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ORC system: heat recovery from engine

How recover the thermal energy from engines

 

CARILEC (Caribbean Electric Utility Services Corporation) allowed us to explain how our ORC modules are efficient for recovering the waste heat produced by the diesel and biogas engines.
This solution can offer clean electricity and the achievement of the environmental sustainability core business.

 

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Zuccato Energia – ORC-Anlage für die Glashütte Borgonovo Spa

Inbetriebnahme einer ORC-Anlage für industrielle Prozesse

 

Wir freuen uns, die Inbetriebnahme unserer ORC-Anlage für einen industriellen Prozess, die Vetreria di Borgonovo Spa in Piacenza, bekannt zu geben.

Das 52.000 m2 große Werk produziert mit zwei modernen Schmelzöfen rund 45.000 Tonnen Glas pro Jahr.

Das System basiert auf dem Betrieb eines ORC-Moduls ZE-200-LT, dass bis zu 200 kW elektrische Energie erzeugt und 1400 kW Wärme aus den Abgasen der Schmelzöfen zurückgewinnt. Das Modul gewinnt die Abwärme zurück und erzeugt sauberen Strom, der in der gesamten Anlage genutzt werden kann. Die Rückgewinnung erfolgt über einen Wärmetauscher, der die Abgase auffängt und zur Erwärmung von Wasser, der für den Betrieb der ORC-Anlage erforderlichen Trägerflüssigkeit, verwendet.

The electricity production is zero emissions: the glasswork can avoid 274 TOE and 376 tonnes of CO2 per year.

Die Stromerzeugung ist klimaneutral: Die Glashütte kann 274 TEP und 376 Tonnen CO2 pro Jahr vermeiden.

Zuccato Energia - ORC plant for glasswork factory

ORC Plant – Vetreria di Borgonovo Spa

Zuccato Energia - ORC plant for glasswork factory

Container von oben – Vetreria di Borgonovo Spa

Die Rückgewinnung von Abwärme durch die ORC-Technologie wird zum Mittel, um das Ziel der “Umweltverträglichkeit” zu erreichen: Die Wärmerückgewinnung bei mittleren und niedrigen Temperaturen ermöglicht es in der Tat, die Umweltauswirkungen industrieller Prozesse zu reduzieren und gleichzeitig ihre wirtschaftlichen Auswirkungen zu verringern, indem ihre Abfälle genutzt und in elektrische Energie umgewandelt werden können, mit hoher Flexibilität, minimalem Wartungsaufwand und allen Komponenten nach Maß.

 

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ORC System – Recovery from waste treatment

ORC system produces electricity from heat recovery in the treatment and disposal of waste.

 

Energy recovery takes place from the recovery of the exhaust fumes of incinerators or engines powered by the biogas produced by the waste itself.

One of our ORC systems has found application in a waste management plant and uses the waste gases of the incinerator.

An incinerator is a waste disposal facility that works by destroying inert materials. In practice, the waste is burned or, as the word itself suggests, “incinerated”. The fumes deriving from combustion must be adequately monitored and filtered and can be used precisely in the Organic Rankine Cycle.

The heat recovered from the incineration processes is converted and used to generate electricity.

Our ZE-200-LT ORC system is applied by recovering 2000 kW of thermal power. In this way, the waste treatment plant manages to dispose of its waste and at the same time produce clean electricity without CO2 emissions into the atmosphere.

 

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Comparison of four types of radial turbines for a 250kw ORC power installation

COMPARISON OF FOUR TYPES OF RADIAL TURBINES FOR A 250KW ORC POWER INSTALLATION

 

Maksim Smirnov, Natalia Kuklina, Aleksandr Sebelev, Alessandro Zuccato and Nikolay Zabelin

Peter the Great St. Petersburg Polytechnic University (SPbPU), St. Petersburg, Russia

Zuccato Energia Srl, via della Consortia 2, Verona, Italy

*Corresponding Author: m.smirnov.turbo@gmail.com

 

 

ABSTRACT

 

This paper seeks to compare four solutions for an ORC power plant rated at 250 kW running with R1233zdE as the working fluid: a radial inflow – axial outflow turbine with a typical reaction about of 0.5, a radial centripetal turbines with reaction of 0.36 and 0.05 and an impulse centrifugal turbine. All these turbines are single stage and high-speed. Steady state CFD simulations were carried out to assess the performance at the design and partial load as well as the axial force values.

As expected, the radial inflow turbine has exhibited the best performance, followed then by the centripetal reaction turbine with 4% of a relative efficiency decrease. Both impulse turbines have shown 11% less efficiency at the design point comparing to the radial inflow stage. Under the partial load, the turbines have exhibited different trends of their efficiency behaviour.

In particular, with a power output reduction from 100 to 40%, the radial inflow and the centripetal turbine have lost 7% of their efficiency, while the centripetal impulse turbine 20% and the centrifugal impulse just 5%.
The axial force of the radial inflow and both centripetal stages may be balanced to reach a desired value by means of the modification of the disk back seal. Instead, the centrifugal impulse stage fails to provide such a balancing, which results in high values of the axial thrust even despite an impulse nature of this stage.

 

 

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