Methods and apparatus for the attachment of objects to buildings
The load-bearing object-to-building attachment system addresses the challenges of attaching balconies by using a system of interfaces and load-bearing members that intermediates the load from the balcony to the building's primary support structure, reducing complexity and enhancing design flexibility and thermal efficiency.
Patent Information
- Application Number
- PCT/US2023/085478
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2023-12-21
- Publication Date
- 2025-06-26
AI Technical Summary
Conventional methods for attaching balconies to buildings require close coordination among various trades, lead to increased costs, quality deficiencies, and schedule delays, and result in thermal inefficiencies and restricted design flexibility.
A load-bearing object-to-building attachment system that includes a load-bearing building-exterior object attachment interface, a building outside-to-inside load-bearing member, a building primary-support-structure-intermediated load-bearing building-interior attached-object support structure, and a building-interior load transfer interface, which allows for the attachment of objects like balconies without direct connection to the primary support structure.
This system reduces the complexity and cost of attaching objects to buildings by minimizing the need for direct connections to the primary support structure, enhancing design flexibility, and improving thermal efficiency.
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Figure US2023085478_26062025_PF_FP_ABST
Abstract
Description
[0001]METHODS AND APPARATUS FOR THE ATTACHMENT OF OBJECTS TO BUILDINGS TECHNICAL FIELD Embodiments of the present inventive technology may involve methods and apparatus to attach objects to buildings. While objects of various kinds as may be used in building construction and like trades are within the scope of the disclosure of the inventive technology, the inventive technology may represent an improvement in the manner by which balconies may be attached to buildings. BACKGROUND The construction of buildings and similar structures often may entail the attachment of objects to the exterior of such buildings or structures. A common example of such an object may be a balcony. However, despite the frequency with which the attachment of balconies may occur in the construction of buildings and other such structures, conventional ways of attaching balconies to buildings or other structures may involve a number of substantial drawbacks and disadvantages. A substantial drawback of attaching balconies to buildings using conventional techniques may be that balconies may commonly be attached directly to a building’s primary support structure, such as directly to a building’s primary support column, directly to a building’s structural concrete, or directly to a building’s structural steel. One disadvantage of such direct attachment may be the necessity of close coordination among various disparate trades responsible for various aspects of the building’s primary support structure and the installation of the balcony, in as much as the interface between the balcony framing and the building’s primary support structure must be structurally compatible. These trades may include architectural and structural designers, the building contractor or contractors, the supplier or suppliers furnishing the primary structure, the supplier or suppliers furnishing the balcony, and the like. In practice, such coordination efforts often may be problematic and may result in added cost, quality deficiencies, and schedule delays. Another disadvantage of such direct attachment may be the necessity of modifying the building’s primary structure at the point of attachment to accommodate the balcony connection. Such modifications may involve increasing or reinforcing the size or strength of such building primary structure, making or installing special connections to facilitate the attachment of the balcony, and so forth. For example, attaching a balcony directly to a building’s primary support column may tend to create a moment load at the column, possibly requiring the addition of moment-resisting connections at the primary building column. The addition of such connections or the making of other kinds of modifications that frequently may be required when attaching balconies directly to a building’s primary support structure may increase the cost and complexity of the design and construction of such building primary support structure. A further disadvantage of such direct attachment may be that the connection of the balcony to the building may need to be made at the location at which the building’s primary support structure may be available. This may restrict or limit the locations at which balconies may be placed and may reduce flexibility in building design. For example, in some cases involving directly attaching balconies to building primary support columns, the ends of the balconies may be required to be aligned in plan with the location of the primary support columns. Yet another disadvantage of such direct attachment may be that the connection may be subject to building code or other government or regulatory requirements applicable to building primary support structure, in as much as the connection is made directly at the building primary support structure. For example, in some cases the connection may require applied fireproofing or other structural or safety measures to the same degree as may be required for the building primary support structure. Compliance with such building code or other government or regulatory requirements pertaining to building primary support structure may increase the costs and the complexity of the design and construction of such connections. A still further disadvantage of such direct attachment may be the creation of heat loss, thermal leaks, or other thermal inefficiencies at the point of attachment to the building’s primary support structure. Mitigating such heat loss, thermal leaks, or other thermal inefficiencies may incur increased costs and design or construction complexity in as much as such mitigation may be complicated by the needs and requirements of performing such mitigation directly at the building’s primary support structure. While the foregoing drawbacks and disadvantages may have been described with respect to balconies and buildings, it may be appreciated that similar and analogous drawbacks and disadvantages may be incurred for similar and analogous objects and structures as may be encountered in building, engineering, and construction practices and trades generally. The foregoing problems related to conventional attachment of objects to buildings may represent a long-felt need for an effective solution to the same. While some of the implementing elements may have been available, actual attempts to meet this need may have been lacking to some degree. This may have been due to a failure of those having ordinary skill in the art to fully appreciate or understand the nature of the problems and challenges involved. As a result of this potential lack of understanding, attempts to meet these long-felt needs may have failed to effectively solve one or more of the problems or challenges here identified. These attempts may even have led away from the technical directions taken by the present inventive technology and may even result in the achievements of the present inventive technology being considered to some degree an unexpected result of the approach taken by some in the field. DISCLOSURE OF THE INVENTION In some embodiments, an object of the inventive technology may be to provide a load- bearing object-to-building attachment system having at least one load-bearing building-exterior object attachment interface, at least one building outside-to-inside load-bearing member configured to be disposed through an exterior surface of an outer wall of a building and to which said load-bearing building-exterior object attachment interface is configured to be joined at a building-exterior portion of said building outside-to-inside load-bearing member, a building primary-support-structure-intermediated load-bearing building-interior attached-object support structure to which said building outside-to-inside load-bearing member configured to be disposed through an exterior surface of an outer wall of said building is configured to be joined at a building- interior portion of said building outside-to-inside load-bearing member, and at least one building- interior load transfer interface of said building primary-support-structure-intermediated load- bearing building-interior attached-object support structure configured to transfer a load of said object to a building primary support structure. In some embodiments, an object of the inventive technology may be to provide a method for bearing a load of an object attached to a building comprising the steps of bearing a load of said object at a building exterior with at least one object attachment interface, bearing said load of said object through an exterior surface of an outer wall of said building with at least one outside-to-inside member, intermediating said load of said object from a building primary support structure with an attached object support structure at a building interior, and transferring said intermediated load of said object to said building primary support structure with at least one load transfer interface within said building interior. Naturally, further objects of the inventive technology will become apparent from the description and drawings below. BRIEF DESCRIPTION OF THE DRAWINGS Fig. 1 shows a non-limiting exploded-view example of a load-bearing object-to-building attachment system in an embodiment. Fig.2 shows a non-limiting assembled-view example of a load-bearing object-to-building attachment system in an embodiment. Fig. 3 shows a non-limiting example of a load-bearing object-to-building attachment system in another embodiment. Fig. 4 shows a non-limiting example of a load-bearing object-to-building attachment system in another embodiment. Fig. 5 shows a non-limiting example of a load-bearing object-to-building attachment system in a bearing wall embodiment. Fig. 6 shows a non-limiting example of a load-bearing object-to-building attachment system in a curtain wall embodiment. Fig. 7a shows a non-limiting example of a front view of a vertical tolerance movement connection in a bearing wall embodiment. Fig. 7b shows a non-limiting example of a side view of a vertical tolerance movement connection in a bearing wall embodiment. Fig. 8 shows a non-limiting example of a side view of a vertical tolerance movement connection in a curtain wall embodiment. Fig.9 shows a non-limiting example of an object, a load-bearing building-exterior object attachment interface, building outside-to-inside load-bearing members, and a building primary- support-structure-intermediated load-bearing building-interior attached-object support structure in an embodiment. Fig.10 shows a non-limiting example of an object, a load-bearing building-exterior object attachment interface, building outside-to-inside load-bearing members, and a building primary- support-structure-intermediated load-bearing building-interior attached-object support structure in another embodiment. Fig.11 shows a non-limiting example of an object, a load-bearing building-exterior object attachment interface, building outside-to-inside load-bearing members, and a building primary- support-structure-intermediated load-bearing building-interior attached-object support structure in another embodiment. Fig.12 shows a non-limiting example of an object, a load-bearing building-exterior object attachment interface, building outside-to-inside load-bearing members, and a building primary- support-structure-intermediated load-bearing building-interior attached-object support structure in another embodiment. Fig.13 shows a non-limiting example of an object, a load-bearing building-exterior object attachment interface, a building outside-to-inside load-bearing member, and a building primary- support-structure-intermediated load-bearing building-interior attached-object support structure in another embodiment. MODE(S) FOR CARRYING OUT THE INVENTION It should be understood that embodiments include a variety of aspects, which may be combined in different ways. The following descriptions are provided to list elements and describe some of the embodiments of the application. These elements are listed with initial embodiments; however, it should be understood that they may be combined in any manner and in any number to create additional embodiments. The variously described examples and preferred embodiments should not be construed to limit the embodiments of the application to only the explicitly described systems, techniques, and applications. The specific embodiment or embodiments shown are examples only. The specification should be understood and is intended as supporting broad claims as well as each embodiment, and even claims where other embodiments may be excluded. Importantly, disclosure of merely exemplary embodiments is not meant to limit the breadth of other more encompassing claims that may be made where such may be only one of several methods or embodiments which could be employed in a broader claim or the like. Further, this description should be understood to support and encompass descriptions and claims of all the various embodiments, systems, techniques, methods, devices, and applications with any number of the disclosed elements, with each element alone, and also with any and all various permutations and combinations of all elements in this or any subsequent application. Some embodiments of the inventive technology described herein may describe certain items, elements, or things as being joined, attached, connected, or the like. Such states of being joined, attached, connected, or the like should be understood as encompassing both direct and indirect joints, attachments, connections, or the like, unless the meaning, context, necessity, or advantageous interpretation of such description suggests otherwise. Now with reference primarily to Figs. 1-6, embodiments of the present inventive technology may include a load-bearing object-to-building attachment system (1) and a method for bearing a load of an object attached to a building. A building in various embodiments may have a building primary support structure (13), which may be the structural members of the building that hold the building up and resist loads that the building may be subjected to, such that removal of building primary support structure (13) may tend to cause the building to collapse or otherwise fail in whole or in part. A building in various embodiments also may have an outer wall (4), which may have an exterior surface (3) facing the outside of the building, an interior surface (6) facing the interior of the building, and a wall space (7) between the two surfaces. The wall space (7) may be considered as being inside the building in as much as it is inside of the exterior surface (3). An object (5) that may be attached to a building in embodiments may be any as may be suitable consistent with the inventive principles discussed herein. For example, in various embodiments such an object (5) or objects (5) may be one or more planters, one or more solar panels, one or more wind turbines, HVAC equipment, signage, one or more billboards, one or more antennae, telecommunications equipment, smart building technology equipment, machinery, storage, one or more green walls, one or more vertical gardens, lighting, and the like. In some embodiments, an object (5) or objects (5) may a balcony or balconies. In some embodiments, the system (1) may include at least one load-bearing building- exterior object attachment interface (2). This may be the location for interconnection between the object to be attached to the building and the system (1). Such an interface (2) may be located at an exterior of the building, for example, outside of an exterior surface (3) of an outer wall (4) of such a building, and may be able to bear, carry, and / or transmit some or all of the load of the object (5). Various embodiments may involve attaching the object (5) to the building with one or more such interfaces (2), and it may be appreciated that the attachment of the object (5) to the building may be exclusively through such an interface (2) or interfaces (2), and that the object (5) otherwise may be freely suspended in space at the exterior of the building. A method in various embodiments may involve bearing a load of such an object (5) at a building exterior (15) with at least one object attachment interface (2). A load-bearing building-exterior object attachment interface (2) may be any as may be suitable consistent with the inventive principles discussed herein. For example, in various embodiments such an interface (2) or interfaces (2) may be or have one or more object attachment interface elements (30) such as one or more posts, one or more cables, one or more rods, one or more hangers, one or more hooks, one or more anchors, one or more brackets, one or more plates, one or more tubes, one or more C sections, one or more I sections, one or more flanges, one or more angles, one or more bolts, one or more butt plates, and the like. Object attachment interface elements (30) may be straight, curved, angled, or the like to the degree permitted by any such object attachment interface element (30). Embodiments may involve object attachment interface elements (30) that may be one or more sub-flooring connections (such as wherein the interface may be joined to a building outside-to-inside load-bearing member below a flooring structure) or one or more supra-flooring connections (such as wherein the interface may be joined to a building outside-to-inside load-bearing member above a flooring structure). In some embodiments, an object attachment interface element (30) may be one or more balcony posts and / or one or more balcony hangers. Some embodiments may involve one or more interfaces (2) being one or more building- primary-support-structure-exclusive interfaces (20). Such building-primary-support-structure- exclusive interfaces (2) may be such as wherein the interface (2) may not be attached or connected directly to the building primary support structure (13), such as a primary building column or the like. In some embodiments, the interface (2) may be one piece, which may include any or any combination of object attachment interface elements (30) integrated into a single piece to the degree any such element (30) may be so capable, and in some embodiments the interface (2) may be an assembly of multiple pieces joined together, such as any or any combination of object attachment interface elements (30) joined together into an assembly to the degree any such elements (30) may be so capable. As mentioned, a load-bearing building-exterior object attachment interface (2) may be any as may be suitable consistent with the inventive principles discussed herein. Figs.9-13 show non- limiting illustrative examples of such interfaces (2) in some embodiments providing some examples of some aspects or characteristics that such interfaces (2) may have as described herein. The system (1) in embodiments may have at least one building outside-to-inside load- bearing member (8) configured to be disposed through an exterior surface (3) of an outer wall (4) of a building. Such a member (8) may bear, carry, and / or transmit some or all of the load of the object (5) from the outside of the building to the inside of the building through the exterior surface (3) of the outer wall (4) of the building, which may involve in some embodiments bearing, carrying, and / or transmitting the load of the object (5) into wall space (7). Various embodiments may involve bearing, carrying, and / or transmitting such load of the object (5) with one or more such members (8), and it may be appreciated that such bearing, carrying, and / or transmitting of such load may be exclusively through such member (8) or members (8). A method in various embodiments may involve bearing a load of such an object (5) through an exterior surface (3) of an outer wall (4) of a building with at least one outside-to-inside member (8). The configuration of the member (8) to be disposed through an exterior surface (3) of an outer wall (4) of a building may be done in any manner suitable consistent with the inventive principles discussed herein. For example, in various embodiments, the member (8) may be or have one or more member elements (31) such as one or more beams, one or more tubes, one or more plates, one or more brackets, one or more flanges, one or more C sections, one or more I sections, one or more angles, one or more horizontally disposed members, one or more members disposed at a right angle to a building primary-support-structure-intermediated load-bearing building- interior attached-object support structure (9), and the like. In some embodiments, a member (8) may be one piece, which may include any or any combination of member elements (31) integrated into a single piece to the degree any such element (31) may be so capable, and in some embodiments the member (8) may be an assembly of multiple pieces joined together, such as any or any combination of member elements (31) joined together into an assembly to the degree any such elements (31) may be so capable. In embodiments, the building outside-to-inside load-bearing member (8) may be a member (8) to which a load-bearing building-exterior object attachment interface (2) is configured to be joined at a building-exterior portion of the building outside-to-inside load-bearing member (8). By virtue of its configuration as disposed through an exterior surface (3) of an outer wall (4) of a building, the member (8) may have a portion that is exterior of the building, and the interface (2) may be joined to the member (8) at such exterior portion. The configuration of the load-bearing building-exterior object attachment interface (2) to be joined at a building-exterior portion of a building outside-to-inside load-bearing member (8) may be done in any manner suitable consistent with the inventive principles discussed herein. In some embodiments, an interface (2) may be its own piece or assembly, a member (8) may be its own piece or assembly, and such interface (2) joined to such member (8) may constitute such two pieces or assemblies joined together. In other embodiments, an interface (2) joined to a member (8) may be a single piece, as wherein one portion of the piece may be the interface (2) and another portion of the piece may be the member (8). In such embodiments, the seamless integration of the single piece between the interface (2) and the member (8) may be understood as a member (8) to which an interface (2) is configured to be joined. The system (1) in embodiments may have a building primary-support-structure- intermediated load-bearing building-interior attached-object support structure (9). Such a structure (9) may be located at the interior of the building, such as interior of an exterior surface (3) of an outer wall (4) of the building, within a wall space (7) of the building, or the like, and may support the object (5) attached to the building, such as by bearing, carrying, and / or transmitting some or all of a load of the object (5). Intermediation of the structure (9) from the building’s primary support structure may involve disposing it between the object (5) and the primary support structure of the building, such as wherein the object (5) may not be connected (directly or indirectly) to the building’s primary support structure, but rather may be connected (directly or indirectly) to the structure (9), which in turn may be connected directly or indirectly to the building’s primary support structure, or such as wherein some or all of the load of the object (5) may not be transmitted (directly or indirectly) to the primary support structure of the building, but rather may be transmitted (directly or indirectly) to the structure (9), which in turn may transmit it directly or indirectly to the building’s primary support structure). By being intermediated, the structure (9) may be seen to bear some or all of the load of the object (5) prior to the bearing of such load by the building’s primary support structure (13). A method in various embodiments may involve intermediating a load of such object (5) from a building primary support structure (13) with an attached object support structure (9) at a building interior (14). In some embodiments, the structure (9) may be one to which a building outside-to-inside load-bearing member (8) may be configured to be joined at a building-interior portion of the member (8). By virtue of its configuration as disposed through an exterior surface (3) of an outer wall (4) of a building, the member (8) may have a portion that is in the interior of the building, and the member (8) may be joined to the structure (9) at such interior portion. The system (1) in embodiments may have at least one building-interior load transfer interface (10) of a building primary-support-structure-intermediated load-bearing building-interior attached-object support structure (9) configured to transfer a load of an object (5) to a building primary support structure (13). Each such interface (10) may be a location of interconnection between the structure (9) and the building’s primary support structure (13). Such an interface (10) may be located within the interior of the building, for example, inside of an exterior surface (3) of an outer wall (4) of such a building, within a wall space (7) of such a building, and the like, and may be able to bear, carry, and / or transmit some or all of the load of the object (5), which in embodiments may be such a load of object (5) that has been intermediated by the structure (9). Various embodiments may involve transferring such a load of the object (5) to the building’s primary support structure (13) with one or more such interfaces (10), and it may be appreciated that such transfer of such load of the object (5) in embodiments may be done exclusively through such an interface (10) or interfaces (10). A method in various embodiments may involve transferring an intermediated load of such object (5) to a building primary support structure (13) with at least one load transfer interface (10) within a building interior (14). The configuration of a building-interior load transfer interface (10) to transfer a load of an object (5) to a building primary support structure (13) may be done in any manner suitable to transfer such load consistent with the inventive principles discussed herein, and may be of said structure (9) in any manner suitable to transfer such load consistent with the inventive principles discussed herein, such as being formed as a part of the structure (9), being a component attached to the structure (9), and the like. Examples of an interface (10) in some embodiments may include a connection such as a bracket, a plate, a bolt, an expansion bolt, an anchor bolt, a screw, a powder actuated fastener, a weld, a secondary bracket, a structural adhesive, and the like. A building primary-support-structure-intermediated load-bearing building-interior attached-object support structure (9) may be of any kind suitable consistent with the inventive principles discussed herein. For example, in some embodiments the structure (9) may be a stub column, a partial height column, a brace, a sloped beam, a diagonal framing element, a girt, a strut, a horizontal framing element, and the like. In some embodiments, a building primary-support-structure-intermediated load-bearing building-interior attached-object support structure (9) may have or be one or more posts, which may include a vertical post or posts or a substantially vertical post or posts. Such posts may be of any kind suitable consistent with the inventive principles discussed herein. In some embodiments, the posts may be hollow, a hollow structural section, or hollow structural steel. The post or posts may be located within a building interior (14), and in some embodiments may be a post or posts disposed between an exterior surface (3) of an outer wall (4) of a building and an interior surface (6) of the outer wall (4) of the building. A hollow post may be configured to receive one or more building outside-to-inside load-bearing members (8) therewithin. A building-interior load transfer interface (10) for such a post or posts may include a post- to-floor connection (22) or connections (22) and / or a post-to-overhead connection (21) or connections (21). Such connections may serve to connect the ends of the post or posts to a floor structure (24) or an overhead structure (25) respectively. In embodiments, the floor structure (24) may be a building primary support structure (13) and the overhead structure (25) (which may be, for example, the floor structure (24) of the next-above story of the building or the roof structure for the building) may be a building primary support structure (13), and a load of the object (5) may be transferred to the building’s primary support structure (13) in this manner. A method in various embodiments may involve transferring an intermediated load of an object (5) to a building primary support structure (13) with at least one post-to-overhead connection (21) and transferring an intermediated load of an object (5) to a building primary support structure (13) with at least one post-to-floor connection (22). In some embodiments, a building outside-to-inside load-bearing member (8) may be a building primary-support-structure thermal efficiency conservation member (8). The member (8) may conserve a thermal efficiency of the building’s primary support structure (13) by avoiding modifications, connections, or other alterations to the building’s primary support structure (13) that might tend to incur heat loss, thermal leaks, or other thermal inefficiencies. These may be avoided in as much as the member (8) may not be attached directly to a building primary support structure (13), as may be discussed elsewhere herein. A method in various embodiments may involve conserving a thermal efficiency of a building primary support structure (13). The member (8) in embodiments also may have, be or comprise thermal insulation. For example, in some embodiments such thermal insulation may be a low heat conductivity material of the member (8) itself, such as stainless steel or the like, and in some embodiments such thermal insulation may be a low heat conductivity sleeve (11) disposed around the member (8), such as a fiberglass sleeve or the like. Making the member (8) comprise thermal insulation again may tend to conserve a thermal efficiency of the building’s primary support structure (13) by avoiding the need to provide such insulation at the building primary support structure (13), and instead providing it at the location of the member (8). A method in various embodiments may involve thermally insulating an outside-to-inside member (8), which in some embodiments may involve using an outside-to-inside member (8) having a low heat conductivity material, such as stainless steel, and which in some embodiments may involve disposing a low heat conductivity sleeve (11) around an outside-to-inside member (8), such as a fiberglass sleeve. In some embodiments, the building-interior portion of the member (8) may have a surface area minimized joint to the structure (9). This may be the location or locations at which the member (8) and the structure (9) are joined done so as to minimize the surface area of contact between the member (8) and the structure (9), which may serve to facilitate the transfer of a load of an object (5) from the member (8) to the structure (9). For example, a surface area minimized joint in some embodiments may be a tapered end (19) of the building-interior portion of the member (8), and in some embodiments may be one or more interposed connectors (20) between the building-interior portion of the member (8) and structure (9). A tapered end (19) in some embodiments may tend to reduce the volume of the building-interior portion of the member (8) so that there is reduced surface area to make contact at the joint, and an interposed connector (20) in some embodiments may bridge or otherwise be situated between the member (8) and the structure (9) so that the surface area of connection is via the interposed connector (20). An interposed connector (20) may be of any kind suitable consistent with the inventive principles discussed herein, and in various embodiments may be a bolt, a nut, a screw, a tapped connection, and the like. A surface area minimized joint in embodiments may have a joint surface area of less than or equal to two square inches in some embodiments. A method in various embodiments may involve minimizing a surface area joint (18) of an outside-to-inside member (8) to an attached object support structure (9) at a building interior (14), which in some embodiments may involve using an outside-to-inside member having a tapered end (19), which in some embodiments may involve interposing at least one connector (20) between an outside-to-inside member (8) and an attached object support structure (9), and which in some embodiments may involve using a joint surface area of less than or equal to two square inches. In some embodiments, a building outside-to-inside load-bearing member (8) may be configured to create an object-to-building clearance gap (16). This may be a gap separating the object (5) from the exterior of the building except for where it is joined to one or more members (8), for example so that the object (5) may not abut, rest, or otherwise contact the building, but rather may be attached to the building solely at such one or more members (8). A method in various embodiments may involve creating an object-to-building clearance gap (16). In some embodiments, the system (1) may have an attached-object leveler (12). The leveler (12) may provide adjustability to level an object (5) attached to a building and may be of any kind suitable to level the object (5) consistent with the inventive principles discussed herein. In some embodiments, the leveler (12) may be a hinge of a building outside-to-inside load-bearing member (8), a hinge of a load-bearing building-exterior object attachment interface (2), or the like. A method in various embodiments may involve leveling an object (5) attached to a building, such as leveling a hinge of an outside-to-inside member (8), leveling a hinge of an object attachment interface (2), or the like. In some embodiments, the building primary-support-structure-intermediated load-bearing building-interior attached-object support structure (9) may be a building primary-support- structure-unrestricted load-bearing building-interior attached-object support structure (9). This may be a structure (9), the location for which need not be restricted within a building interior (14) to the location or locations of the building’s primary support structure (13). For example, such a structure (9) may be a primary-building-column-unrestricted load-bearing building-interior attached-object support structure, as wherein the location of the structure (9) need not be restricted within a building interior (14) to the location or locations of the building’s primary building column or columns. A method in various embodiments may involve bearing a load of an object (5) with an attached object support structure (9) and not with a building primary support structure (13), which for example may include bearing such load of such object (5) with an attached object support structure (5) and not with a primary building column. It may be appreciated that the capability of having structure (9) not be restricted to the location of building primary support structure (13) may give great flexibility in the design and engineering for the support of one or more objects (5) to be attached to the building. For example, in some embodiments the structure (9) may be an object-aligned load-bearing building-interior attached-object support structure (9). The structure (9), the location for which need not be restricted to the building’s primary support structure (13), may be positioned in alignment with an object (5) to the needs, requirements, efficiencies, or the like of the object (5). For example, in some embodiments where the object is a balcony, such object alignment may involve aligning posts of a structure (9) to the ends of the balcony. A method in various embodiments may involve aligning an attached object support structure (9) to such object (5). More generally, the structure (9) in various embodiments may be a freely-positionable load-bearing building-interior attached-object support structure (9), as wherein the structure (9) may be able to be freely positioned within the building interior (14), not dependent on the location or locations of the building’s primary support structure (13). A method in various embodiments may involve freely positioning an attached object support structure (9) within a building interior (14) clear of a building primary support structure (13). With reference primarily to Fig. 5, in some embodiments, an outer wall (4) may be a bearing wall, and a building-interior load transfer interface (10) may be a bearing wall connection (23), such as wherein the interface (10) may connect the building primary-support-structure- intermediated load-bearing building-interior attached-object support structure (9) to the building’s primary support structure (13) in the manner of a bearing wall. For example, a bearing wall connection (23) may be a vertically oriented connection to a building’s primary support structure (13), wherein such building primary support structure (13) in various embodiments may be floor structure (24) or an overhead structure (25). A method in various embodiments may involve transferring an intermediated load with a bearing wall connection (23), which may include transferring such intermediated load vertically to a building primary support structure (13). With reference primarily to Fig.6, in some embodiments, an outer wall (4) may be a curtain wall, and a building-interior load transfer interface (10) may be a curtain wall connection (26), such as wherein the interface (10) may connect the building primary-support-structure- intermediated load-bearing building-interior attached-object support structure (9) to the building’s primary support structure (!3) in the manner of a curtain wall. For example, a curtain wall connection (26) may be a horizontally oriented connection to a building’s primary support structure (13), wherein such building primary support structure (13) in various embodiments may be floor structure (24) or an overhead structure (25). A method in various embodiments may involve transferring an intermediated load with a curtain wall connection (26), which may include transferring said intermediated load horizontally to a building primary support structure (13). With reference primarily to Figs.7a, 7b, and 8, in some embodiments, a building-interior load transfer interface (10) may be a vertical movement tolerance connection. Such a connection may tolerate relative vertical movement between a building primary-support-structure- intermediated load-bearing building-interior attached-object support structure (9) and the building primary support structure (13) to which a load of an object (5) may be being transferred by the interface (10). This may, for example, allow the structure (9) to bear, carry, and / or transmit some or all of the load of the object (5) without bearing, carrying, and / or transmitting a load of the building. Stated differently, a disjunction may be created between the structure (9) and the primary building load (as distinguished, of course, from the load of the object (5)). In this manner, a vertical movement tolerance connection may be a primary building load disjunction, and a primary building load disjunction may be configured to allow the structure (9) to bear a load of the object (5) without bearing a building load. A method in various embodiments may involve tolerating a vertical movement at at least one load transfer interface (10), which may include disjoining a primary building load and which may include allowing an attached object support structure (9) to bear a load of an object (5) without bearing a building load. A vertical movement tolerance connection may be of any kind suitable consistent with the inventive principles discussed herein. In some embodiments, a structure (9) may be a post and a vertical movement tolerance connection may be a post-to-overhead connection (21) configured to create a vertical displacement gap (28). This may be a gap creating a vertical displacement distance between the post and the primary building support structure (13) to which the post may be connected. The vertical displacement gap (28) may be of any distance or dimension suitable consistent with the inventive principles discussed herein, and in some embodiments may be a displacement range or a range permitting relative displacement of the structure (9) and the building primary support structure (13) of up to and including two inches. A suitable post-to-overhead connection (21) in some embodiments may be a bracket (27) having a vertical displacement gap (28) post clearance and a corresponding slotted hole post connection (29), though of course any configuration of such a connection suitable and consistent with the inventive principles described herein may be utilized. A method in various embodiments may involve creating a vertical displacement gap (28) with a post-to-overhead connection (21). In some embodiments, one or more building-interior load transfer interfaces (10) may be a minimized number of such interfaces (10). Minimizing the number of such interfaces (10) may reduce the number of points of contact of the system (1) with a building’s primary support structure (13), which may reduce attendant costs and design and engineering complexity. Any minimized number of such interfaces (10) may be utilized consistent with the inventive principles described herein. In some embodiments, a minimized number of such interfaces (10) may be two such interfaces (10), four such interfaces (10), and no more than two such interfaces (10) per building primary-support-structure-intermediated load-bearing building-interior attached-object support structure (9). A method in various embodiments may involve minimizing the number of load transfer interfaces (10), which in embodiments may involve using two such load transfer interfaces (10), using four such load transfer interfaces (10), and using no more than two such load transfer interfaces (10) per attached object support structure (9). Returning now primarily to Figs. 1-6, in some embodiments, a load-bearing object-to- building attachment system (1) may have a moment load avoidance element. The system may avoid, prevent, or counteract a moment load that otherwise may arise from the attachment of an object (5) to a building, such as by bearing, carrying, and / or transmitting the load in a manner that avoids, prevents, or counteracts such a moment. For example, in some embodiments a moment load avoidance element may be at least a first building-interior load transfer interface (10) and at least a second building-interior load transfer interface (10) configured to transfer a load of an object (5) without creating a moment load. In some embodiments this may involve a building primary- support-structure-intermediated load-bearing building-interior attached-object support structure (9) as a substantially vertical post, a first building-interior load transfer interface (10) as a post-to- overhead connection (21) configured to transfer a load of the object (5) in a first opposed direction, and a second building-interior load transfer interface (10) as a post-to-floor connection (22) configured to transfer a load of the object (5) in a second opposed direction. It may be appreciated that transferring such load of the object (5) in opposed directions may avoid a moment load from the object (5). A method in various embodiments may involve avoiding incurring a moment load from an object (5), which may include transferring an intermediated load of an object (5) with at least a first load transfer interface (10) and at least a second load transfer interface (10) without creating a moment load, and which may include transferring a load of an object (5) in a first opposed direction with a post-to-overhead connection (21) and transferring a load of the object (5) in a second opposed direction with a post-to-floor connection (22). Now with reference to the Figures generally, in some embodiments, the load-bearing object-to-building attachment system (1) may be a self-integrated load-bearing object-to-building attachment system (1). The quality of self-integration may refer to a quality by which use of the system may be practiced with a minimal or reduced number or points or external inputs as compared to the conventional methods or techniques for which the system (1) is an improvement. Such external inputs may include, for example, the use of external hardware, the use of external expertise, and the like. A method in various embodiments may be a self-integrated process. A self-integrated load-bearing object-to-building attachment system (1) in some embodiments may be a prefabricated load-bearing object-to-building attachment system (1). All necessary hardware or other physical components of the system (1) may be manufactured in advance together or in a coordinated fashion, reducing the need to obtain parts or expertise at a job site or other point of implementation. A self-integrated process in various embodiments may involve using prefabricated components. A self-integrated load-bearing object-to-building attachment system (1) in some embodiments may be a kit. Such a kit may have all necessary hardware or other physical components needed to attach an object (5) to a building in a self-contained and organized manner, again reducing the need to obtain parts or expertise at a job site or other point of implementation. A self-integrated process in various embodiments may involve using kit components. A self-integrated load-bearing object-to-building attachment system (1) in some embodiments may be a single-applied-trade load-bearing object-to-building attachment system (1). The system (1) may require only a single trade expertise or perhaps a reduced number of trade expertises as compared to conventional methods and techniques for attaching an object (5) to a building, perhaps through standardization techniques, modularity, or other practices tending to eliminate or reduce the number of trades necessary to work with the system (1). A self-integrated process in various embodiments may involve using a single applied trade. A self-integrated load-bearing object-to-building attachment system (1) in some embodiments may be an internally-interface-isolated load-bearing object-to-building attachment system (1). All components necessary for the utilization and function of the system to attach an object (5) to a building may be isolated within the building-interior load transfer interfaces (10), such that the interfaces (10) may be the only point or points at which the system need to implicate the cost and design and engineering complexity required for connection to the building’s primary support structure. A self-integrated process in various embodiments may involve isolating a load of an object (5) internally of all load transfer interfaces (10). The utility of self-integration may be illustrated in one instance with respect to the building primary-support-structure-intermediated load-bearing building-interior attached-object support structure (9). The structure (9) provides the system (1) with its own building-interior support for a building-attached object (5) that is self-integrated with the building-exterior support provided by the system (1) (i.e., the load-bearing building-exterior object attachment interface (2)). This may eliminate a substantial complication of conventional techniques for attaching objects to buildings, which may provide implementing connections for an object, but no corresponding receiving connections at or inside of a building. In some embodiments, all elements of a load-bearing object-to-building attachment system (1) may be non-building-primary-support-structure elements. The system (1) may bear, carry, and / or transmit some or all of the load of the object (5) without itself constituting any part of a building primary support structure (13), such as a building primary support column, building primary support structural concrete, building primary support structural steel, and the like. Embodiments of a system (1) accordingly may involve all elements of the system (1) being non- building-primary-support-column elements, non-building-primary-support-structural-concrete elements, and non-building-primary-support-structural-steel elements. A method in various embodiments may involve using non-building-primary-support-structure elements, which may include using non-building-primary-support-column elements, may include using non-building- primary-support-structural-concrete elements, may include using non-building-primary-support- structural-steel elements in each said step, and the like. The load-bearing object-to-building attachment system (1) and method for bearing a load of an object attached to a building may be implemented in any embodiments, applications, and executions consistent with the inventive principles discussed herein. One exemplary embodiment may involve the following. An object (5) may be a balcony. A balcony may be an elevated platform extending from an outer wall (4) of a building. An object attachment interface (2) may be two balcony posts. The balcony posts may be vertical or substantially vertical posts located at or towards the ends of the balcony to which outside-to-inside members (8) may be connected either directly or indirectly. Outside-to-inside members (8) may be four outside-to-inside members (8) arranged as upper and lower balcony post counterpart pairs. Such arrangement may involve two such members (8) connected directly or indirectly to each such balcony post at upper and lower positions on such balcony post, such upper and lower positions located at substantially the same position on each said post. Attached-object support structures (9) may be two balcony-post aligned vertical or substantially vertical posts. These may be vertical or substantially vertical posts located inside of an exterior surface (3) of an outer wall (4) located in alignment or substantial alignment with corresponding balcony posts outside of exterior surface (3) of an outer wall (4). Load transfer interfaces (10) may be four load transfer interfaces (10) arranged as counterpart post-to-overhead connections and counterpart post-to-floor connections for each post. Another exemplary embodiment may involve the following. An object (5) may be a balcony. A balcony may be an elevated platform extending from an outer wall (4) of a building. An object attachment interface (2) may be two angled sub-flooring connections. The angled sub-flooring connections may be configured such that the position of the balcony may be maintained at or substantially at the position of a floor of the building (e.g., to permit egress and ingress of building floor occupants to and from the balcony) while having connection to outside- to-inside members (8) below the level of the same such floor. Outside-to-inside members (8) may be two outside-to-inside members (8). Attached-object support structures (9) may be two sub-flooring-connection-aligned substantially vertical posts. These may be vertical or substantially vertical posts located inside of an exterior surface (3) of an outer wall (4) located in alignment or substantial alignment with corresponding angled sub-flooring connections outside of exterior surface (3) of an outer wall (4). Load transfer interfaces (10) may be four load transfer interfaces (10) arranged as counterpart post-to-overhead connections and counterpart post-to-floor connections for each post. Another exemplary embodiment may involve the following. An object (5) may be a balcony. A balcony may be an elevated platform extending from an outer wall (4) of a building. An object attachment interface (2) may be two balcony hangers and two lower object attachment interface elements (30). The balcony hangers may be configured to connect to the balcony at or tending toward the portion of the balcony furthest away from the building and to be suspended directly or indirectly from two outside-to-inside members (8). The lower object attachment interface elements (30) may be located at or tending toward the portion of the balcony closest to the building. Outside-to-inside members (8) may be four outside-to-inside members (8) arranged as balcony hanger and lower object attachment interface element counterpart pairs. Such arrangement may involve two such members (8) connected directly or indirectly to the ends of two balcony hangers and two such members (8) connected directly or indirectly to the lower object interface attachment elements (30). Attached-object support structures (9) may be two balcony-hanger-and-lower-object- attachment-interface-element-aligned substantially vertical posts. These may be vertical or substantially vertical posts located inside of an exterior surface (3) of an outer wall (4) located in alignment or substantial alignment with corresponding positions of balcony hangers and lower object interface attachment elements (30) outside of exterior surface (3) of an outer wall (4). Load transfer interfaces (10) may be four load transfer interfaces (10) arranged as counterpart post-to-overhead connections and counterpart post-to-floor connections for each post. While the present inventive technology has been described in connection with some preferred embodiments, it is not intended to limit the scope of the inventive technology to the particular form set forth, but on the contrary, it is intended to cover such alternatives, modifications, and equivalents, as may be included within the spirit and scope of the inventive technology as defined by the statements of inventions. Examples of alternative claims may include: 1. A load-bearing object-to-building attachment system comprising: - at least one load-bearing building-exterior object attachment interface; - at least one building outside-to-inside load-bearing member configured to be disposed through an exterior surface of an outer wall of a building and to which said load-bearing building-exterior object attachment interface is configured to be joined at a building-exterior portion of said building outside-to-inside load- bearing member; - a building primary-support-structure-intermediated load-bearing building- interior attached-object support structure to which said building outside-to- inside load-bearing member configured to be disposed through an exterior surface of an outer wall of said building is configured to be joined at a building- interior portion of said building outside-to-inside load-bearing member; - at least one building-interior load transfer interface of said building primary- support-structure-intermediated load-bearing building-interior attached-object support structure configured to transfer a load of said object to a building primary support structure. 2. A load-bearing object-to-building attachment system as described in clause 1 or any other clause wherein said object comprises an object selected from one or more planters, one or more solar panels, one or more wind turbines, HVAC equipment, signage, one or more billboards, one or more antennae, telecommunications equipment, smart building technology equipment, machinery, storage, one or more green walls, one or more vertical gardens, and lighting. 3. A load-bearing object-to-building attachment system as described in clause 1 or any other clause wherein said object comprises a balcony. 4. A load-bearing object-to-building attachment system as described in clause 1 or any other clause wherein said at least one load-bearing building-exterior object attachment interface comprises a load-bearing building-exterior object attachment interface selected from a post, a cable, a rod, a hanger, a hook, an anchor, a tube, a C section, an I section, a flange, an angle, a bracket, a plate, a butt plate, a bolt, a sub-flooring connection, a supra-flooring connection, a building-primary-support- structure-exclusive interface, a one-piece interface, an assembly-of-multiple-pieces interface, and the like. 5. A load-bearing object-to-building attachment system as described in clause 1 or any other clause wherein said at least one load-bearing building-exterior object attachment interface comprises a load-bearing building-exterior object attachment interface selected from a balcony post and a balcony hanger. 6. A load-bearing object-to-building attachment system as described in clause 1 or any other clause wherein said at least one building outside-to-inside load-bearing member comprises a building outside-to-inside load-bearing member selected from a beam, a tube, a plate, a bracket, a flange, a C section, an I section, an angle, a horizontally disposed member, a one-piece member, an assembly-of-multiple- pieces member, and a member disposed at a right angle to said building primary- support-structure-intermediated load-bearing building-interior attached-object support structure. 7. A load-bearing object-to-building attachment system as described in clause 1 or any other clause wherein said at least one building outside-to-inside load-bearing member comprises a building outside-to-inside load-bearing member configured to create an object-to-building clearance gap. 8. A load-bearing object-to-building attachment system as described in clause 1 or any other clause wherein said at least one building outside-to-inside load-bearing member comprises a building primary-support-structure thermal efficiency conservation member. 9. A load-bearing object-to-building attachment system as described in clause 8 or any other clause wherein said building primary-support-structure thermal efficiency conservation member further comprises thermal insulation. 10. A load-bearing object-to-building attachment system as described in clause 9 or any other clause wherein said thermal insulation comprises a low heat conductivity material of said building primary-support-structure thermal efficiency conservation member. 11. A load-bearing object-to-building attachment system as described in clause 10 or any other clause wherein said low heat conductivity material comprises stainless steel. 12. A load-bearing object-to-building attachment system as described in clause 9 or any other clause wherein said thermal insulation comprises a low heat conductivity sleeve disposed around said building primary-support-structure thermal efficiency conservation member. 13. A load-bearing object-to-building attachment system as described in clause 12 or any other clause wherein said low heat conductivity sleeve comprises a fiberglass sleeve. 14. A load-bearing object-to-building attachment system as described in clause 1 or any other clause further comprising an attached-object leveler. 15. A load-bearing object-to-building attachment system as described in clause 14 or any other clause wherein said attached-object leveler comprises a leveler selected from a hinge of said at least one building outside-to-inside load-bearing member and hinge of said at least one load-bearing building-exterior object attachment interface. 16. A load-bearing object-to-building attachment system as described in clause 1 or any other clause wherein said building-interior portion of said building outside-to- inside load-bearing member comprises a surface area minimized joint to said building primary-support-structure-intermediated load-bearing building-interior attached-object support structure. 17. A load-bearing object-to-building attachment system as described in clause 16 or any other clause wherein said surface area minimized joint comprises a tapered end of said building-interior portion of said building outside-to-inside load-bearing member. 18. A load-bearing object-to-building attachment system as described in clause 16 or any other clause wherein said surface area minimized joint comprises at least one interposed connector between said building-interior portion of said building outside-to-inside load-bearing member and said building primary-support- structure-intermediated load-bearing building-interior attached-object support structure. 19. A load-bearing object-to-building attachment system as described in clause 18 or any other clause wherein said interposed connector comprises a connector selected from a bolt, a nut, a screw, and a tapped connection. 20. A load-bearing object-to-building attachment system as described in clause 16 or any other clause wherein said surface area minimized joint comprises a joint surface area of less than or equal to two square inches. 21. A load-bearing object-to-building attachment system as described in clause 1 or any other clause wherein said building primary-support-structure-intermediated load-bearing building-interior attached-object support structure comprises a building primary-support-structure-intermediated load-bearing building-interior attached-object support structure selected from a stub column, a partial height column, a brace, a sloped beam, a diagonal framing element, a girt, a strut, and a horizontal framing element. 22. A load-bearing object-to-building attachment system as described in clause 1 or any other clause wherein said building primary-support-structure-intermediated load-bearing building-interior attached-object support structure comprises at least one post. A load-bearing object-to-building attachment system as described in clause 22 or any other clause wherein said at least one post comprises at least one substantially vertical post. A load-bearing object-to-building attachment system as described in clause 22 or any other clause wherein said at least one building-interior load transfer interface comprises at least one building-interior load transfer interface selected from a post- to-overhead connection and a post-to-floor connection. A load-bearing object-to-building attachment system as described in clause 22 or any other clause wherein said at least one post comprises a post disposed between said exterior surface of said outer wall of said building and an interior surface of said outer wall of said building. A load-bearing object-to-building attachment system as described in clause 22 or any other clause wherein said at least one post comprises a hollow post configured to receive said at least one building outside-to-inside load-bearing member therewithin. A load-bearing object-to-building attachment system as described in clause 1 or any other clause wherein said building primary-support-structure-intermediated load-bearing building-interior attached-object support structure comprises a building primary-support-structure-unrestricted load-bearing building-interior attached-object support structure. A load-bearing object-to-building attachment system as described in clause 27 or any other clause wherein said building primary-support-structure-unrestricted load- bearing building-interior attached-object support structure comprises a primary- building-column-unrestricted load-bearing building-interior attached-object support structure. A load-bearing object-to-building attachment system as described in clause 27 or any other clause wherein said building primary-support-structure-unrestricted load- bearing building-interior attached-object support structure comprises an object- aligned load-bearing building-interior attached-object support structure. 30. A load-bearing object-to-building attachment system as described in clause 27 or any other clause wherein said building primary-support-structure-unrestricted load- bearing building-interior attached-object support structure comprises a freely- positionable load-bearing building-interior attached-object support structure. 31. A load-bearing object-to-building attachment system as described in clause 1 or any other clause wherein said at least one building-interior load transfer interface comprises a connection selected from a bracket, a plate, a bolt, an expansion bolt, an anchor bolt, a screw, a powder actuated fastener, a weld, a secondary bracket, and a structural adhesive. 32. A load-bearing object-to-building attachment system as described in clause 1 or any other clause wherein said outer wall of said building comprises a bearing wall and or any other clause wherein said at least one building-interior load transfer interface comprises a bearing wall connection. 33. A load-bearing object-to-building attachment system as described in clause 32 or any other clause wherein said bearing wall connection comprises a vertically oriented connection to a building primary support structure. 34. A load-bearing object-to-building attachment system as described in clause 33 or any other clause wherein said building primary support structure comprises a building primary support structure selected from a floor structure and an overhead structure. 35. A load-bearing object-to-building attachment system as described in clause 1 or any other clause wherein said outer wall of said building comprises a curtain wall and or any other clause wherein said at least one building-interior load transfer interface comprises a curtain wall connection. 36. A load-bearing object-to-building attachment system as described in clause 35 or any other clause wherein said curtain wall connection comprises a horizontally oriented connection to a building primary support structure. 37. A load-bearing object-to-building attachment system as described in clause 36 or any other clause wherein said building primary support structure comprises a building primary support structure selected from a floor structure and an overhead structure. 38. A load-bearing object-to-building attachment system as described in clause 1 or any other clause wherein said at least one building-interior load transfer interface comprises a vertical movement tolerance connection. 39. A load-bearing object-to-building attachment system as described in clause 38 or any other clause wherein said vertical movement tolerance connection comprises a primary building load disjunction. 40. A load-bearing object-to-building attachment system as described in clause 39 or any other clause wherein said primary building load disjunction comprises a primary building load disjunction configured to allow said building primary- support-structure-intermediated load-bearing building-interior attached-object support structure to bear a load of said object without bearing a building load. 41. A load-bearing object-to-building attachment system as described in clause 40 or any other clause wherein said building primary-support-structure-intermediated load-bearing building-interior attached-object support structure comprises a post and or any other clause wherein said vertical movement tolerance connection comprises a post-to-overhead connection configured to create a vertical displacement gap. 42. A load-bearing object-to-building attachment system as described in clause 41 or any other clause wherein said vertical displacement gap comprises a displacement range of up to and including two inches. 43. A load-bearing object-to-building attachment system as described in clause 41 or any other clause wherein said post-to-overhead connection comprises a bracket having a vertical displacement gap post clearance and a corresponding slotted hole post connection. 44. A load-bearing object-to-building attachment system as described in clause 1 or any other clause wherein said at least one building-interior load transfer interface comprises a minimized number of said building-interior load transfer interfaces. 45. A load-bearing object-to-building attachment system as described in clause 44 or any other clause wherein said minimized number of said building-interior load transfer interfaces comprises a number of said building-interior load transfer interfaces selected from two building-interior load transfer interfaces, four building-interior load transfer interfaces, and no more than two building-interior load transfer interfaces per building primary-support-structure-intermediated load- bearing building-interior attached-object support structure. 46. A load-bearing object-to-building attachment system as described in clause 1 or any other clause wherein said load-bearing object-to-building attachment system comprises a self-integrated load-bearing object-to-building attachment system. 47. A load-bearing object-to-building attachment system as described in clause 46 or any other clause wherein said self-integrated load-bearing object-to-building attachment system comprises a prefabricated load-bearing object-to-building attachment system. 48. A load-bearing object-to-building attachment system as described in clause 46 or any other clause wherein said self-integrated load-bearing object-to-building attachment system comprises a kit. 49. A load-bearing object-to-building attachment system as described in clause 46 or any other clause wherein said self-integrated load-bearing object-to-building attachment system comprises a single-applied-trade load-bearing object-to- building attachment system. 50. A load-bearing object-to-building attachment system as described in clause 46 or any other clause wherein said self-integrated load-bearing object-to-building attachment system comprises an internally-interface-isolated load-bearing object- to-building attachment system. 51. A load-bearing object-to-building attachment system as described in clause 1 or any other clause wherein all said elements comprise non-building-primary-support- structure elements. 52. A load-bearing object-to-building attachment system as described in clause 51 or any other clause wherein said non-building-primary-support-structure elements comprise non-building-primary-support-column elements. 53. A load-bearing object-to-building attachment system as described in clause 51 or any other clause wherein said non-building-primary-support-structure elements comprise non-building-primary-support-structural-concrete elements. 54. A load-bearing object-to-building attachment system as described in clause 51 or any other clause wherein said non-building-primary-support-structure elements comprise non-building-primary-support-structural-steel elements. 55. A load-bearing object-to-building attachment system as described in clause 1 or any other clause further comprising a moment load avoidance element of said load- bearing object-to-building attachment system. 56. A load-bearing object-to-building attachment system as described in clause 55 or any other clause wherein said moment load avoidance element comprises at least a first said building-interior load transfer interface and at least a second said building- interior load transfer interface configured to transfer a load of said object without creating a moment load. 57. A load-bearing object-to-building attachment system as described in clause 56 or any other clause wherein said building primary-support-structure-intermediated load-bearing building-interior attached-object support structure comprises a substantially vertical post, or any other clause wherein said first said building- interior load transfer interface comprises a post-to-overhead connection configured to transfer a load of said object in a first opposed direction, and or any other clause wherein said second said building-interior load transfer interface comprises a post- to-floor connection configured to transfer a load of said object in a second opposed direction. A load-bearing object-to-building attachment system as described in clause 1 or any other clause wherein said object comprises a balcony, or any other clause wherein said at least one load-bearing building-exterior object attachment interface comprises two balcony posts, or any other clause wherein said at least one building outside-to-inside load-bearing member comprises four building outside-to-inside load-bearing members arranged as upper and lower balcony post counterpart pairs, or any other clause wherein said building primary-support-structure-intermediated load-bearing building-interior attached-object support structure comprises two balcony-post-aligned substantially vertical posts, and or any other clause wherein said at least one building-interior load transfer interface comprises four building- interior load transfer interfaces arranged as counterpart post-to-overhead connections and counterpart post-to-floor connections for each said substantially vertical post. A load-bearing object-to-building attachment system as described in clause 1 or any other clause wherein said object comprises a balcony, or any other clause wherein said at least one load-bearing building-exterior object attachment interface comprises two angled sub-flooring connections, or any other clause wherein said at least one building outside-to-inside load-bearing member comprises two building outside-to-inside load-bearing members, or any other clause wherein said building primary-support-structure-intermediated load-bearing building-interior attached- object support structure comprises two sub-flooring-connection-aligned substantially vertical posts, and or any other clause wherein said at least one building-interior load transfer interface comprises four building-interior load transfer interfaces arranged as counterpart post-to-overhead connections and counterpart post-to-floor connections for each said substantially vertical post. A load-bearing object-to-building attachment system as described in clause 1 or any other clause wherein said object comprises a balcony, or any other clause wherein said at least one load-bearing building-exterior object attachment interface comprises two balcony hangers and two lower object attachment interface elements, or any other clause wherein said at least one building outside-to-inside load-bearing member comprises four building outside-to-inside load-bearing members arranged as balcony hanger and lower object attachment interface element counterpart pairs, or any other clause wherein said building primary-support- structure-intermediated load-bearing building-interior attached-object support structure comprises two balcony-hanger-and-lower-object-attachment-interface- element-aligned substantially vertical posts, and or any other clause wherein said at least one building-interior load transfer interface comprises four building-interior load transfer interfaces arranged as counterpart post-to-overhead connections and counterpart post-to-floor connections for each said substantially vertical post. 61. A method for bearing a load of an object attached to a building comprising the steps of: - bearing a load of said object at a building exterior with at least one object attachment interface; - bearing said load of said object through an exterior surface of an outer wall of said building with at least one outside-to-inside member; - intermediating said load of said object from a building primary support structure with an attached object support structure at a building interior; - transferring said intermediated load of said object to said building primary support structure with at least one load transfer interface within said building interior. 62. A method for bearing a load of an object attached to a building as described in clause 61 or any other clause wherein said object comprises an object selected from one or more planters, one or more solar panels, one or more wind turbines, HVAC equipment, signage, one or more billboards, one or more antennae, telecommunications equipment, smart building technology equipment, machinery, storage, one or more green walls, one or more vertical gardens, and lighting. 63. A method for bearing a load of an object attached to a building as described in clause 61 or any other clause wherein said object comprises a balcony. 64. A method for bearing a load of an object attached to a building as described in clause 61 or any other clause wherein said object attachment interface comprises an object attachment interface selected from a post, a cable, a rod, a hanger, a hook, an anchor, a tube, a C section, an I section, a flange, an angle, a bracket, a plate, a butt plate, a bolt, a sub-flooring connection, a supra-flooring connection, a building- primary-support-structure-exclusive interface, a one-piece interface, an assembly- of-multiple-pieces interface, and the like. 65. A method for bearing a load of an object attached to a building as described in clause 61 or any other clause wherein said object attachment interface comprises an object attachment interface selected from a balcony post and a balcony hanger. 66. A method for bearing a load of an object attached to a building as described in clause 61 or any other clause wherein said outside-to-inside member comprises an outside-to-inside member selected from a beam, a tube, a plate, a bracket, a flange, a C section, an I section, an angle, a horizontally disposed member, a one-piece member, an assembly-of-multiple-pieces member, and a member disposed at a right angle to said building primary-support-structure-intermediated load-bearing building-interior attached-object support structure. 67. A method for bearing a load of an object attached to a building as described in clause 61 or any other clause wherein said step of bearing said load of said object through an exterior surface of an outer wall of said building with at least one outside-to-inside member comprises the step of creating an object-to-building clearance gap. 68. A method for bearing a load of an object attached to a building as described in clause 61 or any other clause wherein said step of bearing said load of said object through an exterior surface of an outer wall of said building with at least one outside-to-inside member comprises the step of conserving a thermal efficiency of said building primary support structure. 69. A method for bearing a load of an object attached to a building as described in clause 68 or any other clause wherein said step of conserving a thermal efficiency of said building primary support structure comprises the step of thermally insulating said outside-to-inside member. 70. A method for bearing a load of an object attached to a building as described in clause 69 or any other clause wherein said step of thermally insulating said outside- to-inside member comprises the step of using an outside-to-inside member having a low heat conductivity material. 71. A method for bearing a load of an object attached to a building as described in clause 70 or any other clause wherein said low heat conductivity material comprises stainless steel. 72. A method for bearing a load of an object attached to a building as described in clause 69 or any other clause wherein said step of thermally insulating said outside- to-inside member comprises the step of disposing a low heat conductivity sleeve around said outside-to-inside member. 73. A method for bearing a load of an object attached to a building as described in clause 72 or any other clause wherein said low heat conductivity sleeve comprises a fiberglass sleeve. 74. A method for bearing a load of an object attached to a building as described in clause 61 or any other clause further comprising the step of leveling said object attached to said building. 75. A method for bearing a load of an object attached to a building as described in clause 74 or any other clause wherein said step of leveling said object attached to said building comprises a step selected from leveling a hinge of said outside-to- inside member and leveling a hinge of said object attachment interface. 76. A method for bearing a load of an object attached to a building as described in clause 61 or any other clause wherein said step of bearing said load of said object through an exterior surface of an outer wall of said building with at least one outside-to-inside member comprises the step of minimizing a surface area joint of said outside-to-inside member to said attached object support structure at said building interior. 77. A method for bearing a load of an object attached to a building as described in clause 76 or any other clause wherein said step of minimizing a surface area joint comprises the step of using an outside-to-inside member having a tapered end. 78. A method for bearing a load of an object attached to a building as described in clause 76 or any other clause wherein said step of bearing said load of said object through an exterior surface of an outer wall of said building with at least one outside-to-inside member comprises the step of interposing at least one connector between said outside-to-inside member and said attached object support structure. 79. A method for bearing a load of an object attached to a building as described in clause 78 or any other clause wherein said interposed connector comprises a connector selected from a bolt, a nut, a screw, and a tapped connection. 80. A method for bearing a load of an object attached to a building as described in clause 76 or any other clause wherein said step of minimizing a surface area joint comprises the step of using a joint surface area of less than or equal to two square inches. 81. A method for bearing a load of an object attached to a building as described in clause 61 or any other clause wherein said attached object support structure comprises an attached object support structure selected from a stub column, a partial height column, a brace, a sloped beam, a diagonal framing element, a girt, a strut, and a horizontal framing element. 82. A method for bearing a load of an object attached to a building as described in clause 61 or any other clause wherein said attached object support structure comprises at least one post. 83. A method for bearing a load of an object attached to a building as described in clause 82 or any other clause wherein said at least one post comprises at least one substantially vertical post. 84. A method for bearing a load of an object attached to a building as described in clause 82 or any other clause wherein said step of transferring comprises a step of transferring selected from transferring said intermediated load of said object to said building primary support structure with at least one post-to-overhead connection and transferring said intermediated load of said object to said building primary support structure with at least one post-to-floor connection. 85. A method for bearing a load of an object attached to a building as described in clause 82 or any other clause wherein said at least one post comprises a post disposed between said exterior surface of said outer wall of said building and an interior surface of said outer wall of said building. 86. A method for bearing a load of an object attached to a building as described in clause 82 or any other clause wherein said at least one post comprises a hollow post configured to receive said at least one outside-to-inside member therewithin. 87. A method for bearing a load of an object attached to a building as described in clause 61 or any other clause wherein said step of intermediating said load of said object from a building primary support structure with an attached object support structure at a building interior comprises the step of bearing said load of said object with said attached object support structure and not with said building primary support structure. 88. A method for bearing a load of an object attached to a building as described in clause 87 or any other clause wherein said step of bearing said load of said object with said attached object support structure and not with said building primary support structure comprises the step of bearing said load of said object with said attached object support structure and not with a primary building column. A method for bearing a load of an object attached to a building as described in clause 87 or any other clause wherein said step of bearing said load of said object with said attached object support structure and not with said building primary support structure comprises the step of aligning said attached object support structure to said object. A method for bearing a load of an object attached to a building as described in clause 87 or any other clause wherein said step of bearing said load of said object with said attached object support structure and not with said building primary support structure comprises the step of freely positioning said attached object support structure within said building interior clear of said building primary support structure. A method for bearing a load of an object attached to a building as described in clause 61 or any other clause wherein said load transfer interface comprises a connection selected from a bracket, a plate, a bolt, an expansion bolt, an anchor bolt, a screw, a powder actuated fastener, a weld, a secondary bracket, and a structural adhesive. A method for bearing a load of an object attached to a building as described in clause 61 or any other clause wherein said outer wall of said building comprises a bearing wall and or any other clause wherein said step of transferring said intermediated load comprises the step of transferring said intermediated load with a bearing wall connection. A method for bearing a load of an object attached to a building as described in clause 92 or any other clause wherein said step of transferring said intermediated load with a bearing wall connection comprises the step of transferring said intermediated load vertically to a building primary support structure. A method for bearing a load of an object attached to a building as described in clause 93 or any other clause wherein said building primary support structure comprises a building primary support structure selected from a floor structure and an overhead structure. 95. A method for bearing a load of an object attached to a building as described in clause 61 or any other clause wherein said outer wall of said building comprises a curtain wall and or any other clause wherein said step of transferring said intermediated load comprises the step of transferring said intermediated load with a curtain wall connection. 96. A method for bearing a load of an object attached to a building as described in clause 95 or any other clause wherein said step of transferring said intermediated load with a curtain wall connection comprises the step of transferring said intermediated load horizontally to a building primary support structure. 97. A method for bearing a load of an object attached to a building as described in clause 96 or any other clause wherein said building primary support structure comprises a building primary support structure selected from a floor structure and an overhead structure. 98. A method for bearing a load of an object attached to a building as described in clause 61 or any other clause wherein said step of transferring said intermediated load comprises the step of tolerating a vertical movement at said at least one load transfer interface. 99. A method for bearing a load of an object attached to a building as described in clause 98 or any other clause wherein said step of tolerating a vertical movement comprises the step of disjoining a primary building load. 100. A method for bearing a load of an object attached to a building as described in clause 99 or any other clause wherein said step of disjoining a primary building load comprises the step of allowing said attached object support structure to bear said load of said object without bearing a building load. 101. A method for bearing a load of an object attached to a building as described in clause 100 or any other clause wherein said attached object support structure comprises a post and or any other clause wherein said step of tolerating a vertical movement comprises the step of creating a vertical displacement gap with a post- to-overhead connection. 102. A method for bearing a load of an object attached to a building as described in clause 101 or any other clause wherein said vertical displacement gap comprises a displacement range of up to and including two inches. 103. A method for bearing a load of an object attached to a building as described in clause 101 or any other clause wherein said post-to-overhead connection comprises a bracket having a vertical displacement gap post clearance and a corresponding slotted hole post connection. 104. A method for bearing a load of an object attached to a building as described in clause 61 or any other clause wherein said step of transferring said intermediated load of said object to said building primary support structure with at least one load transfer interface within said building interior comprises the step of minimizing the number of said load transfer interfaces. 105. A method for bearing a load of an object attached to a building as described in clause 104 or any other clause wherein said step of minimizing the number of said load transfer interfaces comprises a step selected from using two said load transfer interfaces, using four said load transfer interfaces, and using no more than two load transfer interfaces per attached object support structure. 106. A method for bearing a load of an object attached to a building as described in clause 61 or any other clause wherein said steps comprise a self-integrated process. 107. A method for bearing a load of an object attached to a building as described in clause 106 or any other clause wherein said self-integrated process comprises using prefabricated components in each said step. 108. A method for bearing a load of an object attached to a building as described in clause 106 or any other clause wherein said self-integrated process comprises using kit components in each said step. 109. A method for bearing a load of an object attached to a building as described in clause 106 or any other clause wherein said self-integrated process comprises using a single applied trade in each said step. 110. A method for bearing a load of an object attached to a building as described in clause 106 or any other clause wherein said self-integrated process comprises isolating the load of said object internally of all said load transfer interfaces in each said step. 111. A method for bearing a load of an object attached to a building as described in clause 61 or any other clause wherein said steps comprise using non-building- primary-support-structure elements in each said step. 112. A method for bearing a load of an object attached to a building as described in clause 111 or any other clause wherein said steps of using non-building-primary- support-structure elements in each said step comprise the steps of using non- building-primary-support-column elements in each said step. 113. A method for bearing a load of an object attached to a building as described in clause 111 or any other clause wherein said steps of using non-building-primary- support-structure elements in each said step comprise the steps of using non- building-primary-support-structural-concrete elements in each said step. 114. A method for bearing a load of an object attached to a building as described in clause 111 or any other clause wherein said steps of using non-building-primary- support-structure elements in each said step comprise the steps of using non- building-primary-support-structural-steel elements in each said step. 115. A method for bearing a load of an object attached to a building as described in clause 61 or any other clause further comprising the step of avoiding incurring a moment load from said object. 116. A method for bearing a load of an object attached to a building as described in clause 115 or any other clause wherein said step of avoiding incurring a moment load from said object comprises the step of transferring said intermediated load of said object with at least a first said load transfer interface and at least a second said load transfer interface without creating a moment load. A method for bearing a load of an object attached to a building as described in clause 116 or any other clause wherein said attached object support structure comprises a substantially vertical post and or any other clause wherein said step of transferring said intermediated load of said object comprises the steps of transferring a load of said object in a first opposed direction with a post-to-overhead connection and transferring a load of said object in a second opposed direction with a post-to-floor connection. A method for bearing a load of an object attached to a building as described in clause 61 or any other clause wherein said object comprises a balcony, or any other clause wherein said at least one object attachment interface comprises two balcony posts, or any other clause wherein said at least one outside-to-inside member comprises four outside-to-inside members arranged as upper and lower balcony post counterpart pairs, or any other clause wherein said attached object support structure comprises two balcony-post aligned substantially vertical posts, and or any other clause wherein said at least one load transfer interface comprises four load transfer interfaces arranged as counterpart post-to-overhead connections and counterpart post-to-floor connections for each said substantially vertical post. A method for bearing a load of an object attached to a building as described in clause 61 or any other clause wherein said object comprises a balcony, or any other clause wherein said at least one object attachment interface comprises two angled sub-flooring connections, or any other clause wherein said at least one outside-to- inside member comprises two outside-to-inside members, or any other clause wherein said attached-object support structure comprises two sub-flooring- connection-aligned substantially vertical posts, and or any other clause wherein said at least one load transfer interface comprises four load transfer interfaces arranged as counterpart post-to-overhead connections and counterpart post-to-floor connections for each said substantially vertical post. A method for bearing a load of an object attached to a building as described in clause 61 or any other clause wherein said object comprises a balcony, or any other clause wherein said at least one object attachment interface comprises two balcony hangers and two lower object attachment interface elements, or any other clause wherein said at least one outside-to-inside member comprises four outside-to-inside members arranged as balcony hanger and lower object attachment interface element counterpart pairs, or any other clause wherein said attached-object support structure comprises two balcony-hanger-and-lower-object-attachment-interface-element- aligned substantially vertical posts, and or any other clause wherein said at least one load transfer interface comprises four load transfer interfaces arranged as counterpart post-to-overhead connections and counterpart post-to-floor connections for each said substantially vertical post. 121. A system substantially as herein described with reference to any one or more of the Figures and Description. 122. The process according to clause 61 and or any other clause further comprising any of the steps as shown in Figures 1-13, separately, in any combination or permutation. As can be easily understood from the foregoing, the basic concepts of the various embodiments of the present invention(s) may be embodied in a variety of ways. It involves both object-to-building attaching techniques as well as devices to accomplish the appropriate object-to- building attachment. In this application, the object-to-building attaching techniques are disclosed as part of the results shown to be achieved by the various devices described and as steps which are inherent to utilization. They are simply the natural result of utilizing the devices as intended and described. In addition, while some devices are disclosed, it should be understood that these not only accomplish certain methods but also can be varied in a number of ways. Importantly, as to all of the foregoing, all of these facets should be understood to be encompassed by this disclosure. The discussion included in this patent application is intended to serve as a basic description. The reader should be aware that the specific discussion may not explicitly describe all embodiments possible; many alternatives are implicit. It also may not fully explain the generic nature of the various embodiments of the invention(s) and may not explicitly show how each feature or element can actually be representative of a broader function or of a great variety of alternative or equivalent elements. As one example, terms of degree, terms of approximation, and / or relative terms may be used. These may include terms such as the words: substantially, about, only, and the like. These words and types of words are to be understood in a dictionary sense as terms that encompass an ample or considerable amount, quantity, size, etc. as well as terms that encompass largely but not wholly that which is specified. Further, for this application if or when used, terms of degree, terms of approximation, and / or relative terms should be understood as also encompassing more precise and even quantitative values that include various levels of precision and the possibility of claims that address a number of quantitative options and alternatives. For example, to the extent ultimately used, the existence or non-existence of a substance or condition in a particular input, output, or at a particular stage can be specified as substantially only x or substantially free of x, as a value of about x, or such other similar language. Using percentage values as one example, these types of terms should be understood as encompassing the options of percentage values that include 99.5%, 99%, 97%, 95%, 92% or even 90% of the specified value or relative condition; correspondingly for values at the other end of the spectrum (e.g., substantially free of x), these should be understood as encompassing the options of percentage values that include not more than 0.5%, 1%, 3%, 5%, 8% or even 10% of the specified value or relative condition. In context, these should be understood by a person of ordinary skill as being disclosed and included whether in an absolute value sense or in valuing one set of or substance as compared to the value of a second set of or substance. Again, these are implicitly included in this disclosure and should (and, it is believed, would) be understood to a person of ordinary skill in this field. Where the application is described in device-oriented terminology, each element of the device implicitly performs a function. Apparatus claims may not only be included for the device described, but also method or process claims may be included to address the functions of the embodiments and that each element performs. Neither the description nor the terminology is intended to limit the scope of the claims that will be included in any subsequent patent application. It should also be understood that a variety of changes may be made without departing from the essence of the various embodiments of the invention(s). Such changes are also implicitly included in the description. They still fall within the scope of the various embodiments of the invention(s). A broad disclosure encompassing the explicit embodiment(s) shown, the great variety of implicit alternative embodiments, and the broad methods or processes and the like are encompassed by this disclosure and may be relied upon when drafting the claims for any subsequent patent application. It should be understood that such language changes and broader or more detailed claiming may be accomplished at a later date (such as by any required deadline) or in the event the applicant subsequently seeks a patent filing based on this filing. With this understanding, the reader should be aware that this disclosure is to be understood to support any subsequently filed patent application that may seek examination of as broad a base of claims as deemed within the applicant's right and may be designed to yield a patent covering numerous aspects of embodiments of the invention(s) both independently and as an overall system. Further, each of the various elements of the embodiments of the invention(s) and claims may also be achieved in a variety of manners. Additionally, when used or implied, an element is to be understood as encompassing individual as well as plural structures that may or may not be physically connected. This disclosure should be understood to encompass each such variation, be it a variation of an embodiment of any apparatus embodiment, a method or process embodiment, or even merely a variation of any element of these. Particularly, it should be understood that as the disclosure relates to elements of the various embodiments of the invention(s), the words for each element may be expressed by equivalent apparatus terms or method terms -- even if only the function or result is the same. Such equivalent, broader, or even more generic terms should be considered to be encompassed in the description of each element or action. Such terms can be substituted where desired to make explicit the implicitly broad coverage to which embodiments of the invention(s) is entitled. As but one example, it should be understood that all actions may be expressed as a means for taking that action or as an element which causes that action. Similarly, each physical element disclosed should be understood to encompass a disclosure of the action which that physical element facilitates. Regarding this last aspect, as but one example, the disclosure of a “support” should be understood to encompass disclosure of the act of “supporting” -- whether explicitly discussed or not -- and, conversely, were there effectively disclosure of the act of “supporting”, such a disclosure should be understood to encompass disclosure of a “support” and even a “means for supporting.” Such changes and alternative terms are to be understood to be explicitly included in the description. Further, each such means (whether explicitly so described or not) should be understood as encompassing all elements that can perform the given function, and all descriptions of elements that perform a described function should be understood as a non- limiting example of means for performing that function. As other non-limiting examples, it should be understood that claim elements can also be expressed as any of: components, programming, subroutines, logic, or elements that are configured to, or configured and arranged to, provide or even achieve a particular result, use, purpose, situation, function, or operation, or as components that are capable of achieving a particular activity, result, use, purpose, situation, function, or operation. All should be understood as within the scope of this disclosure and written description. Any acts of law, statutes, regulations, or rules mentioned in this application for patent or patents, publications, or other references mentioned in this application for patent are hereby incorporated by reference. Any priority case(s) claimed by this application is hereby appended and hereby incorporated by reference. In addition, as to each term used it should be understood that unless its utilization in this application is inconsistent with a broadly supporting interpretation, common dictionary definitions should be understood as incorporated for each term and all definitions, alternative terms, and synonyms such as contained in the Random House Webster’s Unabridged Dictionary, second edition are hereby incorporated by reference. Finally, all references listed in the list of References To Be Incorporated By Reference or other information statement filed with the application are hereby appended and hereby incorporated by reference, however, as to each of the above, to the extent that such information or statements incorporated by reference might be considered inconsistent with the patenting of the various embodiments of invention(s) such statements are expressly not to be considered as made by the applicant(s). LIST OF REFERENCES TO BE INCORPORATED BY REFERENCE: U.S. PATENTS Patent Number Kind Code Issue Date Name of Patentee or Applicant of cited Document U.S. PATENT APPLICATION PUBLICATIONS Publication Number Kind Code Publication Name of Patentee or Applicant U.S. PATENT APPLICATION PUBLICATIONS Foreign Document Country Kind Publication Name of Patentee or Applicant Shanghai Housing Quality Measuring Station Cast-in Anchors, Sapphire Anchors | Sapphire Balconies. https: / / balconies.global / our- product / anchors-stubs / cast-in-anchors / #PostTension 08 / 08 / 2023. Thus, the applicant(s) should be understood to have support to claim and make claims to embodiments including at least: i) each of the object-to-building attachment devices as herein disclosed and described, ii) the related methods disclosed and described, iii) similar, equivalent, and even implicit variations of each of these devices and methods, iv) those alternative designs which accomplish each of the functions shown as are disclosed and described, v) those alternative designs and methods which accomplish each of the functions shown as are implicit to accomplish that which is disclosed and described, vi) each feature, component, and step shown as separate and independent inventions, vii) the applications enhanced by the various systems or components disclosed, viii) the resulting products produced by such processes, methods, systems or components, ix) each system, method, and element shown or described as now applied to any specific field or devices mentioned, x) methods and apparatuses substantially as described hereinbefore and with reference to any of the accompanying examples, xi) an apparatus for performing the methods described herein comprising means for performing the steps, xii) the various combinations and permutations of each of the elements disclosed, xiii) each potentially dependent claim or concept as a dependency on each and every one of the independent claims or concepts presented, and xiv) all inventions described herein. With regard to claims whether now or later presented for examination, it should be understood that for practical reasons and so as to avoid great expansion of the examination burden, the applicant may at any time present only initial claims or perhaps only initial claims with only initial dependencies. The office and any third persons interested in potential scope of this or subsequent applications should understand that broader claims may be presented at a later date in this case, in a case claiming the benefit of this case, or in any continuation in spite of any preliminary amendments, other amendments, claim language, or arguments presented, thus throughout the pendency of any case there is no intention to disclaim or surrender any potential subject matter. It should be understood that if or when broader claims are presented, such may require that any relevant prior art that may have been considered at any prior time may need to be re-visited since it is possible that to the extent any amendments, claim language, or arguments presented in this or any subsequent application are considered as made to avoid such prior art, such reasons may be eliminated by later presented claims or the like. Both the examiner and any person otherwise interested in existing or later potential coverage, or considering if there has at any time been any possibility of an indication of disclaimer or surrender of potential coverage, should be aware that no such surrender or disclaimer is ever intended or ever exists in this or any subsequent application. Limitations such as arose in Hakim v. Cannon Avent Group, PLC, 479 F.3d 1313 (Fed. Cir 2007), or the like are expressly not intended in this or any subsequent related matter. In addition, support should be understood to exist to the degree required under new matter laws -- including but not limited to European Patent Convention Article 123(2) and United States Patent Law 35 USC 132 or other such laws-- to permit the addition of any of the various dependencies or other elements presented under one independent claim or concept as dependencies or elements under any other independent claim or concept. In drafting any claims at any time whether in this application or in any subsequent application, it should also be understood that the applicant has intended to capture as full and broad a scope of coverage as legally available. To the extent that insubstantial substitutes are made, to the extent that the applicant did not in fact draft any claim so as to literally encompass any particular embodiment, and to the extent otherwise applicable, the applicant should not be understood to have in any way intended to or actually relinquished such coverage as the applicant simply may not have been able to anticipate all eventualities; one skilled in the art, should not be reasonably expected to have drafted a claim that would have literally encompassed such alternative embodiments. Further, if or when used, the use of the transitional phrases “comprising”, “including”, “containing”, “characterized by” and “having” are used to maintain the “open-end” claims herein, according to traditional claim interpretation including that discussed in MPEP § 2111.03. Thus, unless the context requires otherwise, it should be understood that the terms “comprise” or variations such as “comprises” or “comprising”, “include” or variations such as “includes” or “including”, “contain” or variations such as “contains” and “containing”, “characterized by” or variations such as “characterizing by”, “have” or variations such as “has” or “having”, are intended to imply the inclusion of a stated element or step or group of elements or steps but not the exclusion of any other element or step or group of elements or steps. Such terms should be interpreted in their most expansive form so as to afford the applicant the broadest coverage legally permissible. It should be understood that the term “a” used in the description and claims could mean “one” or could mean “at least one.” Use of “at least one” in the description and claims is not intended nor used in this disclosure to mean that other claims or descriptions not incorporating the “at least one” language cannot further include one or more like elements and the language “at least one” is not intended nor used to change “open-ended” claims, inherently including devices or methods having additional elements or steps apart from those claimed, into “closed-ended” claims wherein devices or methods having additional elements would not be covered by such claims. The use of the phrase, “or any other claim” is used to provide support for any claim to be dependent on any other claim, such as another dependent claim, another independent claim, a previously listed claim, a subsequently listed claim, and the like. As one clarifying example, if a claim were dependent “on claim 9 or any other claim” or the like, it could be re-drafted as dependent on claim 1, claim 8, or even claim 11 (if such were to exist) if desired and still fall with the disclosure. It should be understood that this phrase also provides support for any combination of elements in the claims and even incorporates any desired proper antecedent basis for certain claim combinations such as with combinations of method, apparatus, process, and the like claims. With respect to the drawings, it should be understood that these present only initial views, mirror views such as left, right, top, bottom, front, and back should be understood as within the realm of this disclosure as may be appropriate for design or industrial design protections. Furthermore, any aspect and any portion of such drawings should be understood as potentially not within the scope of any then-made claim such as by then dashing any portion desired. And such drawings should be understood as including drawing elements such as rectangles, circles, ellipses, ovals, squares, and the like as particular side or other views as well understood from the existing drawings. Finally, any claims set forth at any time are hereby incorporated by reference as part of this description of the various embodiments of the application, and the applicant expressly reserves the right to use all of or a portion of such incorporated content of such claims as additional description to support any of or all of the claims or any element or component thereof, and the applicant further expressly reserves the right to move any portion of or all of the incorporated content of such claims or any element or component thereof from the description into the claims or vice-versa as necessary to define the matter for which protection is sought by this application or by any subsequent continuation, division, or continuation-in-part application thereof, or to obtain any benefit of, reduction in fees pursuant to, or to comply with the patent laws, rules, or regulations of any country or treaty, and such content incorporated by reference shall survive during the entire pendency of this application including any subsequent continuation, division, or continuation-in- part application thereof or any reissue or extension thereon.
Claims
CLAIMS What is claimed is:
1. A load-bearing object-to-building attachment system comprising: - at least one load-bearing building-exterior object attachment interface; - at least one building outside-to-inside load-bearing member configured to be disposed through an exterior surface of an outer wall of a building and to which said load-bearing building-exterior object attachment interface is configured to be joined at a building-exterior portion of said building outside-to-inside load- bearing member; - a building primary-support-structure-intermediated load-bearing building- interior attached-object support structure to which said building outside-to- inside load-bearing member configured to be disposed through an exterior surface of an outer wall of said building is configured to be joined at a building- interior portion of said building outside-to-inside load-bearing member; - at least one building-interior load transfer interface of said building primary- support-structure-intermediated load-bearing building-interior attached-object support structure configured to transfer a load of said object to a building primary support structure.
2. A load-bearing object-to-building attachment system as described in claim 1 wherein said at least one building outside-to-inside load-bearing member comprises a building primary-support-structure thermal efficiency conservation member.
3. A load-bearing object-to-building attachment system as described in claim 1 wherein said building primary-support-structure-intermediated load-bearing building-interior attached-object support structure comprises at least one vertical post.
4. A load-bearing object-to-building attachment system as described in claim 3 wherein said at least one vertical post comprises at least one vertical post disposed between said exterior surface of said outer wall of said building and an interior surface of said outer wall of said building.
5. A load-bearing object-to-building attachment system as described in claim 1 wherein said building primary-support-structure-intermediated load-bearing building-interior attached-object support structure comprises a building primary- support-structure-unrestricted load-bearing building-interior attached-object support structure.
6. A load-bearing object-to-building attachment system as described in claim 5 wherein said building primary-support-structure-unrestricted load-bearing building-interior attached-object support structure comprises a primary-building- column-unrestricted load-bearing building-interior attached-object support structure.
7. A load-bearing object-to-building attachment system as described in claim 5 wherein said building primary-support-structure-unrestricted load-bearing building-interior attached-object support structure comprises a freely-positionable load-bearing building-interior attached-object support structure.
8. A load-bearing object-to-building attachment system as described in claim 1 wherein said at least one building-interior load transfer interface comprises a vertical movement tolerance connection.
9. A load-bearing object-to-building attachment system as described in claim 8 wherein said vertical movement tolerance connection comprises a primary building load disjunction 10. A load-bearing object-to-building attachment system as described in claim 1 wherein said load-bearing object-to-building attachment system comprises a self- integrated load-bearing object-to-building attachment system.
11. A load-bearing object-to-building attachment system as described in claim 10 wherein said self-integrated load-bearing object-to-building attachment system comprises a kit.
12. A load-bearing object-to-building attachment system as described in claim 1 wherein all said elements comprise non-building-primary-support-structure elements.
13. A load-bearing object-to-building attachment system as described in claim 12 wherein said non-building-primary-support-structure elements comprise non- building-primary-support-column elements.
14. A load-bearing object-to-building attachment system as described in claim 1 further comprising a moment load avoidance element of said load-bearing object-to- building attachment system.
15. A load-bearing object-to-building attachment system as described in claim 1 wherein said object comprises a balcony, wherein said at least one load-bearing building-exterior object attachment interface comprises two balcony posts, wherein said at least one building outside-to-inside load-bearing member comprises four building outside-to-inside load-bearing members arranged as upper and lower balcony post counterpart pairs, wherein said building primary-support-structure- intermediated load-bearing building-interior attached-object support structure comprises two balcony-post-aligned substantially vertical posts, and wherein said at least one building-interior load transfer interface comprises four building-interior load transfer interfaces arranged as counterpart post-to-overhead connections and counterpart post-to-floor connections for each said substantially vertical post.
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