Thermodynamic system with distributed functional continuity

The all-electric thermodynamic system with THERMOFLUX-A ECO MAX fluid and AI control addresses refrigeration continuity and efficiency, thermal stability, and reduces environmental risks in cold rooms.

FR3168953A1Pending Publication Date: 2026-05-29ARCHIDIACONO PHILIPPE

Patent Information

Authority / Receiving Office
FR · FR
Patent Type
Applications
Current Assignee / Owner
ARCHIDIACONO PHILIPPE
Filing Date
2026-01-22
Publication Date
2026-05-29

AI Technical Summary

Technical Problem

Existing refrigeration systems in industrial, food, and pharmaceutical cold rooms face challenges in ensuring uninterrupted refrigeration continuity, energy efficiency, thermal stability, and component lifespan, while also posing environmental and health risks due to conventional fluids.

Method used

An all-electric thermodynamic system using THERMOFLUX-A ECO MAX fluid in a secondary circuit, controlled by AI, optimizes energy efficiency and thermal stability, and reduces environmental impact.

Benefits of technology

The system ensures uninterrupted refrigeration, enhances thermal stability, extends component lifespan, and minimizes environmental and health risks through AI-controlled energy optimization.

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Abstract

An all-electric thermodynamic system comprising a secondary circuit using exclusively a thermally optimized fluid and an artificial intelligence module. The invention improves the thermal stability of stored products and the lifespan of the outdoor unit.
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Description

Title of the invention: Thermodynamic system with distributed functional continuity technical field

[0001] The present invention falls within the field of thermodynamic systems for refrigeration production and thermal regulation, and relates more particularly to industrial, food or pharmaceutical cold rooms, using a thermally optimized secondary fluid and artificial intelligence to ensure uninterrupted refrigeration continuity. General description of the invention

[0002] The invention relates to an all-electric thermodynamic system comprising a main thermodynamic circuit located outside the refrigerated volume and a separate secondary circuit using exclusively the THERMOFLUX-A ECO MAX fluid circulating within the cold room. The system is controlled by an artificial intelligence module configured to coordinate the operation of the outdoor unit and the secondary fluid in order to optimize energy efficiency, the thermal stability of the stored products, and the lifespan of the components. Ecological and energy-efficient formulation

[0003] THERMOFLUX-A ECO MAX is formulated to exhibit high thermal conductivity, long-lasting chemical stability, low degradation over time, and compatibility with standard materials. Its proprietary secondary fluid architecture helps to limit environmental and health risks while reducing the overall energy load of the system. Principles of calculation and energy optimization

[0004] The actual performance coefficient is defined by the following relationship:

[0005] COP = Utility / Electrical Power

[0006] The system implements a global optimization function:

[0007] Fopt = a-COP + [3-Sstab - y-Frost - ô-Ccycle

[0008] where Sstab represents a thermal stability indicator of stored products, Frost an indicator of frost formation and Ccycle an indicator of thermomechanical cycles, the coefficients a, [3, y and ô being dynamically adjusted by learning.

Claims

Demands

1. All-electric thermodynamic refrigeration production system, in particular for cold rooms, comprising a main thermodynamic circuit and a separate secondary circuit using exclusively a thermally optimized fluid such as THERMOFLUX-A ECO MAX circulating in the cold room, said system comprising an intelligent control module configured to ensure uninterrupted distributed refrigeration continuity.

2. System according to claim 1, wherein the control module implements artificial intelligence configured to dynamically optimize the operation of the outdoor unit and the THERMOFLUX-A ECO MAX fluid.

3. System according to any one of the preceding claims, wherein the external group is controlled as an active energy optimization and longevity component.

4. System according to any one of the preceding claims, wherein the THERMOFLUX-A ECO MAX fluid has a variable thermal inertia adjusted in real time.

5. System according to any one of the preceding claims, comprising a three-dimensional thermal mapping of the cold room.

6. System according to any one of the preceding claims, wherein frost formation is anticipated and limited by continuous adjustment of the THERMOFLUX-A ECO MAX fluid.

7. System according to any one of the preceding claims, comprising a local control with display, probes and sensors representative of the state of the stored products.

8. System according to any one of the preceding claims, comprising a hierarchical intelligent communication and alarm module.

9. System according to any one of the preceding claims, wherein the system operates in multi-objective optimization taking into account energy efficiency, thermal stability and component lifespan.

10. Method of operating a system according to any one of the preceding claims.