| Oxidation temperature | About 760–870°C (1,400–1,600°F) | Temperature supports the thermal oxidation of many volatile organic compounds (VOCs). | Confirm the required set point for the actual compounds, concentration, and applicable permit conditions. |
| Residence time | About 0.5–1 second at the specified oxidation conditions | Provides time for the polluted gas to contact the hot oxidation zone. | Ask how residence time is defined and whether it accounts for chamber temperature, flow, and mixing. |
| Heat recovery | Many regenerative designs are specified at approximately 95% or higher thermal recovery; actual performance varies. | Ceramic media transfers heat from treated exhaust to incoming process gas, reducing auxiliary fuel demand. | Compare guaranteed thermal efficiency under the same flow, temperature, and operating conditions. |
| VOC destruction performance | Often designed for at least 95% destruction; higher guarantees may be available for specific applications. | Performance depends on the complete system and the compounds being treated, not temperature alone. | Review the vendor’s guarantee, test method, inlet conditions, and treatment of startup and shutdown periods. |
| Inlet flow rate | Determine from the process; specify normal, minimum, and maximum flow. | Flow affects equipment sizing, residence time, pressure drop, and valve or fan requirements. | Include operating variability, simultaneous process lines, and any future capacity needs. |
| VOC concentration and composition | Measure concentration and identify individual compounds where possible. | Fuel use, oxidation behavior, emissions, and material compatibility depend on the waste-gas mixture. | Check for halogenated compounds, sulfur-containing compounds, particulates, aerosols, and condensable materials. |
| Supplemental fuel demand | Application-dependent; influenced by inlet temperature, VOC heat content, flow, and heat recovery. | Fuel demand affects operating cost and may change substantially with production conditions. | Request estimates for typical and worst-case operation, including startup and low-VOC periods. |
| Pressure drop and fan capacity | System-specific; obtain a stated pressure-drop value at the design flow. | The fan must overcome resistance through ductwork, ceramic beds, valves, and other equipment. | Compare clean and expected operating conditions, and confirm fan capacity and motor requirements. |
| Safety and process controls | Designed for the site’s process hazards and applicable codes. | Combustible mixtures, temperature excursions, and process interruptions require appropriate safeguards. | Review interlocks, purge sequence, flame supervision where applicable, monitoring, and emergency shutdown logic. |
| Emissions monitoring and compliance | Requirements depend on the permit and local regulations. | Operating limits and monitoring obligations can affect controls, instrumentation, and recordkeeping. | Confirm permit-specific limits, monitoring points, testing requirements, and reporting needs before equipment selection. |