Control Optimization of Solar Thermally Driven Chillers

Many installed solar thermally driven cooling systems suffer from high auxiliary electric energy consumption which makes them not more efficient than conventional compression cooling systems. A main reason for this is the use of non-efficient controls with constant set points that do not allow a chiller power modulation at partial-load and therefore lead to unnecessary high power consumption of the parasitics. The aims of this paper are to present a method to control efficiently solar thermally driven chillers, to demonstrate experimentally its applicability and to quantify the benefits. It has been shown that the cooling capacity of a diffusion absorption chiller can be modulated very effectively by adjusting both the temperature and the flow rate of the cooling water. With the developed approach and the use of optimization algorithms, both the temperature and the flow rate can be controlled simultaneously in a way that the cooling load is matched and the electricity consumption is minimized. Depending on the weather and operating conditions, electricity savings between 20% and 60% can be achieved compared to other tested control approaches. The highest savings are obtained when the chiller is operated at partial load. The presented method is not restricted to solar cooling systems and can also be applied to other conventional heating ventilation and air conditioning (HVAC) systems.

[1]  Martin Helm,et al.  Energy assessment of solar cooling thermally driven system configurations for an office building in a Nordic country , 2016 .

[2]  Paul Kohlenbach Solar Cooling with Absorption Chillers: Control Strategies and Transient Chiller Perfomance , 2006 .

[3]  Hans-Martin Henning,et al.  Solar Systems for Heating and Cooling of Buildings , 2012 .

[4]  Sebastian Engell,et al.  Supervisory Control of a Solar Air Conditioning Plant with Hybrid Dynamics , 2008, Eur. J. Control.

[5]  Iif-Iir,et al.  The role of refrigeration in the global economy. , 2015 .

[6]  P. Martínez,et al.  Experimental results of different control strategies in a solar air-conditioning system at part load , 2011 .

[7]  C. C. Mac Duffee,et al.  The characteristic equation , 1933 .

[8]  Communication from the European commission to the council, the European parliament, the economic and social committee and committee of the regions , 2002 .

[9]  Ursula Eicker,et al.  Heat rejection and primary energy efficiency of solar driven absorption cooling systems , 2012 .

[10]  Francesco Calise,et al.  Thermoeconomic analysis and optimization of high efficiency solar heating and cooling systems for different Italian school buildings and climates , 2010 .

[11]  Richard S. J. Tol,et al.  Key Economic Sectors and Services , 2014 .

[12]  M. Venegas,et al.  Optimum hot water temperature for absorption solar cooling , 2009 .

[13]  Uli Jakob,et al.  Simulation and experimental investigation into diffusion absorption cooling machines for air-conditioning applications , 2008 .

[14]  Hans-Martin Henning,et al.  Solar assisted air conditioning of buildings – an overview , 2004 .

[15]  Jan Albers New absorption chiller and control strategy for the solar assisted cooling system at the German federal environment agency , 2014 .