This invention relates to a heating system for homes and other buildings. The system incorporates a furnace module and an evaporator coil module and unique structure for interconnecting the modules.
The use of furnace modules and evaporator modules in home heating systems is well known. Typically, but not necessarily, assemblies incorporating these modules are located in an attic. Installation of prior art assemblies is normally accomplished in situ at the job site, the modules typically being fixedly connected together by sheet metal transitions custom fabricated from sheet metal and attached by screws. These transition structures are required to adapt the modules to one another since adjacent modules often employ different sized and/or shaped air flow openings. Sealants are usually employed to provide some semblance of air-tight connection.
This prior art approach is time consuming and typically must be carried out by highly trained personnel, further adding to cost of a project. Inconsistent results are obtained. Such installations, due to their more or less permanent character make it difficult to replace parts and components. They are also relatively long, causing installation problems.
The present invention provides an arrangement whereby a furnace module and an evaporator coil module can be quickly installed by individuals having a relatively low level of skill and experience. The structural components of the system can be disconnected and reassembled quickly and easily. A high level of air-tight integrity is provided and the invention incorporates a feature which readily allows furnace modules and evaporator coil modules of the different types to be adapted to one another in the assembly.
The invention relates to a combination including a furnace module having a furnace module interior and a furnace module outlet opening in air-flow communication with the furnace module interior.
The combination further includes an evaporator coil module having an evaporator coil module interior and an evaporator coil module inlet opening in air-flow communication with the evaporator coil module interior.
An adaptor module is connected to and disposed between the furnace module and the evaporator coil module having an adaptor module inlet opening thereof adjacent to the furnace module outlet opening and in air-flow communication therewith for receiving air from the furnace.
The adaptor module also has an adaptor module outlet opening adjacent to the evaporator coil module inlet opening and in air-flow communication therewith for introducing air received by the adaptor module from the furnace module into the evaporator coil module through the evaporator coil module inlet.
The assembly also includes air seal structure surrounding the adaptor module inlet opening and the adaptor module outlet opening and disposed between the adaptor module and the furnace module and between the adaptor module and the evaporator coil module.
Securement structure exerts forces on the furnace module and on the evaporator coil module continuously urging them toward one another whereby the adaptor module is maintained under compression between the furnace module and the evaporator coil module and fixed in position relative thereto.
Other features, advantages and objects of the present invention will become apparent with reference to the following description and accompanying drawings.
Referring now to
Evaporator coil module 12 has an evaporator coil module inlet opening 18 in air-flow communication with the evaporator coil module interior.
An adaptor module 20 is connected to and disposed between the furnace module and the evaporator coil module. The adaptor module has an adaptor module inlet opening 22 adjacent to the furnace module outlet opening 14 and in air-flow communication therewith for receiving air from the furnace.
The adaptor module also has an adaptor module outlet opening 24 adjacent to the evaporator coil module inlet opening 18 and in air-flow communication therewith for introducing air received by the adaptor module from the furnace module into the evaporator coil module through the evaporator coil module inlet. A plenum module 26 associated with outlet ducts is connected at the distal end of the evaporator coil module 12 to receive air from an evaporator coil module outlet opening (not shown).
The modules of the illustrated assembly are held together by securement structure which includes tensioned securement straps 30 and strap retainers in the form of rings or loop elements 32 attached to the modules. The securement straps may for example be commercially available “zip” cable ties constructed of nylon or the like. Each securement or attachment strap 30 extends between retainers 32 of adjacent modules. A tool (not shown) of a well known type may be employed to tension the straps and pull the modules together in tight engagement.
The forces exerted on the furnace module and on the evaporator coil module continuously urge the furnace module and the evaporator coil module toward one another to maintain the adaptor module 20 under compression therebetween and fixed in position relative thereto. Disassembly of selected modules is readily effected by severing the straps connecting them together.
The adaptor module includes an adaptor module component 40 defining adaptor module inlet opening 22 and an adaptor module component 42 defining the adaptor module outlet opening 24. As may perhaps best be seen with reference to
Adaptor module component 40 includes a plate 44 and adaptor module component 42 includes a plate 46. These plates are disposed parallel to one another in the embodiment being described. A gasket 48 is disposed between the plates and surrounds the adaptor module inlet opening 22 and the adaptor module outlet opening 24 to prevent the escape of air between the adaptor module components. In the arrangement illustrated, insulation 50 is provided at the upper end of the adaptor module. Compression of the adaptor module by the furnace module and the evaporator coil module results in compression of gasket 48 and insulation 50.
Air seal structure in the form of compressive seal strips 52, 54 are located respectively on adaptor module components 40, 42. Compressive seal strip 52 surrounds adaptor module inlet opening 22 and compressive seal strip 54 surrounds adaptor module outlet opening 24. Thus, air is prevented from escaping between the adaptor module and the furnace module and evaporator coil module.
The two component nature of the adaptor module enables either component to be replaced with another having a different sized or shaped opening formed therein. This approach enables an adaptor module to be customized for a particular furnace module outlet opening and particular evaporator coil module inlet opening so that the furnace module and evaporator coil module are compatible and meet specification. It will be appreciated that the sizes and shapes of such openings vary between manufacturers and even between models of a single manufacturer.
The evaporator coil 12 module is supported on an attic floor or other support surface 60 (
The condensate pan 62 includes hollow receptacles 68 which are open at the bottoms thereof. The receptacles 68 have upper support surfaces engaging and supporting the evaporator coil module.
The receptacles 68 accommodate therein support members in the form of blocks 70 suitably formed of styrofoam or other foamed plastic material. The blocks 70 project downwardly from the pan bottom and support the pan as well as the evaporator coil module on the flooring or other support surface. The blocks 70 may be cut at the job site to provide a height ensuring leveling and proper height placement of the evaporator coil module relative to associated modules and components.
A somewhat larger condensate pan 72 (
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Number | Date | Country |
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43 33 904 | Mar 1995 | DE |