Exemplary embodiments of this invention generally relate to environmental control systems of an aircraft and, more particularly, to an air to air heat exchanger of such an environmental control system.
Environmental control systems (ECS) for aircrafts and other vehicles are utilized to provide a conditioned airflow for passengers and crew within an aircraft. One type of environmental control system generally operates by receiving fresh ambient air into a ram air intake located near the ECS equipment bay. The fresh ambient ram air is supplied to at least one electric motor-driven air compressor that raises the air pressure to, for example, the desired air pressure for the cabin. From the at least one air compressor, the air is supplied to an optional ozone converter. Because air compression creates heat, the air is then supplied to an air conditioning pack in which the air is cooled before being transported to the cabin.
Depending on the ambient air conditions when an aircraft is in flight, air having a subzero temperature may be provided to a heat exchanger of the ECS. As a result of moisture present in a warm airflow provided to the heat exchanger, water from the warm airflow may condense on the heat exchanger fins and upon further cooling turn into frost or ice. Accumulated frost or ice may impede or block the flow of air through a portion of the heat exchanger, thereby reducing the operating efficiency and functionality of the heat exchanger and the ECS.
According to one embodiment of the invention, an air to air heat exchanger is provided including a core having a plurality of alternately stacked first layers and second layers. Each first layer includes a plurality of first modules having corrugated fins that define a plurality of first fluid flow paths. The first modules are aligned to fluidly couple the first fluid flow paths. Each second layer includes at least one second module having corrugated fins that define a plurality of second fluid flow paths. At least one second layer includes a third module having a plurality of corrugated fins that define a plurality of third fluid flow paths. The third module is arranged such that the third fluid flow paths are parallel to the second fluid flow paths. A number of corrugated fins formed in the third module is less than a number of corrugated fins formed in the second module.
The subject matter, which is regarded as the invention, is particularly pointed out and distinctly claimed in the claims at the conclusion of the specification. The foregoing and other features, and advantages of the invention are apparent from the following detailed description taken in conjunction with the accompanying drawings in which:
The detailed description explains embodiments of the invention, together with advantages and features, by way of example with reference to the drawings.
Referring now to
Referring now to
Details of the construction of the core 32 of the air to air heat exchanger 30 are illustrated in
Referring to
During operation of the illustrated heat exchanger 30, a first fluid passes through the fluid flow paths 60 defined by the plurality of parallel first modules 52 (
Referring now to
The third modules 90 of each of the second layers 70 in a heat exchanger core 32 may be substantially identical, or alternatively may be different. In addition, the position of the at least one third module 90 within the second layer 70 may vary, as shown in
To limit such freezing, the third modules 90 of adjacent second layers 70 within the heat exchanger core 32 may be arranged at directly adjacent positions. For example, as shown in the
In the illustrated, non-limiting embodiment, the third modules 90 are arranged in a “step-wise” configuration intended to follow a freeze line 100 of the heat exchanger's core 32 in a thermal “boot-strapping” approach. However, heat exchanger core 32 having second layers 70 with one or more third modules 90 arranged at any position, such as in an interspersed array for example, configured to reduce or minimize or completely eliminate freezing of condensed water therein is within the scope of the invention. Any array of interspersed elements such as third module 90 among second layers 70 within the heat exchanger's core 32 is also contemplated and is therein within the scope of the invention. As a result of the positioning of the third modules 90, the heat from adjacent first layers 50 conducts to the second layers 70, thereby defrosting any frozen portions of the core 32.
Inclusion of one or more third module 90 in the second layers 70 of a heat exchanger core 32 provides an efficient method for minimizing or preventing the formation of frost or ice in a compact air to air heat exchanger 30. As a result, the need for additional defrost systems or sub-routines is eliminated such that the heat exchanger 30 will operate in a predictable manner. This results in a compact, light-weight, highly-efficient air-to-air heat exchanger.
While the invention has been described in detail in connection with only a limited number of embodiments, it should be readily understood that the invention is not limited to such disclosed embodiments. Rather, the invention can be modified to incorporate any number of variations, alterations, substitutions or equivalent arrangements not heretofore described, but which are commensurate with the spirit and scope of the invention. Additionally, while the various embodiments of the invention have been described, it is to be understood that aspects of the invention may include only some of the described embodiments. Accordingly, the invention is not to be seen as limited by the foregoing description, but is only limited by the scope of the appended claims.
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Number | Date | Country |
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60238684 | Nov 1985 | JP |
S60238684 | Nov 1985 | JP |
Entry |
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English Translation of JP-60238684-A (Year: 2021). |
Japanese Patent No. S60238684; Date of Publication: Nov. 27, 1985; Abstract Only, 2 pages. |
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20160122024 A1 | May 2016 | US |