Method of Using Catalyzed Graphene with Nanoparticle Reacting Agent to Improve the Efficiency of a Thermal Vapor Compression System
20210285694 · 2021-09-16
Inventors
Cpc classification
F25B9/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B82Y40/00
PERFORMING OPERATIONS; TRANSPORTING
F25B2500/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B82Y30/00
PERFORMING OPERATIONS; TRANSPORTING
F25B31/002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
C10N2040/30
CHEMISTRY; METALLURGY
C10M171/008
CHEMISTRY; METALLURGY
International classification
F25B9/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
C10M171/00
CHEMISTRY; METALLURGY
Abstract
The process relates to a method of using catalyzed graphene with a nanoparticle reacting agent in the refrigeration circuit of a thermal vapor compression system to improve the efficiency of the system. Specifically, the present process relates to a method of using a catalyzed graphene and nanoparticle reacting agent in the refrigeration circuit of an air conditioning, heat pump, or refrigeration system to increase the performance of the system relative to an equivalent system operating in an equivalent environment without the catalyzed graphene and nanoparticle reacting agent.
Claims
1. A method of using a catalyzed graphene and nanoparticle reacting agent in refrigeration circuits comprising: a) adding polyalphaolefin (PAO) synthetic base oil with catalyzed graphene and nanoparticles admixed in the absence of oxygen under a nitrogen blanket as a reacting agent to the low-pressure side of a refrigeration circuit; and b) operating the refrigeration circuit to alter the temperature of a space.
2. A method of using catalyzed graphene and nanoparticle reacting agent in refrigeration circuits of claim 1 wherein the refrigeration circuit comprises a conventional oil lubricated compressor.
3. A method of using catalyzed graphene and nanoparticle reacting agent in refrigeration circuits of claim 1 wherein the refrigeration circuit comprises an air conditioning heat pump.
4. A method of using catalyzed graphene and nanoparticle reacting agent in refrigeration circuits of claim 1 wherein the refrigeration circuit comprises an oil-less air conditioning system such as those with magnetic bearings.
5. A method of using a catalyzed graphene and nanoparticle reacting agent in compressor oil comprising: a) adding polyalphaolefin (PAO) synthetic base oil with catalyzed graphene and nanoparticles admixed in the absence of oxygen under a nitrogen blanket as a reacting agent to the compressor oil in the compressor; and b) operating the compressor to alter the pressure within a space.
Description
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
[0012] The exemplary embodiment of the present invention comprises a method of using catalyzed graphene and nanoparticles as a reacting agent added to the refrigeration circuit of an air conditioning, heat pump, or refrigeration system to improve the efficiency of the vapor compression system. The catalyzed graphene and nanoparticles reacting agent used in the exemplary embodiment is Nano LiquiTec from Deutsche Nano LiquiTec, GmbH.
[0013] The Nano LiquiTec catalyzed graphene and nanoparticle additive that causes this improved performance is a polyalphaolefin (PAO) synthetic base oil with catalyzed graphene and nanoparticles admixed in the absence of oxygen under a tank-based nitrogen blanket. The Nano LiquiTec catalyzed graphene and nanoparticle additive may be added either to active refrigerant (installed in an existing cooling system) or new compressor oil (for installation in new compressor systems). Nano LiquiTec catalyzed graphene and nanoparticle additive may be used to increase the efficiency of air conditioning compressors. Functionally, the Nano LiquiTec catalyzed graphene and nanoparticle additive increases refrigerant molecule size and lowers the refrigerant boiling point to reduce lubricant viscosity breakdown. The lifetime of lubricants treated with Nano LiquiTec catalyzed graphene and nanoparticle additive is greatly increased.
[0014] In the exemplary embodiment of the present invention, 50 ml of Nano LiquiTec is added to the low-pressure side of the cooling circuit of a typical air conditioning system. The specific air conditioning system is a York split type air conditioning system Model YSL09C3 AMH01 with a rated cooling capacity of 3 kW utilizing R22 refrigerant. The air conditioning system has a nominal amount of R22 refrigerant fluid installed. The cooling system is allowed to equilibrate for a period of time to allow the Nano LiquiTec product to mix with the refrigerant fluid in the air conditioning system.
[0015] The air conditioner serviced a 43 m.sup.3 space with a heat load influence of constant outdoor ambient air temperature. A temperature controller is attached. The temperature controller is set for cooling at 25 degrees Celsius.
[0016] The operation of the system is measured before and after the addition of the Nano LiquiTec using a ClimaCheck measurement system operated by a registered professional refrigeration engineer. For each test, the analyzer collected data on the following operating conditions over a 3-hour period at 30-second intervals: [0017] Power input [0018] Cooling capacity [0019] COP [0020] Comp lsen Eff [0021] Amperage [0022] Suction temperature and pressure [0023] Discharge temperature and pressure [0024] Super heat [0025] Sub cool [0026] Ref mass flow gm/s [0027] Ref volume flow m.sup.3/h
[0028] The air conditioning system is operated in the usual manner. The exemplary embodiment of the present invention demonstrates the following operational data:
TABLE-US-00001 Average Readings (Run Only) Before Post Change Low Pressure (bar) 4.8 5 4% Suction (° C.) 10.7 11 3% Super heat (K) 5.8 5.2 10% Condenser in (° C.) 30.9 31.9 3% Condenser out (° C.) 44.5 45.7 3% High pressure (bar) 17.2 18.1 5% Sub cool (K) 14.4 16.1 12% Discharge (° C.) 96.8 85 12% Comp Isen Efficiency (%) 52.5 68.8 31% Power (kw) 0.8 0.9 13% COP cool 3.1 4 29% CAP cool (kw) 2.5 3.5 40% Amps 3.8 4 5% Minutes off 46 55.5 21% Ref mass flow (gm/s) 15.4 22.3 45% Ref volume flow (m3/h) 2.3 3.3 43%
[0029] The exemplary embodiment of the present invention shows measurably improved performance after the Nano LiquiTec was added. For example, the system showed approximately 29% greater coefficient of performance (COP) and a 40% increase in cooling capacity (kw). All operational parameters are improved: 1) Power input was 13% greater; 2) Compressor discharge temperature decreased by 12% post test data; 3) Comp Isen Eff % increased significantly by 31% post test data; 4) COP cool (a ratio of the cooling capacity and power input) increased significantly by 29% post test data; 5) Sub cooling K increased by 12% post test data; 6) Capacity cool kw increased significantly by 40% post test data. This indicates a significant improvement in overall system performance; 7) Amperage increased by 5% post test data; 8) Compressor run time decreased by 21% post test data; 9) Refrigerant mass flow gm/s increased significantly by 45% post test data; 10) Refrigerant volume flow m.sup.3/h increased significantly by 43% post test data.
[0030] The primary reason that the Nano LiquiTec caused improved performance was because the system exhibited generally lower oil fouling and by the effect of the graphene and the nanoparticles on the refrigerant molecules.
[0031] It will be readily apparent that the exemplary embodiment is not the only embodiment of the present invention which may be constructed. For example, it is also contemplated that the present invention may be used with heat pump air conditioning systems.