INESC TEC
INESC TEC
INESC TEC
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Zypho 4.0

INESC TEC

About Project

The energy consumption of buildings in Europe corresponds to approximately 40% of total energy consumption, with heating and cooling of buildings being the largest source of energy demand in Europe. On the other hand, about 75% of existing buildings, public and private, have an energy performance below the requirements of the Energy Performance of Buildings Directive (EPBD - 2018/844 / EU). Taking that into account, the potential for rationalizing energy consumption in buildings is very large, and it is estimated that more than 50% of consumption can be reduced through energy efficiency measures. It is in this context that the consortium of ZYPHO 4.0 project intends to respond to a set of critical factors and failures identified in the market and to develop an innovative, modular and eco-efficient system for the recovery and storage of thermal energy (which allows to bridge the gap between recovery and reuse of residual heat) in service buildings, incorporating automation and control systems, and computerized energy management tools that permit monitoring the performance of thermal energy recovery and storage technologies to be developed, as well as supporting the integrated management of production and consumption of thermal energy through predictive control algorithms, artificial intelligence (AI) and machine learning that enable the constant optimization of the process and facilitate decision making by the user. The objectives of the energy management component will be operationalized through an IoT - Internet of Things - platform that will, in addition to other features, facilitate the scaling of the use of thermal energy, according to several parameters, among which, for example, thermal energy available in the storage system and the evaluation of the availability of the solar resource (in the case of buildings with installed solar thermal system), promoting the reduction of operational costs
Acronym

Zypho 4.0

Responsible

Paulo Jorge Rocha e Silva Sá Marques

Status

Closed

Start

January 1, 2021

End

January 30, 2023

Effective End

January 30, 2023

Global Budget

€634,328.00

Financing

€164,451.00

Website

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Associated Centres

Robotics in Industry and Intelligent Systems

At the Centre for Robotics and Intelligent Systems, we develop innovative solutions to leverage robotics in the industrial, agricultural, and forestry contexts, driving the digital transformation of the industry. We take a practical approach - from design to deployment - to test the navigation and localisation of mobile robots, explore advances in 2D/3D industrial vision and advanced detection, while also focusing on industrial and collaborative robotics, as well as human-robot interfaces. Our TRIBE LAB is fertile ground for innovative ideas about the agriculture of the future; we develop prototypes and promote excellence in agricultural robotics and IoT technology: with prototypes, advanced sensors (LiDAR, AI cameras), and rapid prototyping tools, we accelerate the development of solutions for the agroforestry sector. We are also present at the iiLab, where we combine applied research, technological demonstration, and controlled environment testing, promoting the integration of emerging technologies into industry. From intelligent robotic cells and cyber-physical systems to data analysis and AI, it is an innovation space where companies can experiment with and validate solutions for the factory of the future. With a multidisciplinary team, and following European agendas, our research work combines fundamental science and application, impacting the design of solutions for Industry 4.0, fostering competitiveness and the digital transformation of the sector.

Robotics in Industry and Intelligent Systems

Enterprise Systems Engineering

The research carried out at the Centre for Enterprise Systems Engineering (CESE) has a direct impact on industrial transformation, developing sustainable, resilient, and human-centred solutions to address the challenges of the digital and green transitions. Through a co-creation and development approach with scientific and industrial partners, CESE contributes to improve organisational capabilities and driving systemic innovation in complex industrial contexts. As a multidisciplinary research centre, CESE bridges science and practice in the field of Systems Engineering, focusing on value creation within industrial ecosystems. This mission is structured around five research lines that define CESE scientific and technological expertise: Manufacturing Systems Design and Management, Supply Chain and Collaborative Networks Management, Architectures and Industrial Information Systems, Technology Management in Industry, Transportation and Logistics.

Enterprise Systems Engineering