Commercial and industrial energy storage
Commercial and Industrial Energy Storage
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Home Energy Storage
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Drones
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Telecom Backup Power
Low-Speed Electric Vehicles
Low-Speed Electric Vehicles
Compact RV Travel
RV Power
forklift
Forklift Truck
Lead To Lithium Conversion
Lead To Lithium Conversion

LiPo(Lithium Polymer)

A lithium-ion battery using polymer electrolyte, characterized by ultra-thin and lightweight properties. Supports customized shape designs with excellent energy density, widely used in portable devices like consumer electronics and drones.

Battery-Cells-1
Semi-solid State Cell F99103310H

Model: 3.2V 31Ah LFP

Maximum Continuous Discharge: 0.5C

Maximum Continuous Charge: 0.5C

Cycle Life: ≥4000 times

Cell Weight: ~580g

emi-solid State Cell F80166246
Semi-solid State Cell F80166246

Model: 3.2V 30Ah LFP

Maximum Continuous Discharge: 0.5C

Maximum Continuous Charge: 0.5C

Cycle Life: ≥2000 times

Cell Weight: ~585g

semi-solid-state-cell-t12105212k
Semi-solid State Cell T12105212K

Model: 3.7V 45Ah Ternary

Maximum Continuous Discharge: 5C

Maximum Continuous Charge: 1C

Cycle Life: ≥800 times

Cell Weight: ~550g

Semi-solid State Cell T1190190E
Semi-solid State Cell T1090190E

Model: 3.7V 35Ah Ternary

Maximum Continuous Discharge: 5C

Maximum Continuous Charge: 1C

Cycle Life: ≥800 times

Cell Weight: ~405g

Semi-solid State Cell P11120270SH

Model: 3.8V 40Ah Cobalt+Ternary

Maximum Continuous Discharge: 20C

Maximum Continuous Charge: 5C

Cycle Life: ≥1000 times

Cell Weight: ~765g

Semi-solid State Cell P1090190SH

Model: 3.8V 20Ah Cobalt+Ternary

Maximum Continuous Discharge: 20C

Maximum Continuous Charge: 4C

Cycle Life: ≥600 times

Cell Weight: ~380g

F14215325 3.2V 100Ah LFP

Maximum continuous discharge: 0.5C

Maximum continuous charging: 0.5C

Cycle life: ≥ 1500 times

Cell weight:~1850g

F13167242 3.2V 50Ah LFP

Maximum continuous discharge: 0.5C

Maximum continuous charging: 0.5C

Cycle life: ≥ 2000 times

Cell weight:~940g

Applications

Agricultural Spraying Drone
Agricultural Spraying Drone

Engineered for long-endurance missions, precise spraying power, and adaptability to complex farmland environments.

Aerial Photography Drone
Aerial Photography Drone

Ultra-thin, high-energy batteries enable lightweight designs and extended flight durations.

Food Delivery Cart
Food Delivery Cart

Tailored for high-frequency delivery, challenging road conditions, and compact structural integration.

Golf Course Vehicle
Golf Course Vehicle

Long-lifespan batteries support reliable, all-day operations across expansive golf course terrains.

DeWatermark
Portable Power Station

High-density cells deliver stable outdoor mobile power for off-grid use.

AGV Transport Robot
AGV Transport Robot

Customizable battery shapes adapt to various vehicle configurations for seamless integration.

FREE DESIGN

Customized exclusive battery plans! Professional engineers plan battery programs one-on-one.

Maximize Drone Effect with Our Tailored Battery Solutions

EES-Propose-Requests
Propose Requests
Customized-Solution
Customized Solutions
End-to-End-Controlled-Production-Testing
End-to-End Controlled Production & Testing
Warehouse-and-shipped-out
Warehouse and shipped out

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,
you’ll see how we ensure excellence at every step of the process

Different Services For Clients With Different Patterns

FOR OFFLINE CLIENTS

Flexible Delivery Time

Reliable delivery schedules and warehousing support.

High Cost-Effectiveness

Competitive pricing to maximize overall value.

Wide Product Selection

Diverse options to cater to all market segments.

FOR ONLINE CLIENTS

Low MOQ

Flexible MOQ with mixed product options.

Custom Logo

Personalized logo customization for small batches.

One-Stop Marketing Package

Provide quality images, videos to enhance sales revenue.

FOR BRAND CLIENTS

Exclusive Regional Rights

Provide all of herewin's resources and capabilities

R&D Resources

Custom sample within 7 days with R&D capabilities.

Fast Delivery

Efficient production and ship within 25 days at the fastest.

Production Flow of Battery Cells

Mixing​
Step 1 :Mixing​

Blends active materials, binders, and solvents into a uniform slurry to ensure consistent electrochemical performance.

Coating
Step 2 :Coating

Spreads the slurry onto metal foils (anode/cathode) with precise thickness control for optimal energy density.

Drying
Step 3 :Drying

Removes solvents from coated electrodes to stabilize material adhesion and prevent cracking.

Coating&Winding
Step 4 :Coating & Winding

Combines anode/cathode layers with separators and winds them into a compact jellyroll structure.

Pressuring Film
Step 5 :Pressuring Film

Compresses electrodes to enhance density and conductivity while maintaining porosity for ion flow.

Making Film​
Step 6 :Making Film​

Trims electrodes into precise dimensions to fit battery cell specifications.

Stacking
Step 7 :Stacking

Aligns anode/separator/cathode layers in a Z-fold pattern to maximize space efficiency.

Welding
Step 8 :Welding

Joins electrode tabs using laser welding to minimize resistance and ensure current stability.

Encapsulation​
Step 9 :Encapsulation​

Seals cells in aluminum-plastic film to protect against moisture, dust, and mechanical stress.

Baking
Step 10 :Baking

Removes residual moisture from cells under vacuum to prevent electrolyte degradation.

Injection
Step 11 :Injection

Fills electrolyte into cells to enable ion transport between electrodes.

Charging
Step 12 :Charging

Activates cells with initial charging to form a stable solid-electrolyte interface (SEI).

Extracting Air​
Step 13 :Extracting Air​

Evacuates gas from cells to eliminate air pockets and ensure full electrolyte penetration.

Charging and Discharging​
Step 14 :Charging and Discharging​

Cycles cells to stabilize performance and screen out defects before final assembly.

Testing
Step 15 :Testing

Validates capacity, impedance, and safety (e.g., overcharge, short-circuit) under strict protocols.

Assembling​
Step 16 :Assembling​

Integrates cells into modules or packs with BMS, wiring, and thermal management systems.

LEARN MORE DETAIL

Learn more about production details and manufacturing process

Testing Process

Fair&Certification

Certifications are herewin’s greatest strength.
Meets the needs of all markets, and the source factories are fully certified to ensure quality.

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GET IN TOUCH

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Related category

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FAQs

What is a battery cell?

A battery cell is the core unit of a battery—responsible for storing and releasing energy. It’s the smallest energy module inside battery packs and is widely used in phones, EVs, power banks, and more.

What are the main types of battery cells?

By chemistry: lithium-ion (e.g. NMC, LFP), nickel-metal hydride, etc.
By shape: cylindrical, prismatic, pouch.
Each type suits different needs—LFP is safer; NMC has higher energy density.

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