Abstract:
A pan structure for bonding solar modules installed on a target position is provided. The pan structure includes a plate member configured to be disposed across a spacing between two rail structures for mounting one or more solar modules. Additionally, the pan structure includes a pair of edge members configured to couple the plate member respectively with the two rail structures. Each of the pair of edge members has a first ledge characterized to be electrically conductive and configured to be supported by one of the two rail structures and a second ledge connected the first ledge to the plate member to keep the plate member a distance below the first ledge. Moreover, the pan structure includes a plurality of contact elements spatially distributed along the first ledge for bonding both the one or more solar modules and the rail structures for electric grounding.
Abstract:
A user display for a healthy home or like building structure. The user display includes a hardware housing and a display device coupled to the hardware housing. The user display further includes a plurality of graphical objects corresponding respectively to a plurality of different loads numbered from a through N, where N is an integer greater than 1. The loads can include, among others, air conditioning, water, heat, electricity, swimming pool, and others. Each of the graphical objects is displayed in a common unit of measurement and comprises a total demand portion and a fraction of renewable energy portion.
Abstract:
A rack assembly is provided for mounting solar modules over an underlying body. The rack assembly may include a plurality of rail structures that are arrangeable over the underlying body to form an overall perimeter for the rack assembly. One or more retention structures may be provided with the plurality of rail structures, where each retention structure is configured to support one or more solar modules at a given height above the underlying body. At least some of the plurality of rail structures are adapted to enable individual rail structures o be sealed over the underlying body so as to constrain air flow underneath the solar modules. Additionally, at least one of (i) one or more of the rail structures, or (ii) the one or more retention structures are adjustable so as to adapt the rack assembly to accommodate solar modules of varying forms or dimensions.
Abstract:
A mounting system is provided for solar modules with a compressable retention structure for solar modules. The retention structure may interleave a upper and lower rail that provides a shelf or other support structure in order to hold a solar module or panel in an operative position. The upper and lower rails may be compressed towards one another in order to cause the support structure to retain the solar modules or panels.
Abstract:
A mounting system is provided for supporting equipment such as solar module arrays on a rooftop or other underlying surface. The mounting system includes a pipe, and a grasp section. These couple to a base that is extended into or otherwise integrated with the underlying surface. The pipe may be coupled so as to extend a height from the underlying surface. The grasp section is coupled to a top section of the pipe and is structured to secure to a section of the solar module array when the solar module array is installed on the underlying surface.
Abstract:
A frame assembly is provided for a solar module. The frame assembly includes a plurality of frame members that are structured to collectively support and hold a first solar panel. At least one of the plurality of frame members is structured to adjoin a frame member of a second solar module in forming a joining with the frame member of the second solar module over a length where the frame member of the first and second solar module adjoin.
Abstract:
A rack assembly is provided for mounting solar modules over an underlying body. The rack assembly may include a plurality of rail structures that are arrangeable over the underlying body to form an overall perimeter for the rack assembly. One or more retention structures may be provided with the plurality of rail structures, where each retention structure is configured to support one or more solar modules at a given height above the underlying body. At least some of the plurality of rail structures are adapted to enable individual rail structures to be sealed over the underlying body so as to constrain air flow underneath the solar modules. Additionally, at least one of (i) one or more of the rail structures, or (ii) the one or more retention structures are adjustable so as to adapt the rack assembly to accommodate solar modules of varying forms or dimensions.
Abstract:
A mounting system is provided for supporting equipment such as solar module arrays on a rooftop or other underlying surface. The mounting system includes a pipe, and a grasp section. These couple to a base that is extended into or otherwise integrated with the underlying surface. The pipe may be coupled so as to extend a height from the underlying surface. The grasp section is coupled to a top section of the pipe and is structured to secure to a section of the solar module array when the solar module array is installed on the underlying surface.
Abstract:
A frame assembly is provided for a solar module. The frame assembly includes a plurality of frame members that are structured to collectively support and hold a first solar panel. At least one of the plurality of frame members is structured to adjoin a frame member of a second solar module in forming a joining with the frame member of the second solar module over a length where the frame member of the first and second solar module adjoin.
Abstract:
A novel method for monitoring the operation of a solar thermal system such as the healthy home system or the like. The present device includes a hardware housing with a processor device coupled to a bus and one or more memory devices. The processor device can be coupled to one or more input devices wherein the one or more input devices are coupled to at least the solar array. The input devices can be coupled to the electric panel, the space heater, the water heater, as well as other components of the healthy home. The method includes a variety of steps such as establishing connection to associated hardware in the healthy home system, running diagnostic checks to determine system health, validating acquired data, and displaying the data through text display and graphical illustrations. The method also includes updating the system information according to a schedule scheme such as a polling scheme, interrupt scheme, or others. These and possibly other steps can provide an easy and cost effective means of monitoring a healthy home's system operation.