Electronic Rack and Mounting Chassis

The electronic rack and mounting chassis with a looped structure and optimized anti-vibration mounts addresses the issue of excessive space occupation, achieving a strong, lightweight design for efficient storage and transport.

GB2640553BActive Publication Date: 2026-05-20CP CASES
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Patent Information

Authority / Receiving Office
GB · GB
Patent Type
Patents
Current Assignee / Owner
CP CASES
Filing Date
2024-04-24
Publication Date
2026-05-20

AI Technical Summary

Technical Problem

Existing electronic racks and mounting chassis systems occupy excessive internal space within containers due to inherent 'dead space' between the chassis and container walls, necessitating larger overall dimensions and weight, which is undesirable for efficient storage and transport.

Method used

The design of an electronic rack and mounting chassis with a looped structure formed by folded chassis members, featuring minimized joints and optimized corner sections, along with anti-vibration mounts that occupy minimal space, to maximize usable space and reduce weight.

Benefits of technology

The solution provides a strong, stable support for electronic equipment with minimized footprint and weight, enhancing the strength-to-weight ratio and maximizing the internal volume of containers for efficient storage and transport.

✦ Generated by Eureka AI based on patent content.

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Abstract

An electronic rack and mounting chassis 1 comprises a front chassis member 10; a rear chassis member 12; and a plurality of elongate chassis members 14 extending in a front-to-rear direction and conne
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Description

The present disclosure relates to an electronic rack and mounting chassis and to a container comprising the electronic rack and mounting chassis. Portable containers provided with electronic rack and mounting chassis for the mounting of sensitive electronic apparatus are well known; these generally comprise a rigid outer casing within which the rack and mounting chassis is mounted via anti-vibration mounts. The mounted apparatus may be safely stored and transported in the container and remains in the container during use. The usable internal space of the container is determined by the chassis. That is, the chassis defines a storage space that can be used to store equipment. However, with the above-described arrangement, the internal volume of the container comprises an inherent ‘dead space’ between the internal surfaces of the container and the storage space defined by the chassis, the ‘dead space’ being determined, in part, by the dimensions of the components forming the chassis and the dimensions of the anti-vibration mounts. Thus, for any given storage / payload space defined by the chassis, the overall dimensions of the container must be larger to allow for the mounting of the chassis within the container. At the same time, it is desirable that the overall dimensions of a container for any given payload capacity is minimised. Accordingly, there remains a need maximise the usable storage / payload space within the container such that the overall external dimensions of the container can be minimised for efficient storage and transport. Similarly, it is desirable that the containers, including the internal chassis, are made as lightweight as possible to meet demanding weight targets and to improve efficiency of transport. The present invention arose in a bid to provide an improved electronic rack and mounting chassis, having minimum footprint and weight for a given storage / payload capacity. According to the present invention there is provided an electronic rack and mounting chassis comprising: a front chassis member; 14 04 25 a rear chassis member; a plurality of elongate chassis members extending in a front-to-rear direction and connecting the front and rear chassis members, wherein each of the front and rear chassis members comprises two opposing 5 horizontal sections, two opposing vertical side sections and four corner sections, each of the four corner sections connecting a respective one of the horizontal sections to an adjacent one of the vertical side sections to form a looped structure, wherein each of the front and rear chassis members comprises one or more folded elements, each folded element comprising a hollow tubular member having a substantially 10 square or rectangular cross-sectional profile, folded to form one or more of the corner sections, with each corner section comprising a curved outer face and opposing wing portions positioned on either side of the curved outer face, the wing portions extending outwardly beyond the curved outer face , and wherein each of the front and rear chassis members further comprises at least one 15 joint at which respective ends of the one or more folded elements are connected to form the looped structure, the or each joint being formed in one of the vertical and horizontal sections so as to be remote from each corner section. With the above arrangement, each of the front and rear chassis members defines 20 an opening into which electronic equipment (or any other desired equipment or other items) can be inserted for mounting within the chassis. By forming the front and rear chassis members in a looped structure (i.e. as a ring having a square or rectangular profile) with folded corner sections, the overall dimensions of the chassis for a given payload capacity can be minimised. Additionally, the strength and rigidity at the corners is 25 significantly increased, compared to an arrangement at which vertical and horizontal members are connected / joined at the corner sections, either directly or indirectly. The unique arrangement of the present invention has also been found to provide a strong, stable support for mounted equipment, with significantly reduced weight compared 30 to other chassis arrangements known in the prior art. The present invention therefore provides a chassis, and container comprising a chassis, having a very high strength to weight ratio. Thus, the overall arrangement provides a chassis, and a container comprising a 35 chassis, having sufficient strength and rigidity to securely store and transport equipment (in 14 04 25 particular electronic equipment) mounted within the chassis, whilst the overall footprint and weight of the chassis is minimised. Preferably, at least one of the front chassis member and the rear chassis member 5 comprises a single, unitarily formed folded element that is folded so as to define the two horizontal sections, two vertical side sections and four corner sections, wherein a single joint connects a first end of the folded element to a second end of the folded element to form the looped structure, said joint being formed in one of the vertical and horizontal sections so as to be remote from each corner section. Accordingly, the front and / or rear 10 chassis members are not formed of a plurality of interconnecting components and the number of joints required in the chassis is reduced to a minimum. With only a single joint located away from the corner sections of the front / rear chassis members, the strength of the chassis is improved. 15 Preferably, each corner section of the or each folded element comprises an aperture formed in a wall of the hollow member that forms an internal part of the corner section. This relieves stress at the folded corner section, thus allowing a very tight fold to be formed, thus minimising the overall dimensions of the chassis for a given storage / payload capacity. 20 Preferably, each corner section comprises a curved outer face and opposing wing portions positioned on either side of the curved outer face, the opposing wing portions extending outwardly beyond the curved outer face. The wing portions enhance the rigidity of the folded elements at the corner sections, thus enhancing the rigidity of the chassis. 25 The or each folded element may be crush folded. Preferably, each elongate chassis member is connected to the front chassis member and the rear chassis member at a position remote from each corner section of the 30 front and rear chassis members. Preferably, each of the front chassis member and the rear chassis member comprises an outwardly-facing wall extending around an outer periphery of the front or rear chassis member, an inwardly-facing wall extending around an inner periphery of the front or rear chassis member, and two opposing side walls extending between the outwardly-facing wall and the inwardly-facing wall. Preferably, each elongate chassis member is connected to each of the front and rear chassis members without extending beyond the outwardly-facing wall thereof. This allows the outwardly-facing walls of the front and rear chassis members to be positioned as close as possible to the internal walls of a container in which the chassis is mounted, thus minimising the dimensions of the container whilst maximising the internal usable volume of the container that is defined by the chassis. Each elongate chassis member may engage with the inwardly-facing wall and / or at least one of the side walls of each of the front and rear chassis members. Rigidity of the connection between the elongate chassis members and the front / rear chassis members is thereby increased. Each of the front and rear chassis members may comprise a hollow member, as described above, and each elongate chassis member comprises a tab arranged to be received within an aperture formed in one of the side walls of one of the front or rear chassis members, said tab extending into an internal cavity of the hollow member and engaging with an internal surface of the hollow member. This allows the tab to be engaged with a wall of the front / rear chassis member, without extending beyond / protruding from an external surface of the front / rear chassis member. The outer dimensions of the front / rear chassis members are thereby minimised, allowing the chassis to be brought into close proximity with a wall of a container in which the chassis is mounted. Each elongate chassis may comprise a tab that engages with an external surface of the inwardly-facing wall of each of the front or rear chassis members. The joint may comprise a bracket bridging between the respective ends of the one or more folded elements so as to connect said ends together to form the joint, the bracket being arranged so as not to extend beyond the outwardly-facing wall of the front or rear chassis member. The outer dimensions of the front / rear chassis members are thereby minimised, allowing the chassis to be brought into close proximity with a wall of a container in which the chassis is mounted. The bracket may engage with the inwardly-facing wall and / or at least one of the side walls of the front or rear chassis member. The bracket may be U-shaped and may engage the two side walls and the inwardly-facing wall of the front or rear chassis member. A strong joint can thereby be formed. The joint may alternatively be formed by other arrangements. For example, where the folded element or elements to be joined comprise hollow members, the joint may be formed by a double-ended plug arranged to be tightly accommodated within the hollow sections of the two respective ends to be joined. After installation, the plug may be permanently secured in place within the two joined ends, for example by bonding or welding. Preferably, a vertical side section of at least one of the front and / or rear chassis members comprises a substantially planar front face having an aperture formed therein, and a fastener for the fastening of equipment to the chassis, wherein the fastener comprises a nut having a head portion having a dimension that is greater than a diameter of the aperture, the head portion being arranged to engage with the substantially planar front face, the nut further comprising a neck portion having a diameter smaller than the diameter of the aperture, and a locking portion having a dimension that is greater than a diameter of the aperture and being arranged to engage with a face of the vertical side section opposing the substantially planar front face. This arrangement allows the head portion to be formed with a very low profile (that is, a small thickness in a direction perpendicular to the planar front face), allowing mounted equipment to sit substantially flat against the planar front face of the vertical section. Preferably the aperture is formed in a wall of a hollow member forming the vertical side section, said wall having an external face defining the substantially planar front face of the vertical side section, and an opposing internal face with which the locking portion of the nut engages. Preferably, each vertical side section of the front and / or rear chassis members comprises a plurality of apertures and fasteners as described above for the fastening of equipment to the chassis. According to the present invention in a further aspect, there is provided a container comprising an electronic rack and mounting chassis in accordance with the above aspect of the present invention. The container may comprise a body which comprises a box with four walls, which extend in the front to back direction, the box comprising an opening at one or both of its ends, wherein the or each open end is closed using a removable lid, and anti-vibration mounts are provided for mounting the electronic rack and mounting chassis within the container. At least one of the anti-vibration mounts may be a multi-directional wire rope mount, such as a Polycal wire rope mount, for example. Such mounts occupy minimal space within the container, thus reducing the ‘dead space’ between the container walls and the storage / payload space defined by the chassis. The overall dimensions of the container for a given storage / payload space can therefore be minimised. It will be appreciated that alternative anti-vibration mounts may also be used, such as a cylindrical wire rope mount or an elastomeric anti-vibration mount. Non-limiting embodiments of the invention will now be described, by way of example only, with reference to the accompanying drawings in which: Figure 1 is a perspective view of an electronic rack and mounting chassis; Figure 2 is a perspective view of a front chassis member of the chassis shown in Figure 1; Figure 3 is a cross-sectional view of the chassis taken through line III - III shown in Figure 1; Figure 4 is a perspective view of an elongate chassis member of the chassis shown in Figure 1; Figure 5 is a cross-sectional view of the chassis taken through line V - V shown in Figure 1; Figure 6 is a perspective view of a container; Figure 7 is an enlarges view of a side portion of the container of Figures 6, showing mounting of the chassis within a box; and Figure 8 is a cross-sectional view of a vertical side section of the chassis taken through line VIll-VIII shown in Figure 1. With reference to the Figures, there is shown an electronic rack and mounting chassis 1 in accordance with the present invention. The electronic rack and mounting chassis 1 is provided for mounting within a suitably sized rigid outer container via antivibration mounts. Suitable containers include rigid plastic or metal containers which substantially comprise a box with four walls, which extend in a front to back direction, the box comprising an opening at one or both of its ends, wherein the or each open end is closed using a removable or openable (e.g. hinged) lid. By removal or opening of the or each lid, electronic equipment mounted in the rack and mounting chassis may be accessed. Suitable plastic containers may be rotationally moulded. A range of chassis sizes will be available for a range of container sizes. The electronic rack and mounting chassis preferably complies to the universal 19-inch rack standard. The width of the chassis may remain constant whilst the height and / or the depth of the chassis is varied for different containers / equipment. The chassis 1 comprises a front chassis member 10, a rear chassis member 12 and a plurality of elongate chassis members 14 extending in a front-to-rear direction and connecting the front and rear chassis members 10, 12. In the illustrated embodiment, the chassis 1 comprises four elongate chassis members 14 extending between and connecting the front chassis member 10 to the rear chassis member 12. In the illustrated embodiment, each of the front chassis member 10, rear chassis member 12 and elongate chassis members 14 is formed from a hollow extruded section having a substantially rectangular cross-sectional profile. Each hollow extruded section comprises first and second horizontal walls and first and second vertical walls, defining a substantially rectangular internal cavity of the hollow section. The chassis members 10, 12, 14 may be extruded from high tensile strength aluminium, or from any alternative suitably strong / rigid material. The use of hollow section extrusions for the chassis members provides significant rigidity to the chassis 1. Each of the front and rear chassis members 10, 12 is in the form of a ring (looped structure) comprising two opposing horizontal sections 16, two opposing vertical side sections 18 and four corner sections 20. Each of the four corner sections 20 connects a respective one of the horizontal sections 16 to an adjacent one of the vertical side sections 18. Each of the front and rear chassis members 10, 12 comprises a single, unitarily formed hollow extruded section that is folded so as to form a folded element 22 defining the two horizontal sections 16, two vertical side sections 18 and four corner sections 20 of the ring. This is illustrated most clearly in Figure 2, which shows the front chassis member 10 of Figure 1, however it will be appreciated that the arrangement of the rear chassis member 12 is substantially the same. A joint 24 connects a first end 22a of the folded element 22 to a second end 22b of the folded element 22 to form the looped structure, said joint 24 being formed in an upper horizontal section 16 in a location that is remote from each corner section 20 of the front / rear chassis member 10, 12. The joint 24 may be formed by any appropriate means for connecting the ends 22a, 22b of the folded element 22. In the illustrated embodiment, each of the front and rear chassis members 10, 12 comprises a U-shaped bracket 26 arranged to engage with external surfaces of the hollow extruded section at the two ends 22a, 22b to be connected, so as to bridge between the two ends 22a, 22b to connect the two ends 22a, 22b together and form the looped structure of the front / rear chassis member 10, 12. This is shown schematically in Figure 3, which is a cross section of a horizontal section 16 of the rear chassis member 12, through line Ill-Ill shown in Figure 1. Here, it can be seen that the hollow extruded section forming the rear chassis member 12 comprises a first horizontal wall 28 defining an external surface that faces outwardly from centre of the ring-like rear chassis member 12 (referred to hereafter as the outwardly-facing horizontal wall of the rear chassis member 12) and a second horizontal wall 30 defining an external surface that faces inwardly towards the centre of the ring-like rear chassis member 12 (referred to hereafter as the inwardly-facing horizontal wall of the rear chassis member 12). The outwardly-facing horizontal wall 28 extends around the outer periphery of the rear chassis member 12 and the inwardly-facing horizontal wall 30 extends around the inner periphery of the rear chassis member 12. The U-shaped bracket 26 engages with the inwardly- facing horizontal wall 30 and the two vertical walls 32 of the hollow section. This arrangement allows the two ends 22a, 22b of the folded element 22 to be connected, without the bracket 26 protruding beyond the outwardly-facing horizontal wall 28 of the rear chassis member 12. This allows the outwardly-facing horizontal wall 28 of the rear chassis member 12 to be positioned as close as possible to the internal walls of a container in which the chassis 1 is mounted, thus minimising the dimensions of the container whilst maximising the internal usable volume of the container that is defined by the chassis 1. Whilst the arrangement of the joint 24 has been described above in relation to the rear chassis member 12, it will be appreciated that the front chassis member 10 has a corresponding arrangement. Whilst in the illustrated embodiment, each of the front and rear chassis members 10, 12 comprises a single folded section, it will be appreciated that front and / or rear chassis members may comprise two or more folded elements that are joined together to form the ring, each folded element being folded to define one or more of the corner sections and at least a portion of the horizontal and vertical sections connected by the corner section. Accordingly, the front and / or rear chassis member may comprise a plurality of joints joining respective ends of the interconnecting folded sections to form the complete ring. For example, the front and / or rear chassis member may comprise two folded sections, each being folded to form a U-shape defining a vertical side section, a respective portion of each of the two opposing horizontal sections, and two corner sections connecting the vertical side section to the respective portions of the horizontal side sections. The two folded sections can then be joined by forming two joints connecting the respective ends of the portions of the horizontal sections. This can be envisaged with reference to the embodiment of Figure 1, in which a second joint could be formed in the second (lower) horizontal section that mirrors the joint formed in the first horizontal section. It will be appreciated that the front and / or rear chassis member may comprise up to four folded sections. Referring to Figures 1 and 2, each corner section 20 of the front and rear chassis member 10, 12 comprises a curved outer face 20a (i.e. an outwardly facing surface of the front / rear chassis member 10, 12 in the corner section 20 thereof) and opposing wing portions 20b that are positioned on either side of the curved outer face 20a. The wing portions 20b extend outwardly beyond the curved outer face 20a. The opposing wing portions 20b increase the rigidity of the front / rear chassis member 10, 12 in the corner section 20, so as to prevent bending or flexing of the front / rear chassis member 10, 12 in use. The folded elements 22 forming the front and rear chassis members 10, 12 are preferably crush folded, although other means of manufacturing folded elements with the desired structure are conceivable. In the illustrated embodiment, each corner section 20 comprises an aperture 34 formed in an internal wall of the hollow section that forms an internal part of the corner section 20. In this regard, the internal part of the corner section 20 will be understood to refer to a face of the hollow section that faces inwardly towards the centre of the ring-like structure. The provision of an aperture 34 relieves stress in the internal part of the corner section 20 and allows a very tight fold to be formed. That is, the curve radius of the fold can be minimised, which allows the internal usable volume of the container that is defined by the chassis 1 to be maximised. The front and rear chassis members 10, 12 comprise a plurality of apertures 36 for receiving fasteners for the fastening of equipment to the chassis and / or for mounting the chassis 1 within a container. In particular, in at least one of the front or rear chassis members 10, 12, each vertical side section 18 comprises a substantially planar front face 19 having a plurality of apertures 36a formed therein. These apertures 36a can be seen in Figure 2, in particular. As shown in Figures 1, 7 and 8, a plurality of fasteners 37 are inserted into the apertures 36a for the mounting of equipment to the chassis 1, the equipment being secured against the planar front face 19 of the vertical side section 18. In the illustrated embodiment, each fastener 37 comprises a nut having a central through hole 37a, which is threaded to receive a suitable threaded fastener (e.g. a bolt or machine screw). In alternative arrangements the threaded hole may not extend through the nut. It may be a blind threaded hole. With reference to Figure 8, each fastener 37 comprises a head portion 37b having a dimension that is greater than the diameter of the aperture 36a that it is to be received by. A neck portion 37c has a smaller diameter than the aperture 36a, so that it may extend therethrough. A locking portion 37d is provided that has a dimension greater than the diameter of the aperture 36a. The head portion 37b engages with the planar front face 19 and the locking portion 37d engages with an opposing face of the vertical side section 18, so as to lock the fastener 37 within the aperture 36a. This arrangement allows the head portion 37b to be formed with a very low profile (that is, a small thickness in a direction perpendicular to the planar front face 19), allowing mounted equipment to sit substantially flat against the planar front face 19 of the vertical section 18. The locking portion 37d may be formed by a crimping process that is carried out after insertion of the fastener 37 into the aperture 36a. In such arrangements, the fastener 37 may be formed with the head portion 37b having a dimension larger than the diameter of the aperture 36a, and a body portion having a dimension smaller than the diameter of the aperture 36a to allow for insertion of the body portion through the aperture 36a. With the head portion 37b braced against the substantially planar front face 19, the body portion is crimped to form the locking portion 37d and to define the neck portion 37c between the head portion 37b and the locking portion 37d. In this manner, the fastener 37 can be secured to a wall of a hollow member (e.g. a hollow extruded section), with minimal protrusion from the substantially planar front face 19 and without requiring access to the opposing face of said wall, with which the locking portion 27d engages. A fastener having a very low profile can therefore be achieved. As shown in Figure 2, further apertures 36b may be provided in the front and / or rear chassis members 10, 12, in either the horizontal sections 16 or the vertical sections 18 thereof. Such apertures 36b may be used for the fastening of mounts, in particular antivibration mounts, for mounting the chassis 1 within a container. Referring again to Figures 1 and 2, the front and rear chassis members 10, 12 further comprise a plurality of apertures 38 for receiving fasteners for the fastening the elongate chassis members 14 to the front and rear chassis members 10, 12, as will now be described. With reference to Figures 1, 4 and 5, in particular, each elongate chassis member 14 comprises a hollow extruded section having a substantially rectangular cross-sectional profile. The hollow extruded section defines two horizontal walls 40 and two vertical walls 42 extending between the horizontal walls 40, defining a substantially rectangular internal volume therebetween. At opposing ends of the elongate members 14, the horizontal walls 40 extend further than the vertical walls 42 so as to define opposing tabs 44a, 44b, which are used for engaging with the front and rear chassis members 10, 12. With reference to Figure 5, a first tab 44a is received within an aperture 46 formed in one vertical wall 32 of the front / rear chassis member 10, 12 and engages with an internal surface of the hollow extruded section forming the front / rear chassis member 10, 12. An edge 42a of the vertical wall 42 of the elongate chassis member 14 engages with the vertical wall 32 of the front / rear chassis member 10, 12 so as to limit the movement of the elongate chassis member 14 in a longitudinal direction thereof. At the same time, a second tab 44b engages with an external surface of the hollow extruded section forming the front / rear chassis member 10, 12, said external surface defining the inwardly-facing horizontal wall 30 of the front / rear chassis member 10, 12. Fasteners 48 extend through apertures 50 formed in the tabs 44a, 44b and corresponding apertures 38 formed in the horizontal walls 28, 30 of the front / rear chassis members 10, 12, so as to fasten the elongate chassis member 14 to the front / rear chassis member 10, 12. By the introduction of fasteners 48, movement of the elongate chassis members 14 relative to the front / rear chassis members 10, 12 is prevented and a rigid secured chassis 1 is provided. The above-described arrangement allows the elongate chassis members 14 to be connected to the front / rear chassis members 10, 12 without extending beyond the outwardly-facing wall 28 of the front / rear chassis member 10, 12, whilst also ensuring a secure connection and rigid chassis 1. This allows the outwardly-facing horizontal wall 28 of the front / rear chassis members 10, 12 to be positioned as close as possible to the internal walls of a container in which the chassis 1 is mounted, thus minimising the dimensions of the container whilst maximising the internal usable volume of the container that is defined by the chassis. Referring now to Figure 6, there is shown a container 52 comprising a box 54 with four walls 56, which extend in a front to back direction, the box 54 comprising an opening at both of its ends, wherein the or each open end is closed using a removable lid 58. By removal of the or each lid 58, electronic equipment mounted within the container 52 may be accessed. It will be appreciated that each lid 58 may be fully removable, or may be partially removable (i.e. openable) so as to allow access to the opening for accessing electronic equipment mounted therein, for example in a hinged arrangement. As shown in Figure 7, the container 52 comprises a chassis 1 as described above with reference to Figures 1 to 5. The chassis 1 is mounted within the container 52 by antivibration mounts 60 in the form of multi-directional wire rope mounts. Each mount 60 comprises a pair of body portions 62 connected by wire ropes 64. One body portion 62 is fastened to a wall 56 of the container box 54, and the other body portion 62 is fastened to a vertical section 18 of the front / rear chassis member 10, 12. Although not shown in Figure 7, it will be appreciated that the body portion 62 of the mount 60 may be fastened with an appropriate fastener accommodated within one of the apertures 36b located in a vertical section 18 of the front / rear chassis member 10, 12 (said apertures 36b being visible in Figure 2). Further mounts may be fastened to the horizontal sections 16 of the front / rear chassis members 10, 12 via the apertures 36b formed in the horizontal sections 18 thereof (also visible in Figure 2) The use of wire rope mounts of this type require only a single fixing for fastening to each of the box wall 56 and chassis 1, allowing dimensions of the mount to be minimised, this also minimising ‘dead space’ within the container 52 between the chassis 1 and the internal walls 56 of the box 54. This allows the usable space within the container 52 defined by the dimensions of the chassis 1 to be maximised. The overall dimensions of the container 52, for a given payload space, can therefore be minimised. The invention has been described above with reference to specific embodiments, given by way of example only. It will be appreciated that different arrangements of the system are possible, which fall within the scope of the appended claims. 14 04 25

Claims

1. An electronic rack and mounting chassis comprising:a front chassis member;5 a rear chassis member;a plurality of elongate chassis members extending in a front-to-rear direction and connecting the front and rear chassis members,wherein each of the front and rear chassis members comprises two opposing horizontal sections, two opposing vertical side sections and four corner sections, each of10 the four corner sections connecting a respective one of the horizontal sections to an adjacent one of the vertical side sections to form a looped structure,wherein each of the front and rear chassis members comprises one or more folded elements, each folded element comprising a hollow tubular member having a substantially square or rectangular cross-sectional profile, folded to form one or more of the corner15 sections, with each corner section comprising a curved outer face and opposing wing portions positioned on either side of the curved outer face, the wing portions extending outwardly beyond the curved outer face , andwherein each of the front and rear chassis members further comprises at least one joint at which respective ends of the one or more folded elements are connected to form20 the looped structure, the or each joint being formed in one of the vertical and horizontal sections so as to be remote from each corner section.

2. An electronic rack and mounting chassis as claimed in claim 1, wherein at least one of the front chassis member and the rear chassis member comprises a single, unitarily 25 formed folded element that is folded so as to define the two horizontal sections, twovertical side sections and four corner sections, wherein a single joint connects a first end of the folded element to a second end of the folded element to form the looped structure, said joint being formed in one of the vertical and horizontal sections so as to be remote from each corner section.

3. An electronic rack and mounting chassis as claimed in claim 1 or 2, wherein each corner section comprises an aperture formed in a wall of the hollow member that forms an internal part of the corner section.14 04 254. An electronic rack and mounting chassis as claimed in any preceding claim, wherein each corner section comprises an inner face and wherein the opposing wing portions extending outwardly beyond the curved outer face have a radiused outer profile and wherein each wing portion defines a side edge of the inner face and wherein each5 side edge of the inner face of each corner section is substantially right angled.

5. An electronic rack and mounting chassis as claimed in any preceding claim, wherein the or each folded element is crush folded.10 6. An electronic rack and mounting chassis as claimed in any preceding claim,wherein each elongate chassis member is connected to the front chassis member and the rear chassis member at a position remote from each corner section of the front and rear chassis members.15 7. An electronic rack and mounting chassis as claimed in any preceding claim,wherein each of the front chassis member and the rear chassis member comprises an outwardly-facing wall extending around an outer periphery of the front or rear chassis member, an inwardly-facing wall extending around an inner periphery of the front or rear chassis member, and two opposing side walls extending between the outwardly-facing wall20 and the inwardly-facing wall.

8. An electronic rack and mounting chassis as claimed in claim 7, wherein each elongate chassis member is connected to each of the front and rear chassis members without extending beyond the outwardly-facing wall thereof.

259. An electronic rack and mounting chassis as claimed in claim 8, wherein each elongate chassis member engages with the inwardly-facing wall and / or at least one of the side walls of each of the front and rear chassis members.30 10. An electronic rack and mounting chassis as claimed in any one of claims 7 to 9,wherein each of the front and rear chassis members comprises a hollow member, and each elongate chassis member comprises a tab arranged to be received within an aperture formed in one of the side walls of one of the front or rear chassis members, said tab engaging with an internal surface of the hollow member.3514 04 2511. An electronic rack and mounting chassis as claimed in any one of claims 7 to 10, wherein each elongate chassis comprises a tab that engages with an external surface of the inwardly-facing wall of each of the front or rear chassis members.5 12. An electronic rack and mounting chassis as claimed in any one of claims 7 to 11,wherein the joint comprises a bracket bridging between the respective ends of the one or more folded elements so as to connect said ends together to form the joint, the bracket being arranged so as not to extend beyond the outwardly-facing wall of the front or rear chassis member.1013. An electronic rack and mounting chassis as claims in claim 12, wherein the bracket engages with the inwardly-facing wall and / or at least one of the side walls of the front or rear chassis member.15 14. An electronic rack and mounting chassis as claimed in claim 13, wherein thebracket is U-shaped and engages the two side walls and the inwardly-facing wall of the front or rear chassis member.

15. A container comprising an electronic rack and mounting chassis as claimed in any 20 one of claims 1 to 14.

16. A container as claimed in claim 15, wherein the container comprises a body which comprises a box with four walls, which extend in the front to back direction, the box comprising an opening at one or both of its ends, wherein the or each open end is closed25 using a removable or openable lid, and anti-vibration mounts are provided for mounting the electronic rack and mounting chassis within the container.

17. A container as claimed in claim 16, wherein at least one of the anti-vibration mounts is a multi-directional wire rope mount.