Solar energy thermal air plank collector calibration device
The subject invention is an interchangeable component, multi-use solar energy air heating apparatus designed to achieve universal output energy through variable operation that includes radiant absorber capped sealed linear ducted passageway employing air as transfer medium that allows selective insertion of varying design elements of thermal mass, possessing known absorptive, retentive transfer properties of interchangeable quantity, densities, surface, texture and configurations providing for varying thermal energy exchange to capture, store as necessary, and pass on microsite harvested, direct, diffuse, locally compromised, controlling historic patterns of solar reception; said interchangeable components to produce quantitative thermal air for application in different climatic regions having unlike conditions, said interchangeable components to also provide for pre-manufactured testing and calibration plus provision for serviceable multi-duct manifolding for exiting air treatment as required to service habitable space, industrial processes, crop drying terrestrial and water plant life for energy application, plus night sky radiation cooling.
This invention relates to improved vertically controlled thermodynamics of solar heated air systems which are now of universally uniform operation design as employed for: space and hot water heating, process heating plus terrestrial and water based organic crop drying. The invention provides variable timely thermodynamic transfer mechanisms readily introduced into the flow stream of the air transfer medium to provide consistent thermal energy at raised temperature gradient in a multiple of climatic areas, under local varying conditions and different applications through the added implementation of selective, geometrically configured rigid thermal mass linear elements inserted into the air flow passageway to cause friction contact interaction, maximizing thermal dynamic energy exchange via absorption, retention and emittence, and for night sky, radiation cooling when atmospherically possible.
The readily added linear rigid frames, containing the interchangeable thermal manipulation mass, are employed for specifically targeted applications. They are easily inserted into the air stream and contact with the enclosing metallic body of the collector for calibration testing prior to system implementation. Provision is also made for serviceable multi-duct manifolds to serve entering and exiting air required treatment.
Description of Prior ArtThe air transfer medium solar energy collector of my prior patents: U.S. Pat. Nos. 4,284,070 and 4,393,862 is a mechanism consisting of thin linear perimeter sealed multi-duct air moving passages that receive solar radiation energy from a fixed, flat, locally dictated, design oriented radiation absorber surface, and transfers it into a flowing air transfer medium as thermal energy. The duct units called Air Planks, are of rigid, amalgamated, non-corrosive metals for strength and longevity. The exposed surface absorber selective coating is inexpensive coil coated. A low cost mechanically roll-form process shapes the sheet metal into ducts of required depths, widths and lengths to address local atmospheric conditions and the intended process application. Multi-ducts in parallel are manifolded together at each end to provide uniform entry and exiting air flow. The total configuration forms a flat plate solar collector, easily assembled, low cost, highly durable and versatile in application, generally, but not specifically, efficiently addressing a multitude of climatic conditions. Variable air movement can be achieved employing minimal size photo voltaic cell panels enabling complete operational self sufficiency. Hot water if required is generated by an efficient single faced remote air to water heat exchanger. The collector configuration is remotely glazed overhead by a totally independent glass cover system. In remote third world installations with minimal requirements, glazing may be omitted. The glazing forms a tight cover over the air flow system. As a result any system air leakage allows for drawing air into the system from the interior of the heated structure, minimizing degradation of the air flow being raised in temperature.
At present flat plate thermal air solar energy collector systems are composed of similar components to universally serve all applications in all geographic areas and are not specifically designed for each maximum local use or to address exacting process needs and local atmospheric climatic conditions. As designed and implemented, available energy output is not at a maximum daily output. The internal thermal mass configurations of the new invention are designed, combined and added to adjust energy reception, retention, and release for usable maximum solar day long energy gain for specific applications.
BRIEF SUMMARY OF THE INVENTION Solar Energy Thermal Air Plank Collector Calibration DeviceThis invention provides for the implementation of design selected, geometrically configured, thermal mass elements into variable through air flow within the air passages of the solar energy thermal air plank collector plus a mechanism for the calibration of resultant exiting thermal air stream energy employing a rigid frame device for insertion of specifically designed thermal mass. In addition, the apparatus provides a mechanism for the uniform injection of chemical spray and/or gaseous elements into the multi-duct exiting and/or entering manifolds.
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During the past forty-five years there has been considerable activity in the art of delayed response solar heating systems employing water mass and water with anti-freeze as a fluid energy retention and transfer medium. These fluid operable systems have day long net harvest energy efficiencies reduced. by: start-up pre-heat lag of the fluid mass required for usable temperature gradients, lack of response to low level diffuse and reflected radiation, lack of response to prolonged periods of intermediate variable cloud cover, local geometric interference, loss of specific heat capacity when employing water additives, plus a need for high electric pump power.
The present invention harvests increased net usable solar energy received throughout the full solar day period by adding easily installed prefabricated, pre-calibrated linear thermal mass elements into the air streams, variable when required, of conventional light air transfer medium solar collector systems employed for application of direct air requirements serving space heating, moderate temperature water heating, process heating, plus crop drying of terrestrial and water based food and energy products, with air yielding temperatures of up to 185 degrees Fahrenheit. This invention will raise day long efficiency to above 60%. The present invention also provides an acceptable multi-duct air exiting manifold for introduction of humidity or gaseous vapors into the leaving air stream when required. Night sky radiation cooling is implemented when atmospherically clear day is available.
Fluid systems have high initial cost, complex equipment, double heat exchanges and operating complication requiring continued cold weather protection adjustment and maintenance to prevent leakage. Many employ drain-down procedures when not in operation. Throughout rural and third world countries where water is not plentiful, water systems are not practical. These factors reduce water systems cost effectiveness and in some areas, preclude implementation of water based systems.
Conversely, a light air mass transfer medium solar collector system with a lightweight metal absorber plate will respond with a thermal energy yield almost immediately, when activated from reception of even low atmospheric quantities of direct, diffuse, and reflected solar radiation emanating from a broad range of solar radiation, alternative on and off cloud free sky, hazy and locally hourly changing conditions. As a result, during the solar day period the immediately activated response of air mass systems with useable thermal energy yields greater than that of heavy mass slow response water systems. The light air mass also efficiently facilitates night sky radiation cooling when clear atmosphere conditions are applicable.
But the air transfer thermal collector air streams output is often at a lower thermal gradation of uneven energy flow and of variable temperatures limiting the air systems full potential for day long energy delivery. Higher efficiency, more uniform temperature and broader application can be achieved by selectively pre-calibrated air flow through confined passageways lined with introduced selected thermal elements of rigid irregularly shaped friction generating surfaced mass in varying positions that through direct turbulent contact will more fully regulate the thermal energy content and temperature graident of the outfall. The resultant effect of the use of tailored interchangeable, variable turbulent generating mass linings, when tested with different velocity air streams, and acted upon by varying solar input, allow for pre-calibration tests employing different linings for different solar conditions and application prior to a particular systems manufactured installation. The pre-designed line of elements are introduced into the full length of the collector air stream duct as a single fused together rigid chain for easy test installation and removal and for easy further introduction into the linear rigid mass manufactured, custom designed, solar collector system product.
Claims
1. The apparatus of claim 1 wherein each air solar collector's elongated linear ducts are implemented with thermodynamically interacting selected rigid thermal mass element configurations, with said elements selectively physically in contact with the solar radiation absorber plate and surrounding surfaces to manipulate the flow of the thermal energy into a calibrated air stream so as to achieve maximum immediate energy transmission for thermal mass energy absorption and retention for timed energy release to optimally utilize daily solar radiation's thermal elevations and night sky solar radiation cooling when atmospherically possible.
2. The apparatus of claim 2 is implementation of rigid support carrying devices of non deterioration material capable of slide in carrying thermal mass elements up to fully into the entire length of air solar collector ducts so as to allow for laboratory testing and following general field implementation of selected mass configurations manipulating energy in the air stream to address local environmental conditions and intended application needs.
3. The apparatus of claim 3 is to provide a mechanism for the uniform injection of chemical spray and/or gaseous elements into the multi-duct exiting and/or entering manifolds of an air solar collector to create a required applicable gaseous mixture uniform exiting air stream if and when required for a designated application.
Type: Application
Filed: Jan 4, 2019
Publication Date: Jul 9, 2020
Inventor: Douglas A. Wilke (Glen Head, NY)
Application Number: 16/350,766