning and to promote the uniformity of the electric conduction on the electrode plates.
3. The improved structure on the battery electrode plates as in claims 1 or 2, wherein it can be selected that the bottoms of the positive plates are series combined while the bottoms of the negative plates are not series combined.
4. The improved structure on the battery electrode plates as in claims 1 or 2, wherein it can be selected that the bottoms of the positive plates and the bottoms of the negative plates are all series combined.
5. The improved structure on the battery electrode plates as in claims 1 or 2, wherein it can be selected that the bottoms of the negative plates are series combined while the bottoms of the positive plates are not series combined.
6. An improve combining structure between a kind of battery electrode plates and the battery casing, wherein it is characterized in: the bottoms of the said negative and positive plates are positioned at the bottom of the battery casting.
7. The improved combining structure between the battery electrode plates and the battery casing as in claim 6, wherein the bottom of the said negative and positive plates can be series combined by the electric conductive or non-conductive materials.
8. The improved combining structure between the battery electrode plates and one battery casing as in claim 6, wherein the bottom of the said battery casing is installed with at least one foot slot for insertion of the bottom plate connector of the electrode plate.
9. The improved combining structure between the battery electrode plates and the battery casing as in claim 6, wherein the bottom of the said battery casing is installed with a support post protruding upward to support the electrode plate for positioning.
10. The improved combining structure between the battery electrode plates and the battery casing as in claim 6, wherein the bottom of the said battery casing can be an integrated structure of electric conductive or non-conductive material.
11. The improved combining structure between the battery electrode plates and the battery casing as in claim 8, wherein the foot slots are filled in with epoxy resin or acid solution to fill the space between the slots and the plate connector, whereby the filled-up epoxy resin can prevent acid drop-off from the electrode plate, while filled-up acid solution can maintain the adequate “acid remains” between the battery casing and the electrode plate, thereby to have a better charging recoverability.
12. The improved combining structure between the battery electrode plates and the battery casing as in claims 1 or 6, wherein plate connectors can be in pairs to be formed at two diagonal corners of the electrode plate.
13. The improved combining structure between the battery electrode plates and the battery casing as in claims 1 or 6, wherein plate connectors can be in pairs to be formed at the top and bottom of the electrode plate at the same side.
14. The improved combining structure between the battery electrode plates and the battery casing as in claims 1 or 6, wherein the electrode plate can have only one plate connector.
15. The improved combining structure between the battery electrode plates and the battery casing as in claims 1 or 6, wherein for a single cell compartment battery, the top and bottom of the said negative and positive plates can be installed with extended power output terminals, and the top and bottom power output terminal of the electrode plates of the same polarities are in positive to positive, negative to negative combination to supply power.
16. The improved combining structure between the battery electrode plates and the battery casing as in claim 6, wherein for the battery of multiple cell compartments, the negative and positive polarities between the cell compartments are mutually series combined, whereof the tops and bottoms of the said negative and positive plates are all installed with extended a pair of positive and negative power output terminals, while the pairs of power output terminals are in positive to positive and negative to negative combinations to supply power.
US09/759,532 1999-04-30 2001-01-16 Structure for positioning electrode plates in a battery casing Abandoned US20020015882A1 (en)

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
EP99303429A EP1049185A1 (en) 1999-04-30 1999-04-30 Connecting structure between battery electrode plates and casing

Related Parent Applications (1)

Application Number Title Priority Date Filing Date
US09/137,304 Division US6174619B1 (en) 1999-04-30 1998-08-21 Structure for positioning electrode plates in a battery casing

Publications (1)

Publication Number Publication Date
US20020015882A1 true US20020015882A1 (en) 2002-02-07

Family

ID=50237863

Family Applications (2)

Application Number Title Priority Date Filing Date
US09/137,304 Expired - Lifetime US6174619B1 (en) 1999-04-30 1998-08-21 Structure for positioning electrode plates in a battery casing
US09/759,532 Abandoned US20020015882A1 (en) 1999-04-30 2001-01-16 Structure for positioning electrode plates in a battery casing

Family Applications Before (1)

Application Number Title Priority Date Filing Date
US09/137,304 Expired - Lifetime US6174619B1 (en) 1999-04-30 1998-08-21 Structure for positioning electrode plates in a battery casing

Country Status (8)

Country Link
US (2) US6174619B1 (en)
EP (1) EP1049185A1 (en)
JP (2) JP2000090905A (en)
AU (1) AU774019B2 (en)
BR (1) BR9904505A (en)
CA (1) CA2270746A1 (en)
MY (1) MY125640A (en)
ZA (1) ZA993415B (en)

Cited By (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20070009790A1 (en) * 2005-07-05 2007-01-11 Vutetakis David G Lightweight connectors for lead-acid storage batteries
CN102637914A (en) * 2012-05-18 2012-08-15 刘登喜 Method for producing starting battery by using waste lead-acid storage batteries
US20170010692A1 (en) * 2015-07-06 2017-01-12 RideOn Ltd. Augmented reality system and method
WO2018027109A1 (en) * 2016-08-05 2018-02-08 Pledge Petroleum Corp. Plasma pulse device for shock wave stimulation of wells, deposits, and boreholes
CN113764794A (en) * 2021-06-04 2021-12-07 广州倬粤电能科技有限公司 Novel horizontal structure battery case
US11261004B2 (en) 2019-04-10 2022-03-01 Ohkita Seisakusyo Metal case
US11742552B1 (en) * 2020-01-03 2023-08-29 Wisk Aero Llc Hybrid battery interconnects

Families Citing this family (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6555265B1 (en) * 2000-04-06 2003-04-29 Hawker Energy Products, Inc. Value regulated lead acid battery
JP3698320B2 (en) * 2002-06-03 2005-09-21 日産自動車株式会社 Assembled battery
JP5737214B2 (en) * 2012-03-09 2015-06-17 株式会社豊田自動織機 Power storage device and vehicle

Family Cites Families (17)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US813582A (en) 1903-09-21 1906-02-27 Rhode Island Electromobile Company Electric storage battery.
US1362554A (en) * 1919-11-20 1920-12-14 Balzano James Storage battery
US2470163A (en) * 1943-11-12 1949-05-17 Electric Storage Battery Co Plate support for electric accumulators
US2511943A (en) * 1946-07-23 1950-06-20 Reed Battery Corp Storage battery
FR1392265A (en) * 1963-05-20 1965-03-12 Ford France Electric accumulator
US3518127A (en) 1967-12-26 1970-06-30 Electric Fuel Propulsion Inc Floor interconnecting battery cells
DE2356465C3 (en) * 1973-11-12 1981-08-27 Varta Batterie Ag, 3000 Hannover Accumulator cell for vehicle batteries
JPS547295Y2 (en) * 1974-05-11 1979-04-06
JPS55100667U (en) * 1979-01-08 1980-07-12
JPS55155070U (en) * 1979-04-24 1980-11-08
JPS5941571Y2 (en) * 1979-09-29 1984-11-30 新神戸電機株式会社 lead acid battery
JPS58362U (en) * 1981-06-25 1983-01-05 株式会社ユアサコーポレーション Earthquake-resistant storage battery
SE445276B (en) * 1981-12-28 1986-06-09 Tudor Ab BLYACK CUMULATOR WITH BOTTLE CONNECTION
JPS60131773A (en) * 1983-12-20 1985-07-13 Matsushita Electric Ind Co Ltd Sealed lead acid battery
JPS644063U (en) * 1987-06-29 1989-01-11
US5001024A (en) * 1989-10-31 1991-03-19 Eberle William J Storage battery and method of manufacturing
US4983475A (en) * 1990-02-13 1991-01-08 Delans Darwin D Bar for connecting together two plate straps of the same polarity on an electrochemical battery

Cited By (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20070009790A1 (en) * 2005-07-05 2007-01-11 Vutetakis David G Lightweight connectors for lead-acid storage batteries
US7635537B2 (en) 2005-07-05 2009-12-22 Concorde Battery Corporation Lead-acid storage batteries with lightweight connectors
CN102637914A (en) * 2012-05-18 2012-08-15 刘登喜 Method for producing starting battery by using waste lead-acid storage batteries
US20170010692A1 (en) * 2015-07-06 2017-01-12 RideOn Ltd. Augmented reality system and method
WO2018027109A1 (en) * 2016-08-05 2018-02-08 Pledge Petroleum Corp. Plasma pulse device for shock wave stimulation of wells, deposits, and boreholes
US11261004B2 (en) 2019-04-10 2022-03-01 Ohkita Seisakusyo Metal case
US11742552B1 (en) * 2020-01-03 2023-08-29 Wisk Aero Llc Hybrid battery interconnects
CN113764794A (en) * 2021-06-04 2021-12-07 广州倬粤电能科技有限公司 Novel horizontal structure battery case

Also Published As

Publication number Publication date
JP2000090905A (en) 2000-03-31
BR9904505A (en) 2001-01-16
JP3057691U (en) 1999-06-02
CA2270746A1 (en) 2000-10-29
MY125640A (en) 2006-08-30
AU774019B2 (en) 2004-06-10
AU2600899A (en) 2000-11-02
ZA993415B (en) 2000-01-26
EP1049185A1 (en) 2000-11-02
US6174619B1 (en) 2001-01-16

Similar Documents

Publication Publication Date Title
US5424148A (en) High performance battery cast-on strap
US5582936A (en) Lead-acid batteries with optimum current collection at grid lugs
KR101977454B1 (en) Battery Pack
US6174619B1 (en) Structure for positioning electrode plates in a battery casing
CN107210415A (en) Battery module busbar connection component
US3650833A (en) Multicell storage battery
RU2233014C2 (en) Composite structure for storage-battery cell
JP4538864B2 (en) Lead acid battery and manufacturing method thereof
CN114730968A (en) Battery module provided with rail-mounted socket and battery pack comprising same
KR102577098B1 (en) Bettery module
CN114566722B (en) Long-life lead-acid storage battery and preparation method thereof
CN1148816C (en) Improved structure for battery plate group and joint of battery tank
CN1236192A (en) Combining device for battery pole plates and battery jar
CN210866405U (en) Lead-acid battery
EP0406466B1 (en) Storage battery
CN218887362U (en) Battery, battery pack, and vehicle
KR20000074458A (en) The improved combining structure between the battery electrode plates and the battery case
JP2002075325A (en) Small control valve type lead-acid battery
US20230291016A1 (en) Lead acid battery separator and lead acid battery
MXPA99004806A (en) Improved combination structure between battery electrode plates and the battery box
KR930015168A (en) Chemical Cells and Batteries with New Grid, Strap, and Intercell Welding Array
JP6497460B2 (en) Lead acid battery
JP2002222639A (en) Monoblock battery case for storage battery, and storage battery using the same
CN116235343A (en) Battery pack and vehicle comprising same
JPH0515031B2 (en)

Legal Events

Date Code Title Description
STCB Information on status: application discontinuation

Free format text: ABANDONED -- FAILURE TO RESPOND TO AN OFFICE ACTION