ุจุทุงุฑูุฉ ุฐุงุช ูุซุงูุฉ ุทุงูุฉ ุนุงููุฉ
ุจุงุณุชุฎุฏุงู ู ูุงุฏ ู ุชุทูุฑุฉ ูุชุตู ูู ููููู ู ุชูุฏู ุ ุชูุนุฏ ุณุนุฉ ุชุฎุฒูู ุงูุทุงูุฉ ููู ูุญุฏุฉ ุญุฌู /ูุฒู ุฑุงุฆุฏุฉ ูู ุงูุตูุงุนุฉ. ููู ู ูุงุณุจุฉ ุจุดูู ุฎุงุต ููุชุทุจููุงุช ุฐุงุช ู ุชุทูุจุงุช ุงูุชุญู ู ุงูุตุนุจุฉุ ู ุซู ุงูุทุงุฆุฑุงุช ุจุฏูู ุทูุงุฑ ูุงูู ุฑูุจุงุช ุงูููุฑุจุงุฆูุฉุ ู ู ุง ูููุฑ ุชุดุบูููุง ุทููู ุงูุฃู ุฏ ููู ุนุฏุงุช.
ยท 320Wh/kg high energy density for extended flight time
ยท Semi-solid NMC-based energy platform for high-voltage UAV integration
ยท 18S1P 66.6V 31000mAh LiHV platform with 6900g pack weight
ยท 10C discharge for stable cruising and endurance-focused drone output
ยท Cycle life โฅ500 with operating temperature range of -20~60โ
ยท 350Wh/kg high energy density for extended flight time
ยท Semi-solid NMC-based energy platform for high-voltage UAV integration
ยท 14S1P 53.2V 33000mAh LiHV platform with 5520g pack weight
ยท 10C discharge for stable cruising and endurance-focused drone output
ยท Cycle life โฅ100 with operating temperature range of -20~60โ
ยท 320Wh/kg high energy density for extended flight time
ยท Semi-solid NMC-based energy platform for lightweight UAV integration
ยท 6S1P 22.2V 22000mAh platform with only 1720g pack weight
ยท 10C discharge for stable cruising and endurance-focused drone output
ยท Cycle life โฅ500 with operating temperature range of -20~60โ
ยท 400Wh/kg ultra-high energy density for extended flight time
ยท Semi-solid NMC-based energy platform for lightweight UAV integration
ยท 12S1P 43.8V 39000mAh LiHV platform with only 4800g pack weight
ยท 8C discharge for stable cruising and endurance-focused drone output
ยท Cycle life โฅ400 with operating temperature range of -20~60โ
ยท 400Wh/kg ultra-high energy density for lighter heavy-duty UAV integration
ยท 18S1P 65.7V high-voltage platform for heavy payload and lifting drone systems
ยท 45000mAh large-capacity reserve with stable 8C discharge output
ยท Net weight only 8400g for better payload-to-battery efficiency
ยท Cycle life โฅ400 with operating temperature range of -20~60โ
ยท 400Wh/kg ultra-high energy density for lighter heavy-duty UAV integration
ยท Semi-solid NMC-based energy platform for advanced drone power systems
ยท 14S1P 51.1V 45000mAh platform with only 6500g pack weight
ยท 5C discharge for stable loaded UAV output
ยท Cycle life โฅ400 with operating temperature range of -20~60โ
ยท 400Wh/kg ultra-high energy density for lighter heavy-payload UAV integration
ยท Semi-solid NMC-based energy platform for advanced drone power systems
ยท 12S1P 43.8V 45000mAh platform with only 5500g pack weight
ยท 8C discharge for stable loaded UAV output
ยท Cycle life โฅ400 with operating temperature range of -20~60โ
ุงูุชุทุจููุงุช
Ultra-high energy density batteries enable continuous surveillance missions exceeding 48 hours at high altitudes.
Lightweight, high-capacity batteries support heavy-load air transport missions of up to 50kg payloads.
Aviation-grade energy density meets the vertical takeoff and landing power demands of next-generation flying vehicles.
High specific energy batteries reduce system weight, enhancing agility and movement efficiency in robotic locomotion.
Pressure-resistant, high-density battery packs ensure long-duration operations in deep-sea environments.
Aerospace-grade safety batteries deliver reliable power under extreme space conditions, supporting long-term orbital missions.
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Explore Herewin Factory: The Source of Quality
Founded in 2019, Shenzhen Jarwin Time Technology Co., Ltd. is backed by a founding and operational team with over 20 years of extensive experience in the battery industry. It specializes in developing and producing high-performance lithium-ion polymer batteries.
Gain a comprehensive insight into who we are and what we stand for. By exploring the meticulous precision of our
production lines, the efficient management of our factories, and the genuine feedback from our satisfied customers,
youโll see how we ensure excellence at every step of the process
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Production Flow of Semi-solid State Battery
Active materials, conductive agents, and binders are uniformly dispersed in solvent to form electrode slurry.
Homogenized slurry is coated onto aluminum foil and dried to form electrode sheets.
Coated electrodes are compressed to specified thickness under controlled pressure.
Post-calendering electrodes undergo vacuum drying to remove residual moisture.
Electrode sheets are precision-cut to required dimensions.
Anodes, cathodes, and separators are stacked in “Z” configuration to form cell cores.
Multi-layer electrode tabs are aligned, ultrasonic-welded, and insulated with adhesive tape.
Cell cores are housed in pre-formed aluminum laminate pouches with top/seal side sealing.
Final moisture removal from assembled cells prior to electrolyte filling.
Precise injection of electrolyte solution into dry cells.
Initial closure of electrolyte injection port.
Electrochemical activation to establish Solid Electrolyte Interphase (SEI) layer on anode.
Gas pocket removal and hermetic terminal sealing.
Charge-discharge cycling for capacity measurement and performance binning.
Validates capacity, impedance, and safety (e.g., overcharge, short-circuit) under strict protocols.
Integrates cells into modules or packs with BMS, wiring, and thermal management systems.
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Testing Process
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FAQs
They perform more reliably than liquid cells in both high and low temperature environments, making them suitable for applications such as drones, energy storage, or electric vehicles in harsh climates.
While not yet as fast as the fastest liquid lithium-ion options, semi-solid-state batteries support efficient charging speeds suitable for daily quick-charge needs.
Semi-solid-state battery technology has entered early-stage commercialization. Some devices already incorporate them, although the manufacturing process and cost optimization are still ongoing.
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