The present invention generally relates to air-cooled heat exchangers, and more particularly, but not by way of limitation, to a system and method for constructing the structural frames used to support the body of the air-cooled heat exchanger.
Air-cooled heat exchangers are used in a wide variety of industrial applications. A process fluid, either a gas or a liquid, is passed through a series of cooling tubes while air is mechanically passed over the exterior of the cooling tubes. The air absorbs heat from the cooling tubes, thereby lowering the temperature of the fluid within the tubes. The cooling tubes may include lateral or axial fins to aid in heat transfer.
Air cooled heat exchangers often include a large fan that forces or draws air at ambient conditions through a plenum fabricated from a series of panels supported by an underlying frame assembly. The fan is typically connected to a shaft, which is driven by an external engine or electric motor. The fan shaft is supported by durable bearings that reduce friction and provide axial and radial support to the fan and fan shaft.
The frame of the heat exchanger is typically constructed by precisely positioning and securing a series of structural members to one another. In many cases, the frame is constructed from a collection of plate, angle, channel and I-beam members. The manufacturer sources stock structural members and cuts the members to proper length and shape during the assembly process. Using drawings, an assembly team manually cuts, drills, notches, punches and miters the structural components on the factory floor. Once the various structural pieces have been prepared for assembly, the pieces are then manually positioned for fitment and welded together.
Although widely adopted, the manual preparation and fitment of the frame members may create inconsistencies or inaccuracies that frustrate and delay the assembly and welding process. Accordingly, there is a need for a frame system and assembly method that overcomes the deficiencies of the prior approaches. The presently preferred embodiments are directed to these and other deficiencies in the prior art.
In one embodiment, the present invention includes an air-cooled heat exchanger that has a plenum, a cooling tube assembly contained within the plenum, and a fan configured to move air across the cooling tube assembly. The air-cooled heat exchanger further includes a frame assembly that supports at least one of the plenum, the cooling tube assembly and the fan. The frame assembly has a plurality of keyed structural members that are each interconnected to one another with mortise and tenon connection joints.
In another aspect, the present invention includes a method for manufacturing and assembling the frame assembly of an air-cooled heat exchanger. The method begins with the step of providing a plurality of keyed structural members, wherein each of the plurality of keyed structural members is provided with a first connection joint component that is uniquely matched for connection with a corresponding second connection joint component on a corresponding keyed structural member. The method continues with the step of assembling the frame assembly by interconnecting each of the plurality of keyed structural members using the first and second connection joint components. The method ends with the step of permanently connecting the frame assembly by permanently fastening each of the plurality of keyed structural members.
In yet another embodiment, the present invention includes an air-cooled heat exchanger that has a plenum, a cooling tube assembly contained within the plenum and a fan configured to move air across the cooling tube assembly. The air-cooled heat exchanger further includes a frame assembly that supports the plenum. The frame assembly has a plurality of keyed structural members, where each of the plurality of keyed structural members is interconnected to a corresponding one of the plurality of keyed structural members with a unique mortise and tenon connection joint.
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The connection joints 116 may be configured with different shapes and sizes. For example, the frame assembly 102 may have a number of unique connection joints 116, including dovetail 120, keyhole 122, and tab-and-slot 124 joints. In preferred embodiments, each of the mating joints 116 is uniquely configured or positioned on the structural members 112 such that a particular tenon 120 will only fit within an intended mortise 118 to prevent the improper assembly of the frame assembly 102. In particularly preferred embodiments, each of the structural members 112 is separately identified with numbers or other symbols to facilitate positioning of the frame assembly 102.
In exemplary embodiments, each of the structural members 112 is manufactured using advanced multi-axis, laser or high definition plasma machining to precisely cut the various structural members 112, base 114 and the associated connection joints 116 before the various pieces of the frame assembly 102 are delivered to an assembly location. Once the unassembled pieces of the frame assembly 102 have been moved to the assembly location, the frame assembly 102 can be assembled by securing the various structural members 112 together using the unique connection joints 116.
The connection joints 116 are preferably configured with sufficient interference to temporarily support the assembled structural members 112 without additional fasteners. The mating joints are preferably configured and oriented such that the frame assembly 102 can only be assembled correctly according to the plans for the air cooled heat exchanger 100. In this way, the frame assembly 102 is constructed like a jigsaw puzzle, with one or more solutions that follow the plans and blueprints for the air cooled heat exchanger 100. Once the components of the frame assembly 102 have been properly assembled for fitment, the structural members 112 can be permanently fastened together by welding, nuts and bolts, or other suitable fasteners.
Thus, the frame assembly 102 includes a plurality of uniquely “keyed” structural members 112 that are designed and manufactured to simplify and accelerate the process of positioning and securing the various pieces of the frame assembly 102. It will be understood that the frame assembly 102 may include both keyed structural members 112 and standard non-keyed structural members that are assembled using conventional manufacturing and assembly techniques. It is to be understood that even though numerous characteristics and advantages of various embodiments of the present invention have been set forth in the foregoing description, together with details of the structure and functions of various embodiments of the invention, this disclosure is illustrative only, and changes may be made in detail, especially in matters of structure and arrangement of parts within the principles of the present invention to the full extent indicated by the broad general meaning of the terms expressed herein and in the appended claims. It will be appreciated by those skilled in the art that the teachings of the present invention can be applied to other systems without departing from the scope and spirit of the present invention.
The present application claims the benefit of U.S. Provisional Patent Application Ser. No. 62/649,828 filed Mar. 29, 2018 and entitled “Air-Cooled Heat Exchanger with Tab and Slot Frame,” the disclosure of which is herein incorporated by reference.
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Number | Date | Country | |
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