The Glass CHP · CHP

Flow temperature

Ventilation/dehumidification — the silent 24/7 load, with heat recovery. Part of the glass family — like our glass BESS, biogas plant and CHP.

Flow temperature
Outdoor air Fresh air Heat recovery Heating coil Hall Exhaust
Glass-box in 4 steps

Understand → See it live → What the AI does → Your benefit

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Understand
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See it live
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What the AI does
Your benefit

What is flow temperature?

Flow temperature typically 80–90 °C; the heat output depends on the difference between flow and return temperatures — excessively high flow temperature stresses customer systems, too low reduces the usable heat turnover.

The system — right now

connect… · anonymous reference plant · read-only from the process control system, calculated in-house Flow … °C Return … °C Buffer top … °C Buffer bottom … °C Excerpt from … measured values of the plant. To the detailed explanation page with video →

What the AI reads from these values

What the AI reads
  • Compliance with the operating window (typically 80–90 °C) to avoid material fatigue
  • Monitoring of the temperature difference to calculate the actual heat turnover
  • Early warning of overheating, which leads to damage to the components of the customer system
  • Optimization of efficiency, as temperatures that are too low reduce the usable heat turnover
Scenario

Monitored: continuous

The scenario: if the temperature difference decreases, the CHP unit extracts less heat, resulting in lower overall efficiency and cogeneration benefit. The AI: detects the shrinking temperature difference early, before the amount of heat drops significantly. It identifies the trend before the limit value is reached.

Why this matters

A stable flow temperature ensures maximum heat turnover and prevents costly damage to end-user components. Precise monitoring enables accurate billing of the delivered thermal energy. Furthermore, adhering to the target range extends the service life of the CHP unit components. Heating water flow rate (m³/h) · Flow/return difference (K) → — kW thermal Calculation path: flow rate × temperature difference × 1.16 kWh/(m³·K) (water)

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