Abstract:
A server cabinet drawer structure includes a carrying tray, a movably swappable frame and a lifting element. The movably swappable frame is carried by the carrying tray, and a side of the movably swappable frame is pivotally connected to the carrying tray by a pivot. The lifting element is provided for lifting the movably swappable frame away from the carrying tray and connected to the carrying tray and the movably swappable frame, so as to facilitate users to swap a data storage unit in the movably swappable frame.
Abstract:
A plug-in mechanism, a subrack and a finished board are provided. The plug-in mechanism implements fast and reliable plug-in and plug-out by using a lever assistance effect and a gearing effect of a gear. The plug-in mechanism is configured to be disposed between a sub-carrier frame and a parent carrier frame to implement plug-in and plug-out of the sub-carrier frame in the parent carrier frame, and the plug-in mechanism includes a driving part and a gearing part, where the driving part includes an ejector lever, the gearing part includes at least one gear that is engaged successively, a gear at one end is connected to the ejector lever, each of the at least one gear is fastened onto the sub-carrier frame by using a rotating shaft, and the at least one gear is connected to the parent carrier frame by using a linkage structure.
Abstract:
A server case includes a shell defining an opening, a door and a connection member. The door is configured to shield the opening. The connection member includes a sliding portion and a rotation portion. The sliding portion is slidable and connected to the door. The rotation portion is slidably engaged with the shell. The sliding portion slides on the door to drive the rotation portion to slide in the shell to make the door move from a position where an angle between the door and the opening is greater than 90 degrees to shield the opening.
Abstract:
A rack-based information handling system (RIHS) includes: a rack chassis having a plurality of interconnected panels forming a volumetric space having a front section and a rear section, both with opposing side panels forming a front access space and a rear access space, respectively, between corresponding opposing side panels; one or more IT gear sleds that are inserted into the front section of the rack chassis; and a pair of front expansion panels that are added to the rack chassis and which extend past an end of the opposing side panels at the front section of the rack chassis to provide a deeper IT bay within the front section and enable insertion of longer-than-standard depth IT gear within the rack chassis. The front expansion panels are cable management panels that include at least one strap that is utilized to secure one or more cables extending from one or more IT gear inserted into the rack chassis.
Abstract:
An information handling system (IHS) when operational has compute components held by a lightweight server (LWS) chassis. For both shipping and operational support, the LWS chassis is inserted into a casing that is laterally sized to prevent lateral movement of the server chassis. The casing is formed of an impact tolerant material to protect the server chassis and any functional compute components inserted within the server chassis. In addition, the casing has sealable flaps that enable the server chassis to be fully enclosed within the casing. Thereby, the casing can be utilized as an external shipping carton in which the IHS can be physically shipped to a destination.
Abstract:
A server includes a casing, a circuit board component, an assembly component and a power supply. The casing has an assembly channel and a first fastening slot. The circuit board component includes a substrate and a first electrical connector. The first electrical connector is electrically connected to the substrate. The assembly component is located out of the casing and detachably assembled with the casing. The assembly component has a second fastening slot. A distance between the first electrical connector and the second fastening slot is greater than a distance between the first electrical connector and the first fastening slot. The power supply includes a main body and a fastening unit. The main body includes a second electrical connector. The main body is for being movably assembled with the assembly channel, so the fastening unit is selectively assembled with the first fastening slot or the second fastening slot.
Abstract:
The present invention is directed to server systems and methods thereof. More specifically, embodiments of the present invention provides a memory controller within a server system, where the memory controller is disengageably connected to one or more processors, a plurality of volatile memory modules, and plurality of solid-state memory modules. This memory controller may be connected to other similarly configured memory controllers. The volatile and solid-state memory modules can be removed and/or replaced. There are other embodiments as well.
Abstract:
A server includes a mid-plane board, a storage backplane module, a plurality of first storage units, a vertical interposer board, a first electronic module, a second electronic module and a plurality of power supply units. The vertical interposer board is vertically inserted and thus electrically coupled to the mid-plane board. The storage backplane module, the vertical interposer board, the first electronic module, the second electronic module and the power supply units are electrically connected to each other through the mid-plane board.
Abstract:
Modular elements employing latches with flexure bearings are disclosed. A modular element may include a chassis body supporting electronic components. The body is in communication with a latch and a control member of the modular element. The modular element is removable from or secured to an enclosure using the latch. The latch may engage the enclosure and may remain engaged by being secured by interfacing with a catch of an arm of the control member. By connecting the arm to the control body with a flexure bearing, the flexure bearing may urge the catch into a detent of the latch to secure the latch and keep the modular element secured to the enclosure. The latch may be disengaged from the control member by removing the catch from the detent. In this manner, the modular element is efficiently secured and removed from the enclosure.
Abstract:
A fiber panel system includes a chassis and at least a first blade configured to moveably mount to the chassis. Each blade includes a base, a frame, and front couplers. The base of each blade defines at least one opening at a location spaced rearwardly from the front couplers. The front couplers may be smart or passive.