Do not treat a reactor name or daily capacity as a complete project specification.
Izejvielas, preparation, operating continuity, condensation, gas safety, product handling, vides kontrole, utilities and local delivery scope must be configured together.
Approved small-scale reference
YSX-F1 to YSX-F5 denote 1, 2, 3, 4 un 5 t/day skid or modular planning references for tire, plastic or oily-sludge trials.
Material balance
Oil, gāze, solids and metal-bearing outputs require representative feedstock, stable-run data and an agreed sampling boundary.
Commercial boundary
Prices, operating costs, product value and return require dated quotations and local market evidence.
Source control: approved YOTO group product register. Final parameters are issued on the project-specific technical agreement.
Rubber-rich feedstocks can change the condensable-liquid and solid fractions, but no fixed yield is stated before feedstock analysis and a stable-run test.
What are the primary products of the waste tire pyrolysis system?
Pyrolysis is a chemical process in which organic matter undergoes thermal decomposition through high-temperature heating at 400–600°C in an oxygen-deficient environment. The waste tire pyrolysis process differs entirely from traditional incineration, because it does not produce toxic gases, which is a truly eco-friendly treatment technology. For passenger car tires, this process breaks down the long-chain polymers in rubber into the following products.
Is Pyrolysis Oil the Future Alternative to Industrial Fuel?
Energy supply has become increasingly unstable in recent years. Tā rezultātā, alternative fuels are gaining more attention in industrial applications.
Tire pyrolysis produces fuel oil that can be used as a substitute for industrial diesel, heavy oil, and furnace fuel. In many regions, it is widely used in cement plants, steel factories, and boilers.
From a waste tire to oil project perspective, this creates a stable downstream market. As fossil fuel supply becomes tighter, the demand for pyrolysis oil continues to grow. Turklāt, pyrolysis oil provides a more sustainable and eco-friendly ways to turn tires into fuel, helping industries reduce dependence on traditional energy sources.
What Is the Real Cost of a Tire Pyrolysis Plant by Daily Capacity?
The tyre pyrolysis plant cost varies based on capacity, konfigurācija, and automation level. Below is a typical price reference for different project scales.
Sagatavošana, reactor route, condensation, gas safety, solids handling, environmental controls and local delivery scope must be quoted together.
From Plan to Profit: A Tire Pyrolysis Project in Malaysia
In a waste tire pyrolysis plant in Malaysia, the client planned a waste tire to oil project with a capacity of 15–20 tons/day. The main goal was to balance tire pyrolysis plant cost, land use, and long-term profitability.
The final reactor architecture and layout must be selected from feedstock preparation, operating continuity, maintenance access, oil and gas safety, solids handling and the confirmed site boundary.
The tire pyrolysis production line now runs stably with continuous feeding and discharge. The client benefits from stable oil output, reduced labor cost, and improved overall efficiency. This project demonstrates how proper tire pyrolysis equipment selection and layout design can significantly improve both land use and profitability.
The project boundary can include feed preparation, sealed feeding, continuous thermal conversion, vapor cleaning and condensation, non-condensable gas reuse, solid discharge and recovered carbon handling.

Follow the material, vapor, liquid, gas and solid paths
The reactor is one part of the line. Commercial operability depends on how each stream is prepared, transferred, controlled and discharged.
- 01Material characterization
- 02Feed preparation and sealed transfer
- 03Controlled thermal conversion
- 04Vapor separation and staged condensation
- 05Non-condensable gas safety and reuse
- 06Solid cooling, discharge and product handling
Configuration questions that change the proposal
The following points should be resolved before selecting a capacity or preparing a commercial quotation.
Steel and textile control
Whole tires, cut tires and tire-derived fuel impose different shredding, wire separation and feeding requirements.
Carbon and dust handling
Solid discharge, cooling and enclosed transfer must be designed to prevent hot spots, dust release and downstream blockage.
Recovered oil use
Storage, filtration and any intended fuel or refining route must be evaluated under the local product and environmental framework.
Gas safety
Pressure control, water sealing or equivalent safeguards, flame monitoring and emergency isolation belong in the system scope.
Make utilities and product outlets visible before investment
A useful feasibility review connects the mass balance, energy balance, operating schedule and local product route.
Operating schedule
Define planned hours per day, shutdown windows, cleaning strategy, labor model and feedstock storage capacity.
Energy integration
Evaluate non-condensable gas reuse, startup fuel, electrical loads, cooling demand and optional downstream energy use as one balance.
Quality control
Set sampling points for incoming material, condensate fractions, recovered solids, wastewater and exhaust gas.
Commercial boundary
Budgetary results remain conditional until the feedstock, vietne, product route and local compliance requirements are confirmed.
See the connected equipment boundary.
Reference visuals support early layout discussion. Final equipment, arrangement and interfaces are confirmed from the project material and site.
Translate project facts into an equipment list.
This reference matrix shows the decision logic. Final quantities, models and interfaces belong in the approved project proposal.
| System block | Typical scope | Configuration basis |
|---|---|---|
| Tire preparation | Whole-tire feeding or shredding, steel control and buffer storage | Tire format, contamination and operating continuity |
| Sealed conversion | Metered feeding, reactor, heating and emergency isolation | Rubber composition and planned duty |
| Oil and gas | Vapor cleaning, staged condensation, gas safety and storage | Water, sulfur, solids and intended liquid route |
| Recovered carbon | Sealed cooling, steel separation, sizing and enclosed handling | Buyer specification and dust-control basis |
| Vides sistēmas | Combustion, particulate control, wastewater and monitoring points | Local permit and acceptance boundary |
Advance the project only when the required evidence is available.
Each gate turns customer information into a defined technical or commercial output for the next decision.
Feedstock evidence
Document tire format, steel, contamination, storage and available volume.
IzvadeQualified tire-feed basisProduct routes
Confirm lawful outlets and test methods for liquid, gāze, carbon and steel.
IzvadeOutput qualification registerSite and permits
Define utilities, fire controls, emissions, wastewater and residue boundary.
IzvadeSite-readiness and compliance listConfiguration review
Translate verified facts into equipment, interfaces and exclusions.
IzvadeTraceable technical proposal basisQuestions to resolve before configuration.
Answers define the engineering boundary; they do not replace representative material testing or local compliance review.
What determines the continuous pyrolysis equipment list?
Feedstock form, sastāvu, mitrums, contamination, planned operating schedule, recovered-product route, site utilities and permit requirements determine the configuration.
Can tires, plastics and oily sludge use exactly the same line?
Nē. They may share thermal-conversion principles, but their preparation, feeding, corrosion, condensation, solid handling and environmental controls differ materially.
Can recovered oil performance be guaranteed from a general material description?
Nē. Representative analysis and an agreed sampling method are required before recovered-liquid quantity, quality or downstream use can be evaluated.
What should be included in acceptance testing?
Define feedstock, run duration, mass balance, operating stability, sampled outputs, komunālie pakalpojumi, safety interlocks and the applicable emissions or residue tests.
Define the material before selecting the equipment.
Share a representative material description, available volume, site status and target outputs. YUSHUNXIN will use those facts to prepare the relevant process boundary and configuration discussion.









