Secondary aggregate battery with spatial separation of operation temperatures
11495846 ยท 2022-11-08
Inventors
Cpc classification
H01M50/569
ELECTRICITY
H02J7/0014
ELECTRICITY
H01M2010/4271
ELECTRICITY
H01M10/425
ELECTRICITY
H01M10/653
ELECTRICITY
H01M10/48
ELECTRICITY
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
H01M50/574
ELECTRICITY
H01M10/482
ELECTRICITY
H01M10/6551
ELECTRICITY
H01M50/20
ELECTRICITY
International classification
H01M10/6551
ELECTRICITY
H01M50/20
ELECTRICITY
H01M10/48
ELECTRICITY
H01M10/46
ELECTRICITY
H01M10/653
ELECTRICITY
H02J7/00
ELECTRICITY
Abstract
A secondary aggregate battery with spatial separation of operation temperatures is provided, including: a housing, wherein a plurality of secondary battery packs and a charge balancing system connected to the secondary battery packs are disposed in the housing. The charge balancing system includes a battery state detection unit and a heat dissipation component. The housing includes a heat dissipation chamber and an accommodation chamber separated by a partition. The heat dissipation chamber accommodates the heat dissipation component, and the accommodation chamber accommodates the secondary battery packs and the battery state detection unit such that the temperature of the heat dissipation component is isolated by the independent chamber to prevent the operation temperature of the heat dissipation component affects the normal operation of the secondary battery packs.
Claims
1. A secondary aggregate battery with spatial separation of operation temperatures, comprising: a housing, wherein at least one secondary battery pack and a charge balancing system are disposed in said housing, said charge balancing system comprising at least one battery state detection unit and at least one heat dissipation component electrically connected thereto, and said heat dissipation component being configured to dissipate corresponding overcharge energy of said secondary battery pack, which is characterized in that: said housing comprises a heat dissipation chamber and an accommodation chamber separated by a partition, said heat dissipation component being fixedly disposed in said heat dissipation chamber, said secondary battery pack and said battery state detection unit being disposed in said accommodation chamber, said battery state detection unit and said secondary battery pack being electrically connected, said battery state detection unit and said secondary battery pack corresponding thereto being electrically connected into a module form, and said battery state detection unit detecting a state of said secondary battery pack corresponding thereto in the same module to control charge/discharge of said secondary battery pack; hereby, said heat dissipation chamber and said accommodation chamber in said housing isolate said heat dissipation component with a relatively high operation temperature from said battery state detection unit and said secondary battery pack that have to maintain a relatively low operation temperature, and said battery state detection unit respectively detects the potential of said secondary battery pack corresponding thereto to control said secondary battery pack to discharge electric energy to said heat dissipation component.
2. The secondary aggregate battery with spatial separation of operation temperatures according to claim 1, further comprising at least one connector set comprising a first connector and a second connector, wherein said first connector is electrically connected to said battery state detection unit, said second connector is electrically connected to said heat dissipation component, and said first connector is detachably coupled to said second connector.
3. The secondary aggregate battery with spatial separation of operation temperatures according to claim 1, wherein a heat sink is further provided in said housing, said heat sink being made of a metal material and being combined with said heat dissipation component to be accommodated in said heat dissipation chamber in said housing.
4. A secondary aggregate battery with spatial separation of operation temperatures, comprising: a housing, wherein a heat sink, at least one secondary battery pack and a charge balancing system are disposed in said housing, said heat sink being made of a metal material, said charge balancing system comprising at least one battery state detection unit and at least one heat dissipation component electrically connected thereto, and said heat dissipation component being configured to dissipate overcharge energy of said secondary battery pack, which is characterized in that: said housing comprises a heat dissipation chamber and an accommodation chamber separated by a partition, said heat sink and said heat dissipation component being fixedly disposed in said heat dissipation chamber, said secondary battery pack and said battery state detection unit being disposed in said accommodation chamber, said battery state detection unit and said secondary battery pack being electrically connected, said battery state detection unit and said secondary battery pack corresponding thereto being electrically connected into a module form, and said battery state detection unit detecting a state of said secondary battery pack corresponding thereto in the same module to control charge/discharge of said secondary battery pack, said battery state detection unit comprising a detection unit, a comparison unit and a control unit being electrically connected, said detection unit being configured to detect the potential of said secondary battery pack, said comparison unit being provided with a pre-determined range value, and said control unit being configured to control discharge of said secondary battery pack being electrically connected thereto; hereby, said heat dissipation chamber and said accommodation chamber in said housing isolate said heat dissipation component with a relatively high operation temperature from said battery state detection unit and said secondary battery pack that have to maintain a relatively low operation temperature, said battery state detection unit independently detects the potential of said secondary battery pack, said comparison unit compares said pre-determined range value to the detected potential, and said control unit controls said secondary battery pack to discharge electric energy to said heat dissipation component when the potential of said secondary battery pack exceeds said pre-determined range value.
5. The secondary aggregate battery with spatial separation of operation temperatures according to claim 4, further comprising at least one connector set comprising a first connector and a second connector, wherein said first connector is electrically connected to said battery state detection unit, said second connector is electrically connected to said heat dissipation component, and said first connector is detachably coupled to said second connector.
6. The secondary aggregate battery with spatial separation of operation temperatures according to claim 4, wherein said secondary battery pack is connected to a main control unit and comprises a temperature switch, said temperature switch being attached onto said heat sink, said temperature switch being provided with a threshold value, said temperature switch being controllably connected to said main control unit, and said temperature switch being configured to detect a temperature such that said temperature switch controls said main control unit to turn off when said temperature exceeds said threshold value.
7. The secondary aggregate battery with spatial separation of operation temperatures according to claim 4, wherein said battery state detection unit further comprises a protection switch, said comparison unit being provided with a limit value such that said protection switch controls said secondary battery pack corresponding thereto to become an open circuit when the potential of said secondary battery pack reaches said limit value.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
(9) The present invention provides a secondary aggregate battery with spatial separation of operation temperatures. In the first embodiment, as shown in
(10) A heat sink 20 is fixedly disposed in the heat dissipation chamber 11, and the heat sink 20 is made of a metal material.
(11) At least one secondary battery pack 30 is disposed in the accommodation chamber 12. In the present embodiment, the secondary battery pack 30 includes a plurality of secondary batteries.
(12) A charge balancing system 40 includes at least one battery state detection unit 41 and at least one heat dissipation component 42. The battery state detection unit 41 is disposed in the accommodation chamber 12. The battery state detection unit 41 is electrically connected to the secondary battery pack 30 corresponding thereto. The battery state detection unit 41 and the secondary battery pack 30 corresponding thereto are electrically connected into a module form. The battery state detection unit 41 detects a state of the secondary battery pack 30 corresponding thereto in the same module so as to facilitate detecting the integrity of the secondary battery pack 30 for rapid maintenance or replacement. The battery state detection unit 41 detects the voltage of the secondary battery pack 30 to control charge/discharge of the secondary battery pack 30 to maintain a normal operation temperature that is lower than the operation temperature of the heat dissipation component 42. The heat dissipation component 42 is fixedly disposed in the heat dissipation chamber 11. The battery state detection unit 41 is electrically connected to the heat dissipation component 42. The heat dissipation component 42 is configured to dissipate the overcharge energy of the secondary battery pack 30. The heat dissipation component 42 is accommodated in the heat dissipation chamber 11 and operates at a relatively high operation temperature with respect to the secondary battery pack 30. However, the thermal isolation between the heat dissipation chamber 11 and the accommodation chamber 12 reliably avoids the interaction of the operation temperatures. The number of the battery state detection unit 41 and the number of the heat dissipation component 42 may vary according to the capacity and the load of the secondary battery.
(13) At least one connector set 50 includes a first connector 51 and a second connector 52. The first connector 51 is electrically connected to the corresponding battery state detection unit 41. The second connector 52 is electrically connected to the corresponding heat dissipation component 42. The first connector 51 is detachably coupled to the second connector 52.
(14) Thereby, the battery state detection unit 41 independently detects the potential of the corresponding secondary battery pack 30, and controls the corresponding secondary battery pack 30 to discharge the electrical energy to the heat dissipation component 42 electrically connected thereto.
(15) The second embodiment of the present invention will be described herein. Before the detailed description is made, it is noted that, in the following description, similar elements are denoted by the same reference numerals, as shown in
(16) A housing 10 has an open concave space therein, and a partition 10A is provided along an opening to the bottom of the inner space of the housing 10 to divide the inner space of the housing 10 into a heat dissipation chamber 11 and an accommodation chamber 12, which are two heat insulations separated from each other and each has a concave space.
(17) A heat sink 20 is fixedly disposed in the heat dissipation chamber 11, and the heat sink 20 is made of a metal material.
(18) At least one secondary battery pack 30 is disposed in the accommodation chamber 12.
(19) A charge balancing system 60 includes at least one battery state detection unit 61 and at least one heat dissipation component 62. The battery state detection unit 61 is disposed in the accommodation chamber 12. The battery state detection unit 61 is electrically connected to the secondary battery pack 30 corresponding thereto. The battery state detection unit 61 and the secondary battery pack 30 corresponding thereto are electrically connected into a module form. The battery state detection unit 61 detects a state of the secondary battery pack 30 corresponding thereto in the same module so as to facilitate detecting the integrity of the secondary battery pack 30 for rapid maintenance or replacement. The battery state detection unit 61 includes a detection unit 611, a comparison unit 612 and a control unit 613 being electrically connected. The detection unit 611 is configured to detect the potential of the secondary battery pack 30. The comparing unit 612 is provided with a pre-determined range value. The control unit 613 is configured to control discharge of the secondary battery pack 30. The heat dissipation component 62 is fixedly disposed in the heat dissipation chamber 11. The battery state detection unit 61 is electrically connected to the heat dissipation component 62. The heat dissipation component 62 is configured to dissipate the overcharge energy of the secondary battery pack 30.
(20) At least one connector set 50 includes a first connector 51 and a second connector 52. The first connector 51 is electrically connected to the corresponding battery state detection unit 61. The second connector 52 is electrically connected to the corresponding heat dissipation component 62. The first connector 51 is detachably coupled to the second connector 52.
(21) Thereby, the detection unit 611 detects the potential of the corresponding secondary battery pack 30, the comparing unit 612 compares the detected potential to the pre-determined range value, and the control unit 613 controls the secondary battery pack 30 to discharge the electric energy to the heat dissipation component 62 when the potential of the secondary battery pack 30 exceeds the pre-determined range value.
(22) In a first preferred implementation according to a second embodiment of the present invention, as shown in
(23) In a second preferred implementation according to a second embodiment of the present invention, as shown in
(24) In both of the foregoing embodiments, the components having different operation temperatures are isolated by the spatial isolation between the heat dissipation chamber 11 and the accommodation chamber 12 in the housing 10. In other words, the heat dissipation component 62 having a relatively high operation temperature is effectively isolated from the battery state detection unit 61 and the secondary battery pack 30 that have to maintain a relatively low operation temperature to ensure that the battery state detection unit 61 and the secondary battery pack 30 can operate in the accommodation chamber 12 at normal operation temperatures without being affected by the relatively high operation temperature in the heat dissipation chamber 11. In addition, the secondary battery pack 30 and the battery state detection unit 61 can be repaired and replaced by module to improve the efficiency and safety of the maintenance of the secondary battery pack.