Apparatus for Latching and Unlatching an Electrical Function-Related Module and Method for Unlatching an Electrical Function-Related Module
20240347971 ยท 2024-10-17
Inventors
Cpc classification
H02B1/21
ELECTRICITY
H01R25/162
ELECTRICITY
H02B1/0565
ELECTRICITY
H01R13/66
ELECTRICITY
International classification
H01R13/66
ELECTRICITY
Abstract
The invention provides a device for latching and unlatching an electrical function-related module as well as a method for unlatching such a function-related module. The device includes a first latching device and a second latching device, each latching device having at least one latching tooth which can be inserted into the at least one retaining opening for latching the electrical function-related module. The at least one latching tooth of the first latching device and the at least one latching tooth of the second latching device face away from each other and can be moved away from each other for latching the electrical function-related module and can be moved towards each other for unlatching the electrical function-related module. The device further includes a first carriage element, which is linearly movable along a first axis of movement, a second carriage element, which can be moved linearly along a second axis of movement, a first converting device which converts a linear movement of the first carriage element along the first axis of movement into a linear movement of the second carriage element along the second axis of movement perpendicular to the first, and a second converting device, which converts the linear movement of the second carriage element into a movement of the latching teeth, which belong to different latching devices, towards each other or away from each other.
Claims
1. An apparatus for latching and unlatching an electrical function-related module to or from at least one retaining opening of a current busbar module, comprising: a first latching device and a second latching device, each latching device having at least one latching tooth insertable into the at least one retaining opening for latching the electrical function-related module; wherein the at least one latching tooth of the first latching device and the at least one latching tooth of the second latching device face away from each other and are movable away from each other for engaging behind the at least one retaining opening for latching the electrical function-related module and are movable towards each other for unlatching the electrical function-related module; a first carriage element, linearly movable along a first axis of movement; a second carriage element, linearly movable along a second axis of movement, which is arranged perpendicular to the first axis of movement; a first mechanical conversion device configured to convert a linear movement of the first carriage element along the first axis of movement into a linear movement of the second carriage element along the second axis of movement; and a second mechanical conversion device, which is configured to convert the linear movement of the second carriage element along the second axis of movement into a movement of the latching teeth, which belong to different latching devices, towards or away from one another.
2. The apparatus according to claim 1, wherein the first mechanical conversion device includes a first inclined portion on the first carriage member with a first predefined inclination relative to the first axis of movement, and a second inclined portion on the second carriage member with the first predefined inclination relative to the first axis of movement, wherein the second inclined section bears against the first inclined section in such a way that a linear movement of the first carriage element along the first axis of movement causes a linear movement of the second carriage element along the second axis of movement.
3. The apparatus according to claim 1, wherein the latching devices and the second mechanical conversion device are configured such that the latching teeth are moved towards each other or away from each other on a curved path.
4. The apparatus according to claim 3, wherein the latching devices are each arranged to rotate individually about a common axis of rotation, and the second mechanical conversion device is configured to convert the linear movement of the second carriage element into respective rotational movements of the latching devices towards each other or away from each other.
5. The apparatus according to claim 2, wherein the second mechanical conversion device includes at least one plunger portion on the second carriage element and at least one shoulder portion on at least one latching device, wherein each plunger portion is arranged and configured such that it, during a movement of the second carriage element along the second axis of movement in a direction facing away from the first carriage element, it exerts a torque on the respective shoulder portion on the latching device which contains the shoulder portion.
6. The apparatus according to claim 1, wherein the latching devices and the second mechanical conversion device are configured in such a way that the latching teeth are movable towards each other and away from each other in a linear movement.
7. The apparatus according to claim 6, wherein the second mechanical conversion device includes at least one third inclined section on the second carriage element with a second predefined inclination relative to the second axis of movement and at least one fourth inclined section (on at least one latching device with the second predefined inclination relative to the second axis of movement, wherein each third inclined section bears against a respective fourth inclined section in such a way that a linear movement of the second carriage element along the second axis of movement in a direction facing away from the first carriage element is converted into a movement of the latching device, which has the respective fourth inclined section, along the first axis of movement.
8. The apparatus according to claim 1, further comprising a pre-load element which is arranged and configured to exert a reciprocal pre-load on the latching devices which pre-load favors the movement of the latching teeth away from each other.
9. The apparatus according to claim 8, wherein each latching device has a spring receptacle, and wherein the spring receptacle of each latching device is configured to at least partially receive and fix the pre-load element configured as a spring element.
10. The apparatus according to claim 1, wherein one of the first and second carriage elements includes a function-related terminal for the electrical contacting and/or mechanical locking of the function-related module and on the other hand of the first and second carriage elements includes, at least one connection terminal which is configured and arranged to be in electrical contact with a current busbar of the current busbar module when the device is latched to the current busbar module.
11. The apparatus according to claim 10, wherein the at least one connection terminal is substantially flat and arranged parallel to the latching teeth.
12. The apparatus according to claim 11, wherein the at least one connection terminal and the latching teeth are arranged and configured to be inserted simultaneously into different retaining slots of a series of current-carrying retaining slots arranged in parallel as retaining openings of the current busbar module.
13. The apparatus according to claim 12, further comprising a function-related module which is electrically connected to the function-related terminal and mechanically locked.
14. The apparatus according to claim 13, wherein: the function-related module is configured as a power supply module and includes a frame clamp, a prism and lug terminal clamp, a tension clamp with one or more clamping bolts, and/or a stud bolt is formed; or the function-related module is configured as a fuse holder, a switch, a switch disconnector, a switch disconnector with fuses, or a fuse switch disconnector, or the function-related module is configured as a power supply unit, an overvoltage protection device or a motor starter.
15. A system comprising: a current busbar module; and an apparatus according to claim 1.
16. A method for unlatching an electrical function-related module from at least one retaining opening of a current busbar module, comprising: moving a first carriage element of an apparatus which is latched to the current busbar module by engaging behind a retaining opening of the current busbar module on both sides by at least two latching teeth, and which has a function-related terminal, to which the electrical function-related module is fastened, in a linear movement along a first axis of movement, which is arranged perpendicular to a longitudinal extent of the current busbar module; moving, as a mechanical-automatic reaction to the movement of the first carriage element, a second carriage element along a second axis of movement which is perpendicular to the first axis of movement; and moving, as a mechanical-automatic reaction to the movement of the second carriage element, of latching teeth facing away from each other towards each other, so that the latching teeth no longer engage behind the retaining opening on both sides, as a result of which the device is unlatched from the current busbar module.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0040] The invention is explained in more detail below with reference to examples of embodiments in the figures of the drawings. They show:
[0041]
[0042]
[0043]
[0044]
[0045]
[0046]
[0047]
[0048]
[0049]
[0050]
[0051]
[0052] In all figures, identical or functionally identical elements and apparatuses have been given the same reference signs, unless otherwise indicated. The designation and numbering of the process steps does not necessarily imply a sequence, but serves the purpose of better differentiation, although in some variants the sequence may also correspond to the sequence of the numbering.
DETAILED DESCRIPTION
[0053]
[0054] The apparatus 100 may comprise or consist of the components shown in
[0055] Some components of the apparatus 100 are first described in an overview with reference to
[0056] According to
[0057] Two latching devices 110, 120 are provided for latching the apparatus 100 to the at least one retaining opening. Each of the latching devices 110, 120 has two elongate, flat and parallel latching elements, each of which ends in a latching tooth 111-i, 121-i. The latching teeth 111-i, 121-i serve to engage behind the retaining opening while the apparatus 100 is latched to the current busbar module, as will be explained in more detail below.
[0058] A pre-load element 107, here for example configured as a helical spring, is used to apply a latching pre-load to the latching device 110, 120.
[0059] The apparatus 100 further comprises a first carriage element 130 and a second carriage element 140, which are arranged in the lower shell 171. At this point, it is worth mentioning a first actuating element 133 arranged on the first carriage element 130, by means of which the apparatus 100 in the latched state can be unlatched again.
[0060] A function-related terminal 180 is used for the electrical, and here also mechanical, connection of the function-related module 190 to connection terminals 181-i, which, when the apparatus 100 is latched to the current busbar module, are in electrical contact with the current busbar. Thus, there is an electrical path between the current busbar, the connection terminals, function-related terminal 180, the function-related module 190 and possibly also a conductor inserted into the function-related module 190 through the insertion opening 108. In the present case, the function-related terminal 180 and the connection terminals 181-i are manufactured in several parts, with the connection terminals 181-i (preferably configured in one part) being attached, preferably welded, to a function-related terminal 180 (preferably configured in one part) (see also
[0061] It will be understood that the insertion opening 108 may also be configured to receive an adapter or another electrical function-related module or electrical device, such as a measuring device, a communication device, a display, a user interface, and/or the like.
[0062]
[0063] Without limiting the generality, the side of the apparatus 100 on which the insertion opening 108 is located will hereinafter be referred to as the front side, and the side facing away from this will be referred to as the rear side. Accordingly, terms such as at the front side or at the rear side will be used. Terms such as top and bottom (for example for upper shell 173 and lower shell 171) or above or below refer to distances from the current busbar module 1, which is defined as being arranged at the bottom. However, it shall be understood that the apparatus 100 may also be arranged in any other orientation. In reality, the current busbar modules 1 are usually attached to a wall, but thanks to the locking mechanism according to the invention, they may also be arranged upside down.
[0064] Also clearly recognizable are lateral protective walls 174-1, 174-2, which are a (preferably integral) part of the lower shell 171 and protect the connection terminals 181-i and the latching elements in particular from bending or breaking off when the apparatus 100 is removed from the current busbar module.
[0065]
[0066] Accordingly,
[0067] In other variants, however, electrical receptacles on the one hand and retaining openings on the other may also be configured separately from each other. For example, the current busbar module 1 could be configured with a greater distance between the contact protection busbar 3 and the current busbar 2. The retaining openings 5 could be formed by the slots in the contact protection busbar 3, and the electrical receptacles could continue to be formed by the slots in the current busbar 2.
[0068] The system 1000 shown in
[0069]
[0070]
[0071] On the current busbar module 1 thus formed, five of the single-pole devices 100 are arranged and latched, one at each pole. It is easy to see how clear a cable routing can be achieved by aligning the devices 100 with their insertion openings 108 all in the same direction and latching them slightly offset along the rail axis (i.e. the longitudinal extension of each busbar individually), so that a cable tree can be electrically connected to all poles of the current busbar module 1in an orderly and space-saving manner.
[0072] The right-hand side of
[0073]
[0074]
[0075] The first carriage element 130, which preferablyincluding the first actuating element 133is formed in one piece, is mounted so as to be linearly movable along the first axis of movement A1, for example in the lower shell 171 of the housing 170, and preferably movable only along this axis of movement A1. This means that the first carriage element 130 is in particular also prevented from moving along a second axis of movement A2, which is perpendicular to the first axis of movement A1, for example by corresponding projections in the middle piece 172 of the housing 170 and/or a shoulder in the lower shell 171. The first carriage element 130 is also prevented from moving along a third axis of movement perpendicular to the axes of movement A1, A2 by guides or side walls in the lower shell 171.
[0076] To clarify the axes of movement, it is helpful to imagine that the substantially flat first carriage element 130 lies substantially in a plane which is spanned by the first axis of movement A1 and the third axis of movement (along which, however, advantageously nothing moves in the apparatus 100). The connection terminals 181-i and the latching elements 112-i, 122-i, on the other hand, lie essentially in planes which are parallel to a plane which is spanned by the first axis of movement A1 and the second axis of movement A2. The first, second and third axes of movement thus correspond to an orthogonal tripod.
[0077] For cases in which the insertion opening 108 is difficult to access or is occupied, an opening 177 is provided in the lower shell 171 at the rear side, via which a blind slot formed in the rear side of the first carriage element 130 is accessible as a second actuating element 136. This second actuating element 136 can be pressed inwards, for example by means of a slot screwdriver, in order to move the first carriage element 130 forwards along the first axis of movement A1.
[0078] Furthermore, it can be seen in
[0079]
[0080] In the embodiment of the apparatus 100 shown, the first carriage element 130 has two first inclined sections 131, one on each side of the actuating element 133. Similarly, the second carriage element 140 has two second inclined sections 141 adjacent to the first inclined sections. Due to the symmetry, this improves the mechanical actuation of the carriage elements 130, 140, as described below. It shall be understood that only a single inclined section 131, 141, or more than two inclined sections, may also be provided per carriage element 130, 140, advantageously, for example, one pair of inclined sections 131, 141 per opposing pair of latching teeth and/or per pole of the current busbar module 1 against which the apparatus 100; 100 rests.
[0081] In the apparatus 100, the second carriage element 140 is arranged below the first carriage element 130, i.e. closer to the latching teeth 111-i, 211-i and the connection terminals 181-i, between the first carriage element 130 and the lower shell 171. The second carriage element 140 has four guide grooves 142-1, 142-2, 142-3, 142-4 on the outside, for example formed by double brackets. The second carriage element 140 is guided by the four guide grooves 142-i in such a way that it can move exclusively along the second axis of movement A2, i.e. in
[0082] It can now be seen very clearly in
[0083] Before that, it should be mentioned with regard to
[0084] One latching element 112-1, 112-2 of the first latching device 110 and one latching element 122-1, 122-2 of the second latching device 120 respectively are each arranged with their flat bodies in the same plane, so that they can both engage in the same slot of the contact protection bar 3 and/or the current busbar 2, so that the two latching teeth 111-i, 121-i pointing away from each other can engage behind the respective slot on both sides. The latching teeth 111-i, 121-i of two different latching devices 110, 120 interacting in this way are also referred to below as opposing (in addition to interacting).
[0085] The pre-load element 107 is arranged to press these interacting latching teeth 111-i, 121-i of two different latching devices 110, 120 away from each other. The latching elements 112-i, 122-i and in particular the latching teeth 111-i, 121-i are tapered at the bottom with outward-facing bevels. With these tips, the latching elements 112-i, 122-i can be inserted into the slots of the current busbar module 1 even without actuating the actuating element 133. By applying force to the apparatus 100 in the direction of the current busbar module 1, the bevels of the latching teeth 111-i, 121-i then cause the opposing latching teeth 111-i, 121-i to move towards each other until they are close enough to each other so that they can pass completely through the slot. Due to the pre-load by the pre-load element 107, they will then move apart, engage behind the slot on both sides and thus latch the apparatus 100. The latching is thus advantageously possible without tools.
[0086]
[0087] The second mechanical conversion device 152 includes at least one plunger portion 148 on the second carriage member 140 and at least one shoulder portion 118, 128 on at least one latching device 110, 120, wherein each plunger portion 148 is arranged and configured such that, when the second carriage member 140 is moved along the second axis of movement A2 in a direction away from the first carriage member 130, it exerts a torque on a respective shoulder portion 118, 128 on the latching device 110, 120 which includes the shoulder portion 118, 128.
[0088] The latching devices 110, 120 are each individually arranged to rotate about a common axis of rotation R. In the apparatus 100, each latching device 110 has its own shoulder portion 118, 128, which are each arranged and formed at the base of the latching elements 112-i, 122-i and facing away from the axis of rotation R. The second carriage element 140 has two plunger portions 148, one of which rests against each of the shoulder portions 118, 128.
[0089] When the second carriage element 140 moves downwards along the second axis of movement A2 (i.e. away from the first carriage element 130), the plunger portions 148 press on the shoulder portions 118, 128. The torque exerted in this way causes the latching elements 112-i, 122-i to rotate towards each other, so that the latching teeth 111-i, 121-i are moved towards each other on a curved movement, as indicated by Z1 in
[0090] Each latching device 110, 120 has a spring receptacle 117, 127, between which the pre-load element 107, which is configured as a helical spring, is enclosed in order to exert a preload on the latching devices 110, 120 in a direction away from each other (designated W1 in
[0091] In this wayby simply actuating the first and/or the second actuating element 133, 136the apparatus 100 can be unlatched.
[0092]
[0093] In the present case, the connection is advantageously configured according to the pipe wrench principle: the shaft sections 115, 125 each have along their circumference both two circular arc-shaped sections and two straight sections parallel to one another. The bearing sections 116, 126 have an inlet at one point along their circumference, into which a respective shaft section 115, 125 can be inserted (if and only if) its parallel straight sections are arranged essentially parallel to the insertion direction of the inlet. This can be clearly seen in
[0094]
[0095] Also clearly recognizable in
[0096] Four guide ridges 175-i are also arranged on the inside of the outer wall of the lower shell 171, which are surrounded by the guide grooves 142-i of the second carriage element 140 in order to guide the latter. In addition, on the inside of the outer wall of the lower shell 171, an almost completely circumferential shoulder 144 is formed, on which the first carriage element 130 is mounted and is prevented from moving along the second and third axes of movement by the outer wall. The upward movement of the first carriage element 130 is limited by the middle piece 172 of the housing 170, which can be clipped into snap-in nipples on the inside of the outer wall of the lower shell 171 using the tabs clearly visible in
[0097]
[0098]
[0099] The housing 170, in particular its middle piece 172, may be adapted to the respective function-related module 190. As can be seen in
[0100]
[0101] The apparatus 200 is a variant of the apparatus 100 and differs from the latter primarily in that in the apparatus 200 the latching devices 210, 220 do not move towards and away from each other on a curved path (i.e. by respective rotations about the common center of rotation R), but on linear paths. Accordingly, many components of the apparatus 200 are similar to those of the apparatus 100, so that in the following, primarily the differences are discussed. Some largely or completely, geometrically or functionally, identically configured components will be designated with the same reference signs as in apparatus 100, while others will be given new reference signs, without necessarily having to be configured differently as a result. It shall be understood that the system 1000 according to the invention may also comprise one or more of the devices 200, or completely different embodiments of the present invention.
[0102] According to
[0103] One difference to the apparatus 100 is that in the apparatus 200 the first carriage element 230, i.e. the one which is moved (e.g. by means of the first actuating element 133) by a user to unlatch the apparatus 200, is arranged between the lower shell 271 and the second carriage element 240. In the apparatus 100, the second carriage member 140 was disposed between the lower shell 171 and the first carriage member 130. Accordingly, in the mechanism of the apparatus 200, the second carriage element 240 is also pushed upwards by the first carriage element 230 to unlatch the apparatus 200, i.e. away from the lower shell 271. The mechanism will be explained in more detail below.
[0104] However, it shall be understood that also in the apparatus 200, the second carriage element 240 may be arranged between the first carriage element 230 and the lower shell 171 and/or may be pressed downwards by the first carriage element 230 towards the lower shell 271 for unlatching. Similarly, in the apparatus 100, the first carriage element 130 may also be arranged between the lower shell 171 and the second carriage element 140 and/or the second carriage element 140 may be pressed upwards, i.e. away from the lower shell 171, by the first carriage element 130 for unlatching. After reading the present teaching, it is clear to the person skilled in the art how the respective conversion devices can be slightly modified for this purpose.
[0105]
[0106]
[0107]
[0108] In each case, a fourth inclined section 248 of the second carriage element 240 is located on the outside of the third inclined sections 218, 228. The third and fourth inclined sections 218, 228, 248 together form a second mechanical conversion device 252 of the apparatus 200. As with the first mechanical conversion device 251, the inclined sections 218, 248 and 228, 248 are also adjacent to one another in the second mechanical conversion device 252.
[0109] If the second carriage element 240 is now pressed upwards along the second axis of movement A2, the upward movement of the latching devices 210, 220 is limited by the base plate of the function-related terminal 180. The second mechanical conversion device 252 thus causes the two latching devices 210, 220 to move linearly towards each other, as indicated by Z2 in
[0110] Between a respective spring receptacle 217, 227 of the latching devices 210, 220 there is again arranged and enclosed a pre-load element 107, such as a helical spring 107, which exerts a preload against the movement Z2, i.e. which pushes the latching devices 210, 220 away from each other, as indicated by W2 in
[0111]
[0112] It shall be understood that the function-related module 390 may also be formed with only one tension clamp terminal 392-i, and that instead of the mechanics of the apparatus 200 with linear movement Z2, W2 of the latching devices 210, 220, the mechanics of the apparatus 100 with the rotational movement Z1, Z1 of the latching devices 110, 210 may preferably also be provided, i.e. that the apparatus 300 may also be formed as a variant of the apparatus 100.
[0113]
[0114] It shall be understood that the apparatus 400 may also be formed as a variant of the apparatus 100, i.e. with rotational movement Z1, W1 of the latching devices 110, 210.
[0115]
[0116]
[0117] It shall be understood that the apparatus 500 may also be formed as a variant of the apparatus 100, i.e. with rotational movement Z1, W1 of the latching devices 110, 210.
[0118]
[0119]
[0120]
[0121] In a step S100, a user moves a first carriage element 130; 230 of an apparatus 100-500, which is latched to the current busbar module 1 by engaging behind a retaining opening 5 of a current busbar module 1 on both sides by at least two latching teeth 111-i, 121-i; 211-i, 221-i on the current busbar module 1 and which apparatus 100-500 has a function-related terminal 180; 380-i; 480; 580, to which the electrical function-related module 190; 390; 490; 590 is fastened, in a linear movement along a first axis of movement A1, which is arranged perpendicular to a longitudinal extent of the current busbar module 1.
[0122] As a mechanically-automatic reaction to this, in a step S200 a second carriage element 140; 240 is moved along a second axis of movement A2, which is perpendicular to the first axis of movement A1, which in turn mechanically-automatically causes latching teeth 111-i, 121-i; 211-i, 221-i facing away from each other to move towards each other Z1, Z2 in a step S300, so that the latching teeth 111-i, 121-i; 211-i, 221-i no longer engage behind the retaining opening 5 on both sides, as a result of which the apparatus 100-500 is unlatched from the current busbar module 1.
[0123] The method may further comprise steps for latching and thus be a method for latching and/or unlatching a function-related module 190; 390; 490; 590 with a current busbar module 1.
[0124] For latching, as already described below, the apparatus 100-500 can be inserted with the tips of the latching elements 112-i, 122-i; 212-i, 222-i into the retaining opening 5 and pressed in the direction of the current busbar module 1 in order to move the latching elements 112-i, 122-i; 212-i, 222-i towards each other (Z1, Z2) against the pre-load of the pre-load element 107 until the latching teeth 111-i, 121-i; 211-i, 221-i have passed the edge of the retaining opening 5 and move away from each other due to the pre-load W1, W2 and engage behind the retaining opening 5 on both sides.
LIST OF REFERENCE SYMBOLS
[0125] 1 busbar module
[0126] 2 busbar
[0127] 3 touch protection bar
[0128] 5 retaining opening
[0129] 6 3-rowed component of the current busbar module
[0130] 7 1-rowed extension components
[0131] 13 embodiment forms of contact terminals
[0132] 100 apparatus
[0133] 100 apparatus
[0134] 107 pre-load element
[0135] 108 introduction opening
[0136] 110 first latching device
[0137] 111-i latching teeth of the first latching device
[0138] 112-i latching elements of the first latching device
[0139] 115 shaft section of the first latching device
[0140] 116 bearing section of the first latching device
[0141] 117 spring receptacle of the first latching device
[0142] 118 plunger sections
[0143] 121-i latching teeth of the second latching device
[0144] 122-i latching elements of the second latching device
[0145] 125 shaft section of the second latching device
[0146] 126 bearing section of the second latching device
[0147] 127 spring receptacle of the second latching device
[0148] 130 first carriage element
[0149] 131 first inclined portion
[0150] 134 slot
[0151] 136 second actuating element
[0152] 140 second carriage element
[0153] 141 second inclined portion
[0154] 142-i guide grooves
[0155] 144 shoulder
[0156] 148 plunger portions
[0157] 151 first mechanical conversion device
[0158] 152 second mechanical conversion device
[0159] 170 housing
[0160] 171 lower shell of the housing
[0161] 172 middle piece of the housing
[0162] 173 upper shell of the housing
[0163] 174-i protective walls
[0164] 175-i guide ridges
[0165] 176 storage sections
[0166] 177 opening
[0167] 178-i slot
[0168] 179 recess
[0169] 180 function-related terminal
[0170] 181-i connection terminal
[0171] 190 function-related module
[0172] 191 frame clamp
[0173] 192 screw
[0174] 193 wire guard
[0175] 200 apparatus
[0176] 210 first latching device
[0177] 211-i latching teeth of the first latching device
[0178] 212-i latching elements of the first latching device
[0179] 217 spring receptacle
[0180] 218 third inclined portion
[0181] 121-i latching teeth of the second latching device
[0182] 222-i latching elements of the first latching device
[0183] 227 spring receptacle
[0184] 228 third inclined portion
[0185] 230 first carriage element
[0186] 231 first inclined portion
[0187] 240 second carriage element
[0188] 241 second inclined portion
[0189] 248 fourth bevel cut
[0190] 251 first mechanical conversion device
[0191] 252 second mechanical conversion device
[0192] 270 housing
[0193] 271 lower shell
[0194] 272 bevel
[0195] 273 upper shell
[0196] 291 screw
[0197] 295 screw hole
[0198] 300 apparatus
[0199] 380-i function-related terminals
[0200] 390 function-related module
[0201] 392-i tension clamp terminal
[0202] 393-i actuating element
[0203] 400 apparatus
[0204] 480 function-related terminal
[0205] 490 lug terminal clamp
[0206] 500 apparatus
[0207] 580 function-related terminal
[0208] 581 connection terminals
[0209] 582 base plate
[0210] 590 stud bolt
[0211] 1000 system
[0212] A1 first axis of movement
[0213] A2 second axis of movement
[0214] S10 . . . S300 method steps