Use of an air-cleaning blower to keep condenser coils clean
10816260 ยท 2020-10-27
Assignee
Inventors
Cpc classification
F25B47/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25D23/003
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F25D23/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B39/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A refrigeration apparatus including an enclosure with an opening and condenser coils disposed within the enclosure, a cover plate dimensioned to fit over the opening, and with an air-cleaning blower apparatus placed over an orifice in the cover plate. The orifice in the cover plate is in communication with the interior of the enclosure holding the condenser coils, with the air-cleaning blower apparatus positioned in the incoming air stream to remove contaminants from the incoming air stream before the incoming air stream contacts the condenser coils. The cover plate may also have ports for introducing compressed air into the enclosure and for applying a vacuum to the enclosure, as well as an indicator for signaling the need for cleaning the condenser coils.
Claims
1. In a refrigeration apparatus including an enclosure and condenser coils located within the enclosure, the condenser coils being prone to become dirty over time as the condenser coils come in contact with an incoming air stream intended to promote heat transfer across the condenser coils, wherein the improvement comprises: a cover plate dimensioned to fit over an opening to the enclosure; an orifice in the cover plate, the orifice in communication with the interior of the enclosure; an air-cleaning blower apparatus operably positioned over the orifice and upstream of the condenser coils such that the incoming air stream enters the enclosure via the air-cleaning blower apparatus, thus allowing said air-cleaning blower apparatus to remove contaminants from the incoming air stream before the incoming air stream contacts the condenser coils.
2. The apparatus as claimed in claim 1, wherein the cover plate further comprises ports to allow the introduction of compressed air into the enclosure and/or to allow the application of a vacuum to the enclosure, respectively, thus allowing the condenser coils to be cleaned when they become dirty.
3. The apparatus as claimed in claim 1, wherein the cover plate further comprises an indicator to signal the need for cleaning the condenser coils should the condenser coils become dirty.
4. The apparatus as claimed in claim 1, wherein the cover plate further comprises ports to allow the introduction of compressed air into the enclosure and/or to allow the application of a vacuum to the enclosure, respectively, thus allowing the condenser coils to be cleaned when they become dirty, as well as further comprising an indicator to signal the need for cleaning the condenser coils should the condenser coils become dirty.
5. The apparatus as claimed in claim 2, wherein the cover plate further comprises an indicator to signal the need for cleaning the condenser coils should the condenser coils become dirty.
Description
(1) The present invention is directed to a novel way of largely preventing dust contamination of the coils in the first place and is illustrated in the Drawings wherein:
(2)
(3)
(4)
(5) The instant invention involves replacing the conventional vented cover now used with a non-vented cover that also comprises an air-cleaning blower, which is shown in
(6) One preferred conically-shaped air-cleaning blower unit, as depicted in
(7) The use of this air-cleaning blower unit can obviate the need for a fan assembly, as is conventional, in condensing units now in operation or it could be used in conjunction with such fan depending on the blowing power of the selected air-cleaning blower. It is well within the skill in the art to calibrate the needed blowing power of the blower and appropriately connect its electrical wiring to the condensing unit's fan power source(s) within the enclosure. When the refrigeration unit cycles on, the blower, either with or without the conventional condensing fan now commonly used, can cycle on as well to supply an air flow to promote coil heat transfer.
(8)
(9) In order that the entire unit functions with the lowest electric energy possible, a preferred embodiment utilizes a special class of electric motor for both the fan in the condensing unit, if that is not deactivated, as well as in the air-cleaning blower. Rather than being either an induction (or shaded-pole) motor or the more recently developed electronically commutated motor, the preferred motor is the type of synchronous motor developed by and commercially available from QM Power, Inc. and designated the Q-SYNC Smart Synchronous Motor. This type motor, unlike an electronically commutated motor, does not require continual conversion between AC and DC power throughout its use to operate. The preferred motor's electronics get the motor to its targeted speed and then efficiently shift the motor to AC power supplied directly from the grid. Further details on this type of motor can be found in the following patent documents, which are incorporated herein by reference: U.S. Pat. Nos. 7,898,135; 8,810,084; 9,231,459; and 9,300,237 and U.S. Patent Publication No. 2016/0094113.
(10) The other type of refrigeration apparatus that can be improved by the present invention operates thermo-electrically where a voltage of constant polarity is applied to a junction between two dissimilar electrical semiconductors where the negative one becomes cooler and the positive one hotter. A heat sink is used to dissipate the thermal energy from the positive one into the external environment as is well known to persons in the art. These heat sinks tend to collect dust and debris in an analogous manner to the condenser coils in the previously described compression-expansion refrigeration units. The enclosure holding such heat sink heat dissipation structure(s) will benefit in an analogous manner to the more conventional systems if the enclosure is closed off except for the previously described air cleaning blower being the source of air that is imported into the enclosure to assist in cooling the heat sink.
(11) This invention also involves a new business method: (1) either retrofit or new unit manufacture of refrigeration apparatus, either non-residential or residential, employing the air-cleaning blower installation previously described; (2) coupled with an ongoing preventative maintenance program where the condenser coils (or heat sink) are cleaned, if needed, after being placed in service with a compressed air stream (e.g., compressed air, dry steam, or possibly liquid solvent stream) and vacuum using the previously COILPOD dust containment method and apparatus.