With the rapid development of the global photovoltaic industry, the number of retired modules continues to increase. Traditional chemical processing methods suffer from issues such as secondary pollution and low efficiency. In contrast, PV pyrolysis technology is becoming the top choice due to its advantages of non-corrosive operation, low emissions, and high-value recovery. The pyrolysis process involves controlling temperature, atmosphere, and heating rate to decompose and volatilize the encapsulation film. Thus, it is easy to remove glass, wafers silikon, and metal wires in order to achieve resource recovery.

Do different encapsulation films have the same pyrolysis temperature?

Photovoltaic modules have various encapsulation film types, such as EVA, POE, and PVB in common. They play a crucial role in photovoltaic encapsulation by providing adhesion, waterproofing, and UV protection, while also being the most challenging component to remove during the solar panel recycling. In PV pyrolysis technology, the pyrolysis temperature relates to the type and thickness of the adhesive film as well as the laminate structure.

different encapsulation films
different structure of encapsulation film
EVA Film

Ethylene-vinyl acetate copolymer is currently the most widely used encapsulation material. Its pyrolysis initiation temperature is typically around 350°C, with a decomposition range of approximately 350–500°C. Pyrolysis releases small amounts of acetic acid and organic volatiles, so the temperature control and tail gas purification are critical.

POE film uses polyolefin as its base material, and its thermal stability is higher than that of EVA. Its decomposition temperature typically ranges between 420–550°C, and the pyrolysis rate is relatively gentle which is more suitable for continuous processes. POE components leave minimal colloidal residue at high temperatures, and the wafer surface remains cleaner.

PVB Film

It is mainly for double-glass modules and has low heat resistance, which usually begins to decompose at 280–420°C. PVB has a low softening point, which allows for low-energy removal through a combination of thermal softening and pyrolysis.

Certain new modules employ multi-layer encapsulation with a broader pyrolysis temperature range, which requires segmental heating. The initial heating stage removes the binder, while the subsequent stage completely decomposes organic matter.

How to choose between continuous and batch PV pyrolysis technology?

One of the most common questions that customers ask when learning about our solusi proyék pyrolysis panel surya is: “Is your equipment continuous or batch? Which is better?" Kanyataanna, both processes have their respective applications, and the choice depends on the scale of treatment, operational frequency, and investment budget.

How to Select the Optimal Photovoltaic Panel Pyrolysis Solution Based on Production Capacity and Investment?

YUSHUNXIN has been developing PV recycling technology for many years and possesses mature manajemén daur ulang panel surya.

Choosing YUSHUNXIN means choosing a more efficient, eco-friendly, and cost-effective photovoltaic pyrolysis solution. Whether you’re in the initial planning stages or preparing to launch your project, feel free to contact our team. We’ll be happy to provide you with professional technical consultation.

Dasar rékayasa katalog-aligned

Controlled thermal delamination

Use when laminate release requires a controlled thermal duty integrated with gas treatment and solid separation.

01

Matéri asup

Module construction, encapsulant, contamination, feed preparation and operating continuity.

02

outputs ekspektasi

Thermally released and classified material fractions; condensable/non-condensable streams remain project-specific.

03

panganteur proyék

Reactor/tunnel duty, secondary combustion, gas cleaning, cooling, fire protection, monitoring and residues.

MODEL jeung wengkuan ngadaptar

Paké ngan baris cocog wates prosés nu dipilih.

Rujukan katalogKapasitasKakuatanamplop fisikKaasup wates
YSX-TK500Tunnel thermal500 kg/h116.65 kW65 × 13 × 7.5 mContinuous tunnel thermal line
YSX-TK1000Tunnel thermal1,000 kg/h126.65 kW72 × 13 × 7.5 mContinuous tunnel thermal line
YSX-TK2000Tunnel thermal2,000 kg/h136.65 kW80 × 13 × 7.5 mContinuous tunnel thermal line
YSX-PF5Batch thermal5 t/dinten140.45 kW46 × 33 × 7.5 mMixed-module batch thermal line
YSX-PF16Batch thermal16 t/dinten142.45 kW40 × 26 × 7.5 mMixed-module batch thermal line
YSX-8000Earlier integrated thermal8 t/dintenConfiguration controlled50 × 30 × 8 mEarlier thermal project reference; reactor Φ2200 × 6000 × 20 mm
YSX-16000Earlier integrated thermal16 t/dintenConfiguration controlled60 × 30 × 8 mEarlier thermal project reference; reactor Φ2800 × 6600 × 18 mm

Aturan konfigurasi: kapasitas katalog mangrupakeun rujukan tata. throughput stabil, dipasang / kakuatan operasi, tapak suku, pamulihan, kasucian, émisi jeung paménta utiliti merlukeun daptar parabot disatujuan, bahan perwakilan jeung kaayaan ditampa tinulis.

Inpormasi anu diperyogikeun sateuacan konfigurasi sareng petik

  1. Poto bahan wawakil, spésifikasi jeung sampel sadia.
  2. Kapasitas diperlukeun tambah jam per shift, shifts per poé sarta poé operasi.
  3. Target outputs, métode sampling jeung syarat panarima hilir.
  4. Nagara situs, kakuatan sadia, suluh, cai, hawa dikomprés sarta wates wangunan.
  5. Lingkungan lokal, seuneu, panyimpen sareng syarat kaamanan-kerja.
  6. Dipénta wates pangiriman: parabot, perenah, pamasangan, commissioning jeung latihan.