EVAPORATIVE REFRIGERANT CONDENSER HEAT EXCHANGER
20190049163 ยท 2019-02-14
Inventors
Cpc classification
F25B39/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B39/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2339/047
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2339/041
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A coil assembly for an evaporative refrigerant condenser having a plurality of nested pairs of serpentine heat exchange tubes tightly packed adjacent to one-another; each nested pair of serpentine heat exchange tubes having an outer serpentine tube and an inner serpentine tube having an identical number of straight lengths and having parallel vertical and horizontal axes.
Claims
1. An evaporative refrigerant condenser comprising: a housing defining a coil section situated above a plenum section; a fan situated on top of said housing and configured to draw ambient air said plenum section through openings at a bottom of said housing, through said coil section and out through a top of said housing through said fan; a water distribution assembly located in said housing and above said coil section for selectively distributing water over said coil section; a water collection section located at a bottom of said housing for collecting water distributed by said water distribution assembly; a water pump for pumping water from said water collection section to said water distribution assembly; a coil assembly located in said coil section, said coil assembly comprising a plurality of nested pairs of serpentine heat exchange tubes tightly packed adjacent to one-another; each nested pair of serpentine heat exchange tubes comprising an outer serpentine tube and an inner serpentine tube having an identical number of straight lengths and having parallel vertical and horizontal axes; each of said nested pairs of serpentine heat exchange tubes connected at a first end to at least one inlet header and connected at a second end to at least one outlet header.
2. An evaporative refrigerant condenser according to claim 1, wherein said serpentine heat exchange tubes are finned.
3. An evaporative refrigerant condenser according to claim 1, wherein a first end of said outer serpentine tubes are connected to a first inlet header and a first end of said inner serpentine tubes are connected to a second inlet header.
4. An evaporative refrigerant condenser according to claim 1, wherein a second end of said outer serpentine tubes are connected to a first outlet header and a second end of said inner serpentine tubes are connected to a second outlet header.
5. An evaporative refrigerant condenser comprising: a housing defining a coil section situated above a plenum section; a fan situated on top of said housing and configured to draw ambient air said plenum section through openings at a bottom of said housing, through said coil section and out through a top of said housing through said fan; a water distribution assembly located in said housing and above said coil section for selectively distributing water over said coil section; a water collection section located at a bottom of said housing for collecting water distributed by said water distribution assembly; a water pump for pumping water from said water collection section to said water distribution assembly; a coil assembly located in said coil section, said coil assembly comprising a plurality of modular tube units, each modular tube unit comprising a plurality of straight tube lengths connected at a first end to an inlet header connector and at a second end to an outlet header connector, wherein said modular units are stacked on top of one-another to create vertical stacks, and a plurality of said vertical stacks are packed laterally adjacent to one-another to result in said coil assembly.
6. An evaporative refrigerant condenser according to claim 5, wherein inlet header connectors of modular tube units in a vertical stack are fluidly connected to one-another.
7. An evaporative refrigerant condenser according to claim 5, wherein inlet header connectors of modular tube units in adjacent vertical stacks are fluidly connected to one-another.
8. An evaporative refrigerant condenser according to claim 5 wherein outlet header connectors of modular tube units in a vertical stack are fluidly connected to one-another.
9. An evaporative refrigerant condenser according to claim 5, wherein outlet header connectors of modular tube units in adjacent vertical stacks are fluidly connected to one-another.
10. A coil assembly for an evaporative refrigerant condenser comprising: a plurality of nested pairs of serpentine heat exchange tubes tightly packed adjacent to one-another; each nested pair of serpentine heat exchange tubes comprising an outer serpentine tube and an inner serpentine tube having an identical number of straight lengths and having parallel vertical and horizontal axes.
11. A method of improving the heat exchange efficiency for an evaporative refrigerant condenser having a housing defining a coil section situated above a plenum section; a fan situated on top of said housing and configured to draw ambient air said plenum section through openings at a bottom of said housing, through said coil section and out through a top of said housing through said fan; a water distribution assembly located in said housing and above said coil section for selectively distributing water over said coil section; a water collection section located at a bottom of said housing for collecting water distributed by said water distribution assembly; a water pump for pumping water from said water collection section to said water distribution assembly; a first coil assembly located in said coil section, said coil assembly comprising a plurality single serpentine heat exchange tubes tightly packed adjacent to one-another; each serpentine heat exchange tubes connected at a first end to an one inlet header and connected at a second end to an outlet header, said method comprising replacing said first coil assembly with a replacement coil assembly comprising a plurality of nested pairs of serpentine heat exchange tubes tightly packed adjacent to one-another; each nested pair of serpentine heat exchange tubes comprising an outer serpentine tube and an inner serpentine tube having an identical number of straight lengths and having parallel vertical and horizontal axes; each of said nested pairs of serpentine heat exchange tubes connected at a first end to at least one inlet header and connected at a second end to at least one outlet header, said outer serpentine tube and said inner serpentine tube each having a length that is substantially one-half of a length of said serpentine tubes in said first coil assembly.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0017] This inventions relates particularly to condenser coil bundles used in evaporative refrigerant condensers 10 of the type shown in
[0018] The apparatus 10 includes a fan 100 for causing air to flow through the apparatus, and as shown schematically in
[0019] Prior art refrigerant coil assemblies 20 have a generally parallelepiped overall shape of six sides retained in a frame 21 and has a major/longitudinal axis 23, where each side is in the form of a rectangle. The coil assembly 20 may be made of multiple horizontal closely spaced parallel, serpentine tubes connected at their ends to form a number of circuits through which the refrigerant flows. Each individual circuit within the coil assembly may be a single, continuous length of coil tubing that is subjected to a bending operation which forms the tubing into several U-shaped rows that are in a generally vertical and equally-spaced relationship from each other, such that each circuit has a resultant serpentine shape. Finned tube coil assemblies are preferred.
[0020] The coil assembly 20 has an inlet 22 connected to an inlet manifold or header 24, which fluidly connects to inlet ends of the serpentine tubes of the coil assembly, and an outlet 26 connected to an outlet manifold or header 28, which fluidly connects to the outlet ends of the serpentine tubes of the coil assembly. The assembled coil assembly 20 may be moved and transported as a unitary structure such that it may be dipped, if desired, if its components are made of steel, in a zinc bath to galvanize the entire coil assembly.
[0021] The refrigerant gas discharges from the compressor into the inlet connection of the apparatus. Heat from the refrigerant dissipates through the coil tubes to the water cascading downward over the tubes. Simultaneously, air is drawn in through the air inlet louvers at the base of the condenser and travels upward over the coil opposite the water flow. A small portion of the water evaporates, removing heat from the system. The warm moist air is drawn to the top of the evaporative condenser by the fan and discharged to the atmosphere. The remaining water falls to the sump at the bottom of the condenser where it recirculates through the water distribution system and back down over the coils.
[0022] The invention constitutes a change and improvement over the prior art as illustrated in
[0023] Accordingly, where the tube bundle/coil assembly 20 of
[0024] The inlet for both tubes in each pair of nested tubes may be attached to the same inlet header. Alternatively, the outer tubes 104 of each nested pair of tubes may be connected to a first inlet header 105, and the inner tubes 106 of each nested pair of tubes may be connected to a second inlet header 106. Similarly, the outlet for both tubes in each pair of nested tubes may be attached to the same outlet header, or the outer tubes 104 of each nested pair of tubes may be connected to a first outlet header 108, and the inner tubes of each nested pair of tubes may be connected to a second outlet header 109.
[0025] Manufacturing of coil assemblies according to this embodiment of the invention has attendant material and labor cost increases, but the efficiencies achieved by such configuration over the life of the device are expected to far exceed the increased manufacturing cost.
[0026] According to an alternative embodiment, the coil assembly may be constructed entirely of one pass circuits as shown in