Abstract:
A mounting bracket (320) for trapezoidal rib profiles is disclosed. This mounting bracket (320) includes an upper section (330) and a lower section (350). A first leg (352a) in a second leg (352b) extend from a lower portion of the upper section (330) in diverging relation to one another. Each of these legs (352a, 352b) is deflectable through a certain range of motion to accommodate installation of the mounting bracket (320) on a variety of different trapezoidal rib profiles.
Abstract:
A photovoltaic module mounting assembly (200) uses a mounting device (74), mounting plate (110'), lower bracket (210), upper bracket (230), and stud (114). The mounting plate (110') is positioned on the mounting device (74), and a leg (212) of the lower bracket (210) is positioned on the mounting plate (110'). An outside surface (222) of another leg (220) of the lower bracket (210) includes teeth (224) and engages an inside surface (238) of a leg (236) of the upper bracket (230), which also has teeth (240). The mounting plate (110') engages a lower surface (63) of a photovoltaic module (58), an end of the leg (212) of the lower bracket (210) may engage a side surface (64) of the module (58), and a head (246) on an end of another leg (232) of the upper bracket (230) may engage an upper surface (65) of the module (58).
Abstract:
A mounting device (10) is disclosed having a one-piece body (1 1). A slot (20) extends into this body (1 1), and is defined by a slot base (22) and a pair of spaced slot sidewalls (24a, 24b) that each extend from the slot base (22). The slot sidewalls (24a, 24b) are disposed in non- parallel relation to each other.
Abstract:
A mounting device or bracket (220") for paneled building surfaces is disclosed. The mounting bracket (220") includes an upper wall (224) in the form of a flat surface for supporting various types of attachments. An elongated mounting slot (226") extends through the upper wall (224), and the mounting bracket (220") includes an elongated nut receptacle (260) that is positioned below this elongated mounting slot (226"). With an attachment being positioned on the upper wall (224), an attachment fastener may be directed through the attachment, then through the elongated mounting slot (226"), and then may be threadably engaged with a nut (270) that is positioned within and movable along the nut receptacle (260) in its elongated dimension.
Abstract:
A clip for electrically bonding a pair of adjacently-disposed metal panels is disclosed. One embodiment has such a clip (104) having a first clip member (112) and an oppositely disposed second clip member (116). The surface (114) of the first clip member (112) that faces the second clip member (116) includes at least one grounding projection (128), while the surface (118) of the second clip member (116) that faces the first clip member (112) also includes at least one grounding projection (128). The clip (104) may be installed on a standing seam (102) of a panel assembly (100), with its first clip member (112) engaging one of the metal panels 82" that define this stand seam (102) and with its second clip member (116) engaging the other of the metal panels 82" that define this same standing seam (102).
Abstract:
A module bracket includes first and second mounting clips (202, 204) that are spaced from each other along the pitch of a roofing surface. An inlet (212) to the first mounting clip (202) faces or projects in the general direction that the second mounting clip (204) is spaced from the first mounting clip (202). An inlet (212) to the second mounting clip (204) faces or projects in the general direction that the first mounting clip (202) is spaced from the second mounting clip (204). A second module flange (134) of a first photovoltaic module (120) is slid into the first mounting clip (202) of the module bracket. A first module flange (128) of a second photovoltaic module (120) is slid into the second mounting clip (204) of this same module bracket.
Abstract:
A mounting device (100) for installation on a hollow rib of a panel is disclosed. The mounting device (100) includes a mounting body (102), an insert (160), and at least one clamping fastener (180). The mounting body (102) includes an upper section or base (104), along with a first leg (112) and a second leg (122) that each extend downwardly from the base (104) in at least generally diverging relation to one another. The first leg (112) includes a first projection (116) positionable in a recess on one sidewall of a rib, while the insert (160) includes a second projection (164) positionable in a recess on the opposite sidewall of this same rib. The clamping fastener(s) (180) extends through the second leg (122) of the mounting body (102) and forces the insert (160) in the direction of the first leg (112) of the mounting body (102).
Abstract:
A mounting device (50) having a first clamping member (60) and a second clamping member (90) is disclosed. At least one clamp fastener (114) of the mounting device (50) movably interconnects the clamping members (60, 90). Rotating the clamp fastener(s) 114 in one direction moves the second clamping member (90) both laterally and upwardly toward the first clamping member (60), which in one embodiment entails moving the second clamping member (90) along an axial path.
Abstract:
A building system (38) is disclosed in the form of a standing seam panel assembly (80) and one or more mounting devices (40). The mounting device (40) includes a slot (52) for receiving at least an upper section of a hollow seam rib (86) of the panel assembly (80). At least one opposing pair of seam fasteners (74) engage opposing sides of the seam rib (86). These seam fasteners (74) may be activated to significantly reduce the size of an open space that initially exists between opposing, spaced internal surfaces (92a, 92b) of the seam rib (86).