a battery
A battery and conductive layer technology, applied in the direction of battery electrodes, secondary batteries, circuits, etc., can solve problems such as the inability to effectively prevent the short circuit of lithium-ion batteries, the inability to guarantee the continued operation of the battery, and the inability of the battery to continue to work, so as to improve work stability Performance and service life, guaranteed rate performance, and the effect of reducing short-circuit current
- Summary
- Abstract
- Description
- Claims
- Application Information
AI Technical Summary
Problems solved by technology
Method used
Image
Examples
Embodiment
[0081] 1. Preparation of positive electrode current collector:
[0082] Select an insulating layer of a certain thickness, and form a conductive layer of a certain thickness on its surface by vacuum evaporation, mechanical rolling or bonding, and a protective layer by vapor deposition, in-situ formation or coating.
[0083] 1.1 Formation of conductive layer
[0084] There are several ways to form the conductive layer:
[0085] (1) The formation conditions of the vacuum evaporation method of the conductive layer are as follows: the insulating layer that has been cleaned on the surface is placed in a vacuum coating room, and the high-purity metal wire in the metal evaporation room is melted and evaporated at a high temperature of 1600 ° C to 2000 ° C. After evaporation, The metal passes through the cooling system in the vacuum plating room, and finally deposits on the surface of the insulating layer to form a conductive layer.
[0086] (2) The formation conditions of the condu...
experiment example
[0120] 1. Battery test method:
[0121] Carry out cycle life test on lithium-ion battery, the specific test method is as follows:
[0122] Charge and discharge the lithium-ion battery at two temperatures of 25°C and 45°C, that is, first charge to 4.2V with a current of 1C, and then discharge to 2.8V with a current of 1C, and record the discharge capacity of the first week; Then the battery was subjected to a 1C / 1C charge-discharge cycle for 1000 cycles, and the battery discharge capacity of the 1000th cycle was recorded, and the discharge capacity of the 1000th cycle was divided by the discharge capacity of the first cycle to obtain the capacity retention rate of the 1000th cycle.
[0123] The experimental results are shown in Table 4.
[0124] 2. Experimental methods and test methods for one nail piercing experiment and six consecutive nail piercing experiments:
[0125] (1) One-time nail-piercing experiment: After the battery is fully charged, fix it, and at room temperatu...
PUM
Property | Measurement | Unit |
---|---|---|
thickness | aaaaa | aaaaa |
thickness | aaaaa | aaaaa |
thickness | aaaaa | aaaaa |
Abstract
Description
Claims
Application Information
- R&D Engineer
- R&D Manager
- IP Professional
- Industry Leading Data Capabilities
- Powerful AI technology
- Patent DNA Extraction
Browse by: Latest US Patents, China's latest patents, Technical Efficacy Thesaurus, Application Domain, Technology Topic, Popular Technical Reports.
© 2024 PatSnap. All rights reserved.Legal|Privacy policy|Modern Slavery Act Transparency Statement|Sitemap|About US| Contact US: help@patsnap.com