In recent years, with the rapid popularity of new energy vehicles, energy storage systems, and smart devices, the demand for lithium batteries has experienced explosive growth. Шул арала, a large number of retired batteries are entering the recycling process. The decade from 2020 тиклем 2030 will be a key period for lithium battery recycling technology from the beginning to maturity.

What role will recycled materials play in the global supply chain by 2030?

By 2030, the cumulative volume of retired lithium batteries worldwide will exceed 12 million tons, several times the amount in 2020.

Currently, global lithium resources primarily rely on mining ore and salt lakes, but these sources are concentrated and costly. By 2030, recycled lithium will account for 15%–20% of global supply. YUSHUNXIN’s high-purity sorting and fine grinding equipment can increase the lithium recovery rate in black powder by approximately 10%.

The widespread adoption of high-nickel ternary materials has driven rapid growth in nickel demand. By 2030, recycled nickel will meet 25%–30% of demand. We introduce automatic grading systems into lithium battery recycling solutions, which effectively reduce metal contamination and enhance the purity of nickel and cobalt separation.

Most cobalt deposits occur in a limited number of regions, posing high supply risks. By 2030, recycled cobalt is projected to account for 35%–40% of the battery industry’s demand. YUSHUNXIN hydrometallurgical equipment achieves cobalt recovery rates exceeding 95% through optimal leaching and extraction processes.

How Will Lithium Battery Recycling Technology Evolve from 2020 тиклем 2030?

Lithium battery recycling technology primarily follows three approaches: mechanical recycling, pyrolytic treatment, and hydrometallurgy.

Can different types of batteries have the same recycling process?

There are numerous types of lithium batteries, such as ternary (NCM/NCA), литий тимер фосфаты (LFP), lithium manganese oxide, and lithium titanate. Different battery systems have distinct requirements for recycling processes.

Ternary batteries contain a higher proportion of nickel, кобальт, and manganese, which have the highest recycling value. Lithium recycling plant commonly apply a mechanical–pyrolysis–hydrometallurgical process to efficiently extract nickel, кобальт, manganese, and lithium salts. It can also automatically adjust the wet leaching formula based on the proportions of ternary materials, realizing efficient separation and purification.

Due to the absence of precious metals like cobalt and nickel, their metal value is relatively low. Әммә, given their vast quantities, recycling is significant for material reuse. был EV батареяларын ҡайтанан эшкәртергә проект хәл итеү enable efficient separation, which allows the direct reprocessing of cathode powder and conductive agents into raw materials for iron phosphate. The equipment features a simple structure and low energy consumption, which is suitable for the large-scale processing of retired LFP batteries.

These batteries feature stable structures but lower metal value, and traditional hydrometallurgical recycling processes have long investment payback periods. For this category of batteries, we offer a pyrolysis-sorting recycling solution. By optimizing the pyrolysis atmosphere and powder classification, we can efficiently extract manganese salts or titanium-based materials for use in the chemical or ceramics industries.

different types of batteries

In the 2025 time point, the lithium battery recycling technology is transitioning from its exploratory phase to a critical stage of intelligent development. The accumulated experience over the past five years has gradually clarified the technological approach. Accordingly, the synergistic application of mechanical recycling, pyrolysis treatment, and hydrometallurgy has become a trend in development. As a professional manufacturer of lithium battery recycling equipment, we can also provide you with other lithium battery recycling solutions. Such as йәшел утилләштереү өсөн ҡарарҙар аҙағында-ғүмер EV батареялары һәм lithium battery disposal in France. Welcome to contact us!

КАТАЛОГ-ТИҘӘЛЕШТЕРЕЛГӘН ИНЖЕНЕРЛЫК НИГЕҘҘӘРЕ

Technology and interface planning

Compare pretreatment, conditioning and separation architectures using current material evidence, not universal performance claims.

01

Килгән материал .

Battery evolution, chemistry share, cell-to-pack architecture and receiver requirements.

02

Көтөлгән һөҙөмтәләр

Route-specific fractions and evidence plan.

03

Проект интерфейстары

Safety case, process control, emissions, residue, utilities and downstream qualification.

МОДЕЛЬ ҺӘМ КҮЛӘМ РЕГИСТРЫ

Һайланған процесс сигенә тап килгән рәтте генә ҡулланығыҙ.

Каталог белешмәһеҺыйымлыҡКөсФизик конвертҠушылған сик
YSX public familyPublic equipment family500–1,000 kg/h102–238 kW20–35 m line; 7.5–19.5 tStandard equipment-family envelope; no per-model allocation
YSX-LR500LR complete line500 кг/сәғ.320 кВт40 × 15 × 7.5 mConditioning, separation and gas-treatment line
YSX-LR1000LR complete line1,000 кг/сәғ.410 кВт45 × 17 × 7.5 mConditioning, separation and gas-treatment line
Project reference - 500Earlier integrated layout500 кг/сәғ.300 кВт60 × 7 × 7 mEarlier layout without a published model label
Project reference - 1000Earlier integrated layout1,000 кг/сәғ.349 кВт80 × 7 × 7 mEarlier layout without a published model label

Конфигурациялау ҡағиҙәһе: каталог һыйҙырышлылығы планлаштырыу белешмәһе булып тора. Тотороҡло үткәреүсәнлек, ҡуйылған/эшләү ҡөҙрәте, аяҡ эҙе, тергеҙелеү, сафлыҡ, эмиссия һәм коммуналь хеҙмәттәргә ихтыяж раҫланған ҡорамалдар исемлеген талап итә, вәкиллекле материал һәм яҙма ҡабул итеү шарттары.

Конфигурация һәм котировка алдынан кәрәкле мәғлүмәт

  1. Вәкиллекле материал фотоһүрәттәре, техник характеристикалар һәм бар өлгө.
  2. Кәрәкле ҡеүәт плюс сәғәт сменаһына, Тәүлегенә 2 смена һәм эш көндәре.
  3. Маҡсатлы һөҙөмтәләр, Һайлау ысулы һәм аҫҡы ағымдағы ҡабул итеүсе талаптар.
  4. Сайт иле, булған ҡеүәт, яғыулыҡ, һыу, ҡыҫылған һауа һәм бина сиктәре.
  5. Урындағы экологик, ут, һаҡлау һәм хеҙмәт хәүефһеҙлеге талаптары.
  6. Һоралған тапшырыу сиге: йыһазландырыу, ойоштороу, ҡуйыу, файҙаланыуға тапшырыу һәм уҡытыу.