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. Насупрот томе, 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, силицијумске плочице, 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.
How to choose between continuous and batch PV pyrolysis technology?
One of the most common questions that customers ask when learning about our решење пројекта пиролизе соларних панела is: “Is your equipment continuous or batch? Which is better?” In fact, both processes have their respective applications, and the choice depends on the scale of treatment, operational frequency, and investment budget.

The batch pyrolysis process features a simple structure and flexible operation, which is especially suitable for treating small-to-medium scale or multi-type modules. It operates through a process sequence of loading, heating, пиролиза, cooling, and discharging, with each batch completed independently.
Its process adaptability is strong, and it can flexibly adjust the temperature curve for different component materials. Тхе цена машине за рециклажу соларних панела is relatively low, and maintenance and cleaning are also quite convenient. Given that the intermittent pyrolysis process still has room for further optimization in terms of production capacity and energy consumption, you can choose to enhance overall efficiency and energy performance through complementary equipment.

The continuous pyrolysis process achieves uninterrupted operation through the continuous feeding and discharge of materials, which is suitable for large-scale and industrial production. Its primary advantage lies in 24 hour continuous production capability. High thermal energy utilization efficiency enables synergistic operation with waste heat recovery systems to reduce energy consumption, while advanced automation levels minimize labor requirements.
У исто време, this process demands higher construction investment and material feeding uniformity, and the commissioning period is longer. Стога, we will fully plan and optimize during the design and implementation phases.
How to Select the Optimal Photovoltaic Panel Pyrolysis Solution Based on Production Capacity and Investment?
YUSHUNXIN has been developing ПВ технологија рециклаже for many years and possesses mature управљање рециклирањем соларних панела.
Controlled thermal delamination
Use when laminate release requires a controlled thermal duty integrated with gas treatment and solid separation.
Долазни материјал
Module construction, encapsulant, контаминација, feed preparation and operating continuity.
Очекивани резултати
Thermally released and classified material fractions; condensable/non-condensable streams remain project-specific.
Интерфејси пројекта
Reactor/tunnel duty, secondary combustion, gas cleaning, cooling, заштита од пожара, monitoring and residues.
Користите само ред који одговара изабраној граници процеса.
| Референца каталога | Капацитет | Повер | Физички омотач | Укључена граница |
|---|---|---|---|---|
| YSX-TK500Tunnel thermal | 500 кг/х | 116.65 кВ | 65 × 13 × 7.5 m | Continuous tunnel thermal line |
| YSX-TK1000Tunnel thermal | 1,000 кг/х | 126.65 кВ | 72 × 13 × 7.5 m | Continuous tunnel thermal line |
| YSX-TK2000Tunnel thermal | 2,000 кг/х | 136.65 кВ | 80 × 13 × 7.5 m | Continuous tunnel thermal line |
| YSX-PF5Batch thermal | 5 т/дан | 140.45 кВ | 46 × 33 × 7.5 m | Mixed-module batch thermal line |
| YSX-PF16Batch thermal | 16 т/дан | 142.45 кВ | 40 × 26 × 7.5 m | Mixed-module batch thermal line |
| YSX-8000Earlier integrated thermal | 8 т/дан | Configuration controlled | 50 × 30 × 8 m | Earlier thermal project reference; reactor Φ2200 × 6000 × 20 мм |
| YSX-16000Earlier integrated thermal | 16 т/дан | Configuration controlled | 60 × 30 × 8 m | Earlier thermal project reference; reactor Φ2800 × 6600 × 18 мм |
Правило конфигурације: каталошки капацитет је референца за планирање. Стабилан проток, инсталирана/радна снага, отисак стопала, опоравак, чистота, емисије и потражња за комуналије захтевају одобрену листу опреме, репрезентативни материјал и писани услови прихватања.
Потребне информације пре конфигурације и понуде
- Фотографије репрезентативног материјала, спецификације и расположиви узорак.
- Потребан капацитет плус сати по смени, смене по дану и радни дани.
- Циљни резултати, метода узорковања и захтеви пријемника у низводном току.
- Држава сајта, расположива снага, гориво, воде, компримовани ваздух и границе зграде.
- Локално окружење, ватра, захтеви за складиштење и безбедност на раду.
- Тражена граница испоруке: опреме, распоред, инсталација, пуштање у рад и обуку.



