CONNECTION CABINET
Patent Information
- Application Number
- DE602022016677
- Authority / Receiving Office
- DE · DE
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-03-26
- Filing Date
- 2022-03-25
- Publication Date
- 2025-07-02
- Estimated Expiration
- 2042-03-25
AI Technical Summary
Existing electrical connection cabinets require numerous communication cables for connecting control units to an industrial computer, leading to complex and costly assembly processes.
An electrical connection cabinet design that centralizes data exchanges between industrial computers and control-command units using a communication module, which also supplies auxiliary electrical voltage, reducing the need for individual communication cables and simplifying the assembly process.
The centralized communication module simplifies the assembly process, reduces material and labor costs, and enhances the reliability of the electrical connection cabinet by allowing for redundant power supply units and managed switches.
Description
[0001] The present invention relates to an electrical connection cabinet.
[0002] In the field of industrial electrical cabinets, it is known to install one or more control units in an electrical connection cabinet. These control units allow the electrical cabinet to be electrically connected to electrical loads. It is also known to connect such an electrical connection cabinet to an industrial computer, this computer allowing the cabinet to be configured. This connection is made using communication cables, which individually connect each control unit to the industrial computer. This individual connection of each control unit to the industrial computer involves the use of a large number of communication cables, which makes the assembly of the electrical cabinet long and complex and generates significant material and labor costs.
[0003] WO-A-2006 / 063993 describes an electrical cabinet comprising several functional units, each functional unit comprising a communication device. All communication devices communicate with a bus module, which allows the exchange of data between the functional units and the exterior of the electrical cabinet. However, this bus module only allows the exchange of data between the functional units and the exterior of the electrical cabinet. WO 2017 / 174994 A1, WO 2012 / 080587 A1, US 2002 / 048161 A1 and US 8 810 998 B2 describe other electrical cabinets with functional units configured to exchange data.
[0004] The invention aims to remedy these drawbacks in particular by proposing an electrical connection cabinet enabling the data exchanges between the industrial computer and the control-command units to be grouped together, as well as an auxiliary electrical voltage supply for the control-command units.
[0005] To this end, the invention relates to an electrical connection cabinet, the electrical cabinet being supplied with electrical energy by power cables and being configured to supply at least one electrical load, the electrical cabinet comprising a power column and at least one connection column, the power cables being connected to the electrical cabinet in the power column, each connection column comprising at least one control-command unit configured to allow electrical connection to an electrical load, each control-command unit being electrically protected by a protection unit belonging to the connection column of this control-command unit, each control-command unit being configured to allow the connection and possibly the control and / or monitoring of an electrical load,the electrical cabinet being configured to be controlled by an industrial computer. According to the invention, each connection column comprises a communication module which centralizes operating information from the control-command units of this connection column; is configured to transmit this operating information to the industrial computer; is configured to receive commands from the industrial computer; and transmits these commands to the control-command units of this connection column. In addition, at least one communication module comprises a power supply unit delivering at least one auxiliary electrical voltage to each connection column.,
[0006] Thanks to the invention, the electrical connection cabinet comprises a communication module which connects each control unit to the industrial computer and which supplies each control unit with auxiliary electrical voltage.
[0007] According to advantageous, but not obligatory, aspects of the invention, the electrical connection cabinet incorporates one or more of the following characteristics, taken in isolation or in any technically admissible combination: Each connection column comprises a computer bus which connects the communication module of this connection column to each control-command unit of this connection column and which allows the exchange of information and commands between the communication module and each control-command unit of this connection column. The exchange of information and commands between the communication module of a connection column and each control-command unit of this column passes through electronic circuits of the computer bus and is preferably carried out according to the Ethernet protocol. The computer bus of each connection column comprises electrical power supply tracks configured to supply each control-command unit of this connection column and / or at least one electrical load connected to this connection column with at least one auxiliary electrical voltage.The power supply unit delivers a first auxiliary electrical voltage to each control unit of each connection column and is configured to deliver a second auxiliary electrical voltage to at least one electrical load connected to a control unit. The first auxiliary electrical voltage is a direct voltage of 48V and the second auxiliary electrical voltage is an alternating voltage of 230V.The power column comprises a central switch; and the central switch is connected between the industrial computer and the communication module of each connection column, in that: the central switch is configured to receive commands from the industrial computer and distribute these commands among the communication modules of each connection column; and the central switch is configured to aggregate the operating information from the communication modules of each connection column and transmit this information to the industrial computer.The cabinet comprises at least two connection columns, the communication module of each connection column comprises a managed switch, the managed switches of the communication modules are connected to each other by internal communication cables, and each managed switch is configured to be connected to the industrial computer independently of the other managed switches. All cable connections to the connectors of the electrical cabinet necessary for commissioning the electrical cabinet are made in a single connection area.
[0008] The invention will be better understood and other advantages thereof will appear more clearly in the light of the following description of an embodiment of an electrical connection cabinet in accordance with its principle, given solely by way of example and with reference to the appended drawings in which: [ Fig. 1 ] There figure 1 is a perspective view of an electrical cabinet according to the invention; [ Fig. 2 ] There figure 2 is a longitudinal section of the electrical cabinet of the figure 1 according to plan II; [ Fig. 3 ] There figure 3 is a horizontal section of part of the electrical cabinet of the figure 1 according to plan III; [ Fig. 4 ] There figure 4 is a horizontal section, analogous to the figure 3 , of a second electrical cabinet in accordance with the invention; [ Fig. 5 ] There figure 5 is a horizontal section, analogous to the figure 3 , of a third electrical cabinet in accordance with the invention; [ Fig. 6 ] There figure 6 is a perspective view of a communication module belonging to a cabinet according to one of the figures 1 à 5 ; [ Fig. 7 ] There figure 7 is a top view of the communication module of the figure 6 ; [ Fig. 8 ] There figure 8 is a perspective view of a motor starter module belonging to a cabinet according to one of the figures 1 à 5 ; [ Fig. 9 ] There figure 9 is a perspective view of another engine starter module, seen from another angle; [ Fig. 10 ] There figure 10 is a perspective view of a support structure of the engine starter module of the figure 8 And 9 ; [ Fig. 11 ] There figure 11 is a perspective view of a protection unit of the engine starter module of the figure 8 And 9 ; [ Fig. 12 ] There figure 12 is a perspective view of the protection unit of the figure 11 , seen from another angle; [ Fig. 13 ] There figure 13 is a perspective view of a control-command unit belonging to a cabinet according to one of the figures 1 à 5 ; [ Fig. 14 ] There figure 14 is a perspective view of the control unit of the figure 13 , seen from another angle; [ Fig. 15 ] There figure 15 is a perspective view of a second control-command unit belonging to a cabinet according to one of the figures 1 à 5 ; [ Fig. 16 ] There figure 16 is a perspective view of the second control unit of the figure 15 , seen from another angle; [ Fig. 17 ] There figure 17 is a top view of the second control unit of the figure 15 , in section according to plan XVII at the figure 15 ; [ Fig. 18 ] There figure 18 is a perspective view of a movable side contact belonging to a cabinet according to one of the figures 1 à 5 ; [ Fig. 19 ] There figure 19 is a perspective view of the moving side contact of the figure 18 seen from another angle; [ Fig. 20 ] There figure 20 is an exploded perspective view of the movable lateral contact of the figures 18 And 19 ; [ Fig. 21 ] There figure 21 is a top view of the movable side contact of the figures 18 And 19 in a first position; [ Fig. 22 ] There figure 22 is a top view of the movable side contact of the figures 18 And 19 in a second position; [ Fig. 23 ] There figure 23 is a top view of the movable side contact of the figures 18 And 19 in a third position; [ Fig. 24 ] There figure 24 is a perspective view of an input-output module belonging to a cabinet according to one of the figures 1 à 5 ; [ Fig. 25 ] There figure 25 is a perspective view of a section of computer bus belonging to a cabinet according to one of the figures 1 à 5 ; [ Fig. 26 ] There figure 26 is a view according to detail XXV of the figure 25 ; [ Fig. 27 ] There figure 27 is a perspective view of a computer bus connector; [ Fig. 28 ] There figure 28 is a perspective view of a first external connection module belonging to a cabinet according to one of the figures 1 à 5 ; [ Fig. 29 ] There figure 29 is an exploded perspective view of the first external connection module of the figure 28 ; [ Fig. 30 ] There figure 30 is a perspective view of a second external connection module belonging to a cabinet according to one of the figures 1 à 5 ; [ Fig. 31 ] There figure 31 is an exploded perspective view of the second external connection module of the figure 30 ; [ Fig. 32 ] There figure 32 is a perspective view of a third external connection module belonging to a cabinet according to one of the figures 1 à 5 ; [ Fig. 33 ] There figure 33 is an exploded perspective view of the third external connection module of the figure 32 ; [ Fig. 34 ] There figure 34 is a perspective view of the computer bus section of the figures 25 And 26 equipped with three riders; [ Fig. 35 ] There figure 35 is a perspective view of the riders of the figure 34 ; [ Fig. 36 ] There figure 36 is a detailed view of the control drawer locking system of the figures 15 à 17 , in a first position; [ Fig. 37 ] There figure 37 is a detailed view of the control drawer locking system of the figures 15 à 17 , in a second position; [ Fig. 38 ] There figure 38 is a perspective view of the locking system of the figure 36 , on which part of the drawer is hidden and a rail belonging to a cabinet according to one of the figures 1 à 5 is also represented; [ Fig. 39 ] There figure 39 is a perspective view of the locking system of the figure 37 , on which part of the drawer is hidden and a rail belonging to a cabinet according to one of the figures 1 to 5 is also represented; [ Fig. 40 ] There figure 40 is a perspective view of the locking system of the figure 37 , on which part of the drawer is hidden; [ Fig. 41 ] There figure 41is a perspective view of a third control drawer belonging to a cabinet according to one of the figures 1 to 5 , this third drawer being in accordance with the invention; [ Fig. 42 ] There figure 42 is a perspective view of the control-command drawer of the figure 41 , seen from another angle; and [ Fig. 43 ] There figure 43 is a perspective view of a position detection module belonging to the control-command drawer of the figures 41 And 42 .
[0009] An electrical cabinet 100 is shown in figures 1 to 5 . This electrical cabinet is intended to be integrated into a partially represented electrical network. This electrical network comprises on the one hand, upstream of the electrical cabinet 100, power cables 102 coming for example from a transformer station and on the other hand, downstream of the electrical cabinet, one or more electrical loads 104.
[0010] The electrical cabinet 100 is a connection cabinet configured to connect the electrical loads 104 to the power cables 102.
[0011] In the installed configuration of the electrical cabinet 100, the cabinet rests on a horizontal surface represented by a plane P1. In practice, the plane P1 is for example the floor of a building in which the electrical cabinet 100 is installed.
[0012] A longitudinal axis X of the electrical cabinet 100 is defined as being the axis of the largest dimension of the electrical cabinet 100, in practice its length, a transverse axis Y as being the axis of the smallest dimension of the electrical cabinet 100 and perpendicular to the axis X, in practice its width, and a vertical axis Z as being the third axis of an orthogonal reference frame comprising the axes X and Y.
[0013] The orientation of the X, Y and Z axes is fixedly linked to the orientation of the electrical cabinet 100. The orientation of the electrical cabinet 100 described in the present disclosure corresponds to its installed configuration. It is therefore understood that the orientation of the X, Y and Z axes varies when the orientation of the electrical cabinet 100 varies. For example, the Z axis may not be vertical when the cabinet 100 is not in the installed configuration, for example when it is transported. The terms “top”, “bottom” and “vertical” used in the remainder of the disclosure are understood to relate to the Z axis.
[0014] In the installed configuration described here, the plane formed by the X and Y axes is horizontal and parallel to the plane P1, while the Z axis is perpendicular to this plane. The term "horizontal" used in the remainder of the description applies to any element contained in a plane parallel to the plane formed by the X and Y axes, in the installed configuration of the electrical cabinet 100. The terms "left" and "right" are understood relative to the X axis and the terms "front" and "rear" are understood relative to the Y axis.
[0015] The relative positioning of the parts and their orientation described below are given by way of example only and are not limiting. Unless explicitly stated otherwise, they are understood to be in the assembled and installed configuration of the electrical cabinet 100. Thus, when mention is made of the orientation of a part with respect to the X, Y and / or Z axes, it is understood to be in the assembled configuration of the cabinet. When the cabinet 100 is stored, transported, unassembled or during assembly, among other examples, the orientation of the parts and their relative positioning may vary.
[0016] We denote "F1" the front face of the cabinet 100, "F2" its rear face, "F3" its lower face, "F4" its upper face, "F5" its left face and "F6" its right face. These faces F1 to F6 are generally flat. In practice, the face F3 of the cabinet is therefore arranged on the plane P1.
[0017] The power cable 102 delivers to the electrical cabinet 100 a main power supply, preferably of a voltage of 400V three-phase with neutral, preferably at a frequency of 50Hz. Alternatively, the power cable 102 delivers a three-phase current without neutral, or a single-phase current.
[0018] The electrical loads 104 may for example be electric motors, such as three-phase motors, electricity distribution networks, or even controllable electrical loads, such as batteries or photovoltaic panels.
[0019] As visible at the Figure 1 , the electrical cabinet 100 comprises a power supply column 106, at least one electrical distribution column 108 and at least one connection column 110.
[0020] The supply 106, distribution 108 and connection 110 columns are juxtaposed along the X axis.
[0021] In the example shown, the electrical cabinet 100 comprises an electrical distribution column 108 and two connection columns 110, arranged on either side of the electrical distribution column 108. In practice, a connection column 110 is always juxtaposed with an electrical distribution column 108. An electrical distribution column 108 is always juxtaposed with one or two connection columns 110.
[0022] As visible at the Figure 3 , the association of an electrical distribution column 108 and one or two connection columns 110 forms a functional column 111. When a functional column 111 comprises two connection columns 110, these two columns are located respectively on either side, namely on the left and on the right on the figures 1 to 5, of the electrical distribution column 108. When a functional column 111 comprises a single connection column 110, this column is located indifferently, on one side or the other, namely on the left or on the right on the figures 1 to 5 , from the electrical distribution column 108.
[0023] Two other embodiments of a functional column 111 are visible in figures 4 And 5 and are described below.
[0024] In the example shown in figures 1 to 3 , the electrical cabinet 100 comprises a functional column 111.
[0025] In a variant of the invention not shown, the electrical cabinet 100 comprises several functional columns 111, juxtaposed along the X axis.
[0026] In the example shown, a functional column 111 has a height H1, measured along the Z axis, of 2000 mm. Alternatively, this height is different, for example 1500 mm or 2500 mm.
[0027] Height H1 also corresponds to the height of the electrical cabinet 100.
[0028] The power column 106 makes it possible to supply the entire electrical cabinet 100 with electrical energy from the power cable 102. Preferably, the power column is arranged at a longitudinal end of the cabinet 100, as in the example shown, where the power column is to the left of the cabinet 100.
[0029] As visible at the Figure 2 , in the power column 106, each phase and the neutral of the power cable 102 are connected to an input of a circuit breaker 112.
[0030] As visible to the figures 2 And 3, the power column 106 also comprises a set of power bars 114 comprising several power bars 116. Each output of the circuit breaker 112 is connected to a power bar 116. Thus, in the example of an electrical cabinet 100 supplied with three-phase current with neutral, the set of bars 114 of the column 106 comprises four power bars 116, corresponding to the three phases and the neutral of the power supply current.
[0031] The power busbar 114 is connected to a horizontal busbar 118. The horizontal busbar 118 comprises several horizontal bars 120, in practice as many horizontal bars 120 as bars 116. Thus, each bar 116 of the power busbar 114 is connected to a bar 120 of the horizontal busbar 118.
[0032] The horizontal busbar 118 extends along the longitudinal axis X of the electrical cabinet 100 and makes it possible to supply each electrical distribution column 108 of the cabinet. A horizontal sheath 119 is provided over the entire length of the electrical cabinet 100 and accommodates the horizontal busbar 118.
[0033] In the example of the figures 1 to 3 , the horizontal sheath 119 is positioned at the upper end of the electrical cabinet 100. In a variant of the invention not shown, the horizontal sheath 119 is positioned at the lower end of the electrical cabinet 100.
[0034] Each electrical distribution column 108 comprises a vertical busbar 122 which makes it possible to supply the or each connection column 110 adjacent to each electrical distribution column 108. In the example shown, the cabinet 100 therefore comprises a vertical busbar which makes it possible to supply the two connection columns 110.
[0035] Each vertical busbar 122 comprises several vertical bars 124, in practice as many vertical bars 124 as horizontal bars 120. Each vertical bar 124 is connected to a horizontal bar 120. The connection of the vertical busbar 122 to the horizontal busbar 118 is carried out in the horizontal sheath 119.
[0036] The power bars 116, the horizontal bars 120 and the vertical bars 124 are made of an electrically conductive material, for example copper, and are preferably flat bars. Preferably, they have a cross-section of between 250 and 3000 mm 2< .
[0037] The assembly of a power bar 116, a horizontal bar 120 and a vertical bar 124 per electrical distribution column 108 forms an electrical power line.
[0038] In the example shown, the cabinet 100 comprises four electrical supply lines, corresponding to the three phases and the neutral of the supply current coming from the cable 102. Other variants are conceivable, for example an electrical cabinet 100 supplied with single-phase current or three-phase current without neutral, comprising respectively two bars and three bars per set of busbars.
[0039] The circuit breaker 112 is connected between the power cable 102 and the power supply lines and therefore allows the power supply to be cut off from each power supply line. The circuit breaker 112 is therefore a protective device for the electrical cabinet 100.
[0040] Each connection column 110 allows the electrical connection of one or more electrical loads 104 to the electrical cabinet 100 and allows the electrical loads 104 connected thereto to be controlled.
[0041] Each connecting column 110 comprises a portion of the horizontal sheath 119. This portion of the horizontal sheath 119 extends over the entire length of the connecting column 110, along the X axis, and accommodates a portion of the horizontal busbar 118.
[0042] The electrical cabinet 100 is controlled by an industrial computer 130, shown only in the Figure 2 for clarity of the drawing, which is connected to the electrical cabinet by communication cables 132. This industrial computer allows the connection columns 110 to be controlled.
[0043] In practice, the industrial computer 130 comprises a calculation unit (not shown) which executes software for managing the electrical cabinet 100.
[0044] Alternatively, the industrial computer 130 is replaced by a real-time control and data acquisition system, called “SCADA”, which supervises the operation of the electrical cabinet 100, or the computer is integrated into such a system.
[0045] Each connection column 110 includes a communication module 134. As seen in the Figure 2 , the communication module 134 is positioned near the upper end of the connection column 110, and close to the horizontal sheath 119.
[0046] In a variant of the invention not shown, the communication module 134 is positioned at the lower end of the column.
[0047] In a variant of the invention not shown, when the horizontal sheath 119 is positioned at the lower end of the electrical cabinet 100, the communication module 134 can be positioned either at the upper end of the connection column 110, or near the lower end of the column, above the horizontal sheath.
[0048] The communication module 134 makes it possible to centralize all the information coming from the connection column 110 and to control the connection column. The content and role of this information are detailed below.
[0049] The communication module 134 communicates with the industrial computer 130 via the communication cables 132, on the one hand to transmit information on the operation of the connection column 110 and on the other hand to receive the commands coming from the industrial computer and to be transmitted to the connection column.
[0050] The communication module 134 of a connection column 110 therefore acts as an intermediary between the industrial computer 130 and this connection column 110 and makes it possible to centralize the exchanges between the computer and the column.
[0051] As visible at the Figure 6 , each communication module 134 in practice comprises a controlled network switch 135, called a “managed switch”.
[0052] When the electrical cabinet 100 comprises several connection columns 110, as in the example shown in figures 1 to 3 , the communication modules 134 of each connection column are connected to each other in series by internal communication cables 136. In practice, it is the managed switches 135 of the communication modules which are connected to each other by the internal communication cables 136.
[0053] Furthermore, in such a configuration, the managed switches of the communication modules 134 are all connected to a central switch 137 by the internal communication cables 136, the central switch 137 preferably being arranged in the power column 106. This central switch 137 acts as an intermediary between the communication modules 134 and the industrial computer 130, that is to say that the information coming from the industrial computer 130, for example commands, is distributed between the communication modules by the central switch 137 and that the information coming from the communication modules 134 is aggregated by the central switch before being transmitted to the industrial computer.
[0054] Thus, each managed switch 135 is connected to the industrial computer 130, independently of the other managed switches 135.
[0055] Such a configuration has the advantage of making the operation of the electrical cabinet 100 more reliable. Indeed, in the event of failure of a communication module 134, only the operation of the connection column 110 comprising this module will be affected because, the other non-failing modules being interconnected and connected to the central switch 137, their connection to the industrial computer 130 will not be interrupted by the faulty module.
[0056] Alternatively, when the electrical cabinet 100 comprises several connection columns 110, the managed switch 135 of each communication module 134 is directly connected to the industrial computer, without passing through a switch of the switch type 137.
[0057] Optionally, when the electrical cabinet 100 comprises a single connection column 110, a central switch 137 is arranged between the communication module and the industrial computer.
[0058] In the example shown, the internal communication cables 136 are cables using the Ethernet protocol. Alternatively, the internal communication cables 136 use another local network protocol, such as for example the MODBUS or PROFINET protocol.
[0059] To enable the connection of the electrical loads 104, each connection column 110 comprises one or more control-command units 138.
[0060] The electrical loads 104 being distant from the cabinet 100, their connection to the control-command units 138 is carried out by means of connection cables 139.
[0061] In the example shown, the control-command units 138 are control-command drawers which can therefore be installed in, and removed from, the connection column 110 simply and quickly. In a variant of the invention not shown, the control-command units 138 are fixed units of the cabinet, which are assembled during installation of the cabinet, for example by screwing into the column(s) 110.
[0062] In practice, a control-command unit 138 allows the electrical connection of an electrical load 104.
[0063] In the example shown, a connection column 110 comprises up to thirty control-command units 138 and therefore allows the connection of a maximum of thirty electrical loads 104. A connection column 110 is modular, that is to say that it is possible to install as many control-command units as desired, between one unit and thirty units. The control-command units 138 are juxtaposed vertically in the connection column 110.
[0064] Alternatively, a connecting column 110 may comprise more than thirty control-command units 138, for example if the height of a control-command unit is reduced or if the height of the connecting column 110 is increased.
[0065] The control-command units 138 also allow the control of the electrical loads 104 connected thereto. This control, also called piloting, consists, for example, when the electrical load is a motor, in piloting this motor, that is to say in starting it, stopping it and possibly controlling its speed, or again, when the electrical load is a distribution network, in delivering the voltage and intensity necessary for the proper functioning of this distribution network.
[0066] In addition, the control-command units 138 also allow the monitoring of the electrical loads 104 connected thereto. This monitoring consists, for example, of measuring the voltage and current delivered to the load 104, or of retrieving information from sensors such as, for example, position or rotation speed sensors or temperature sensors when the load 104 is a motor.
[0067] Thus, each control-command unit 138 may have a role of connecting an electrical load 104, controlling this load and monitoring this load. However, depending on the type of electrical load 104 connected to a control-command unit 138, this control-command unit may not have a role of controlling this load, or may not have a role of controlling the load.
[0068] As visible on the figures 2 And 3 , each connection column 110 comprises one or more protection units 140. Each protection unit 140 is configured to electrically protect one or more control-command units 138 as well as the electrical loads 104 which are connected to these control-command units, in particular in the event of failure of an electrical load 104, such as for example a short circuit.
[0069] The protection units 140 are, for example, circuit breakers arranged upstream of the control-command units 138 and which make it possible to interrupt the electric current supplying the loads 104 via the control-command units 138 in the event of an incident, for example in the event of a short circuit. In other words, the protection units 140 control the power supply to the control-command units 138.
[0070] Thus, the protection units 140 of a functional column 111 are arranged between the control-command units 138 and the vertical busbar 122 of the electrical distribution column 108 of this functional column 111 and make it possible to supply these control-command units 138, from said vertical busbar 122. The electrical connection of the protection units 140 to the vertical busbar 122 is carried out, in a known manner, for example by horizontal rigid busbars, flexible busbars or by electrical cables, not shown.
[0071] In other words, the vertical busbar 122 is a source of electricity for each protection unit 140.
[0072] In the case where a protection unit 140 is a circuit breaker, its electrical connection and operation are identical to those of the circuit breaker 112.
[0073] Each protection unit 140 protects one or more control-command units 138.
[0074] As visible at the Figure 2 , each connection column 110 comprises a computer bus 142, which connects the communication module 134 of a connection column to all of the control-command units 138 of this column. Each control-command unit 138 is therefore connected to a communication module 134.
[0075] In the example shown, the computer bus 142 is a housing comprising an electronic card, that is to say a printed circuit, of elongated shape, arranged vertically in the connection column 110. This electronic card comprises electronic circuits 144, or tracks, visible at the figure 25, enabling communication, i.e. the exchange of data, in the column for example according to the Ethernet protocol, from each control-command unit 138 to the managed switch 135 of the communication module 134 as well as from the managed switch of the communication module to each control-command unit. In other words, this data passes through the electronic circuits 144 of the computer bus 142.
[0076] Using the computer bus 142, the managed switch 135 of each connection column 110 controls each control-command unit 138 of this connection column and aggregates the data coming from the control-command units.
[0077] The control-command units 138 are connected to the computer bus 142.
[0078] Each computer bus 142 also has power supply tracks 148, visible in the figure 25, configured to conduct a first auxiliary electrical voltage, which makes it possible to supply the control-command units 138 with the first auxiliary electrical voltage, this first auxiliary voltage being necessary for the operation of certain components of the control-command units 138, detailed below. This first auxiliary voltage comes from the communication module 134 of each connection column 110. This first auxiliary voltage is for example a direct electrical voltage of 48V.
[0079] Alternatively, the first auxiliary voltage is a voltage of a different value, such as 12V, 24V, 110V direct current or 110V alternating current.
[0080] To deliver this first auxiliary voltage, the communication module 134 comprises at least one power supply unit 150.
[0081] When the electrical cabinet 100 comprises several connection columns 110, each communication module 134 comprises at least one power supply unit 150.
[0082] Optionally, each communication module 134 comprises two power supplies 150 which are redundant, as in the example shown in figures 6 And 7 Such a configuration is advantageous because in the event of failure of a power supply unit 150, the operation of the communication module 134 containing this unit and the operation of the connection column 110 containing this module are not interrupted.
[0083] Each computer bus 142 also has power supply tracks 154, visible in the figure 25, configured to conduct a second auxiliary electrical voltage, which is preferably an alternating voltage of 230V. This second auxiliary electrical voltage supplies electrical loads 104. This second auxiliary electrical voltage comes from the communication module 134 of each connection column 110.
[0084] In an exemplary embodiment, the computer bus 142 is a six-layer printed circuit board, with the power supply tracks 148 and 154 and the electronic circuits 144 distributed between these six layers. Alternatively, the computer bus 142 comprises a different number of layers.
[0085] Alternatively, the power supply tracks 148 and 154 of the computer bus 142 are replaced by electrical cables attached to the computer bus.
[0086] Thanks to the computer bus 142, it is possible to centralize on a single physical support the first and second auxiliary electrical circuits as well as the communication circuits connecting a communication module 134 of a connection column 110 with the control-command units 138 of this column.
[0087] There Figure 3 illustrates the interior arrangement of a functional column 111 of the electrical cabinet 100 of the figures 1 And 2 . In particular, the Figure 3 illustrates the different zones that each connecting column 110 comprises, namely: a functional zone 156, which comprises the control-command units 138 and the protection units 140 and which is adjacent to the electrical distribution column 108 so that the protection units 140 are arranged between the electrical distribution column and the control-command units; a connection zone 158, in which the electrical loads 104 are connected to the control-command units 138 and which is adjacent to the functional zone 156; a wiring zone 160, in which all the connection cables 139 are arranged and which is adjacent to the connection zone 158; and a thermal management zone 162, the role of which is specified below.
[0088] In practice, the functional zone 156 and the connection zone 158 are located at the front of the connection column 110, that is to say in the vicinity of the face F1 of the cabinet, and the wiring zone 160 occupies the entire width of the connection column, which corresponds to the width of the cabinet 100, that is to say from its front face F1 to its rear face F2.
[0089] In practice, the thermal management zone 162 is located at the rear of the connection column 110, in the vicinity of the rear face F2, and extends, in length, that is to say along the X axis, from the electrical distribution column 108 to the wiring zone 160.
[0090] Alternatively, the functional column 111 does not include a wiring zone 160 and all of the connection cables 139 are arranged in the connection zone 158.
[0091] It is understood that the internal arrangement of the left connection column 110 and the internal arrangement of the right connection column 110 are symmetrical with respect to a plane of symmetry P2 parallel to the vertical plane formed by the axes Y and Z and passing through the center of the electrical distribution column 108.
[0092] The functional area 156 extends over a height H2 less than the height H1, which makes it possible to install the communication module 134 above the functional area 156, as in the example shown in figures 1 to 3 , or below this area.
[0093] When a connection column 110 comprises the maximum number of control-command units 138, for example thirty units in the example shown, then these control-command units occupy the majority of the functional zone 156.
[0094] When a connection column 110 does not have the maximum number of control-command units 138, the functional area 156 is not entirely occupied by control-command units and comprises a free space. In such a configuration, the communication module 134 can also be installed in the free space of the functional area 156.
[0095] In the example shown, the height H2 is 1500 mm; it could be different as a variant.
[0096] The connection zone 158 extends over a height H3 less than the height H1 and greater than the height H2. In practice, the height H3 is equal to the sum of the height H2 and the height of the communication module 134. Furthermore, the height of the computer bus 142 is equal to the height H3.
[0097] In the example shown, the height H3 is 1600 mm.
[0098] The wiring zones 160 and thermal management 162 extend over the entire height H1 of the functional column 111. In practice, the horizontal sheath 119 therefore passes through the wiring zone 160.
[0099] Furthermore, the horizontal sheath 119 preferably passes above or below the functional 156 and connection 158 zones, so as not to pass into the thermal management zone 162.
[0100] In this configuration, the connection of the connection cables 139 to the control-command units 138 is carried out via the front face F1 of the cabinet 100.
[0101] Preferably, in this configuration, the width of the functional column 111, and therefore of the cabinet 100, denoted “ℓ1”, is 600 mm. The width of the wiring zone 160 is therefore also 600 mm. In addition, the width of the functional zones 156 and the connection zones 158, denoted “ℓ2”, is preferably 400 mm. In such a configuration, the width of the thermal management zone 162, denoted “ℓ3”, is therefore 200 mm.
[0102] There Figure 4 illustrates the interior arrangement of a second embodiment of a cabinet 100 with a functional column 111. This second embodiment differs from the embodiment of the figures 1 to 3in that the width ℓ1 of the functional column 111 is equal to the width ℓ2 and in that the connection columns 110 do not include a thermal management zone 162. The arrangement of the functional 156, connection 158 and wiring 160 zones is identical to the arrangement of these zones in the first configuration of the functional column 111, apart from the width of the wiring zone 160, which is equal to the width ℓ2. Alternatively, the functional column 111 of the second embodiment does not include a wiring zone 160 and all of the connection cables 139 are arranged in the connection zone 158.
[0103] There Figure 5 illustrates the interior arrangement of a third embodiment of a cabinet 100 with a functional column 111. This third embodiment differs from the embodiment of the figures 1 to 3in that the connection of the connection cables 139 to the control-command units 138 is carried out via the rear face F2 of the cabinet 100. Thus, the functional column 111 does not include a dedicated wiring zone 160 and the connections are made in the thermal management zone 162. The widths ℓ1, ℓ2 and ℓ3 are the same as in the embodiment of the figures 1 to 3 .
[0104] As is evident from the comparison of the figures 3 to 5 , the interior arrangement of a functional column 111 is adaptable, which gives greater modularity to the electrical cabinet 100.
[0105] In particular, the arrangement of a functional column 111 makes it possible to choose to connect the connection cables 139 either via the front of the cabinet 100 or via the rear of the cabinet 100.
[0106] Preferably, in a cabinet 100, the width of all the functional columns 111 is equal to either ℓ1 or ℓ2, and the width of the power column 106 is chosen to be equal to the width of the functional columns.
[0107] Alternatively, it is possible that in an electrical cabinet 100, certain functional columns 111 have a width equal to ℓ1 and other functional columns a width equal to ℓ2.
[0108] The internal communication cables 136 are preferably positioned, depending on the height of the cabinet 100, opposite the horizontal busbar 118 in order to avoid any electromagnetic interference. In practice, this means that, preferably, the cables 136 are positioned at the top of the cabinet 100 when the horizontal sheath 119 is located at the bottom of the cabinet and these cables are positioned at the bottom of the cabinet when this horizontal sheath is located at the top of the cabinet.
[0109] Alternatively, when the width ℓ1 of a connection column 110 is equal to 600 mm, the internal communication cables 136 can be positioned as close as possible to the rear face F2 of the cabinet 100, therefore to the connection column 110, so as to pass through the thermal management zone 162. In such a configuration, the cables 136 are sufficiently far from the horizontal busbar 118 to avoid any electromagnetic interference, even when the cables and the busbar are positioned at the top, or at the bottom, of the connection column.
[0110] Preferably, as visible in the Figure 3 , the length L1 of a power column 106 is 650 mm, the length L2 of an electrical distribution column 108 is 150 mm, the length L4 of a wiring area 160 is 300 mm and the length L5 of a functional area 156 and a connection area 158 is 650 mm. Thus, the length L3 is 950 mm.
[0111] Thus, the length L111 of a functional column 111 comprising two connection columns 110 is preferably equal to 2650 mm in a configuration where each connection column comprises a wiring zone. Alternatively, when no connection column comprises a wiring zone 160, the length L5 is equal to the length L3 and the length L111 of a functional column 111 is preferably equal to 2050 mm.
[0112] Alternatively, the lengths L1, L2, L3, L4, L5 and L111 are different.
[0113] The cabinet 100 in practice comprises a frame 164 and covering sheets 166.
[0114] In the example shown, the frame 164 comprises several frames 168 and crosspieces 170, the crosspieces 170 connecting the frames together and each frame being formed by four bars 172.
[0115] Of the four bars 172 of a frame 168, two are arranged along the Y axis and two are arranged along the Z axis, so as to form a rectangle. Thus, each frame 168 is a rectangle parallel to the plane formed by the Y and Z axes.
[0116] The crosspieces 170 extend along the X axis and allow the frames 168 to be assembled together. Advantageously, the crosspieces 170 are arranged at the upper end and at the lower end of the cabinet 100 and thus form bands and plinths respectively, which is aesthetic.
[0117] The covering sheets 166 are fixed to the frame 164 so as to close the front F1, rear F2, upper F4, left F5 and right F6 faces of the cabinet 100. Thus, the interior of the cabinet 100 is protected.
[0118] In the example of the Figure 1, the cabinet 100 does not include a covering sheet 166 over the entire front face F1 of the connection columns 110 of the cabinet 100, so that one face of each communication module 134, of each control-command unit 138 and of each protection unit 140 is accessible from the outside. Alternatively, the communication modules and the protection and connection units are protected by covering sheets 166.
[0119] Each covering sheet 166 may further be a door, which allows access to the interior of the cabinet 100. The covering sheets 166 may be opaque or transparent. Figure 1 represents the case where the covering sheets 166 located at the level of the power column 106 and the wiring zones 160 are opaque.
[0120] Furthermore, when the cabinet 100 has a width ℓ1 of 600 mm, the frame 164 also comprises reinforcements 174, which extend from the rear face F2 of the cabinet over a distance of 200 mm. Thus, the reinforcements 174 extend over the entire width of the thermal management zone 162, up to the interface between this thermal management zone and the functional 156 and connection 158 zones.
[0121] In practice, each column - power supply, electrical distribution and connection - of the cabinet 100 comprises an independent frame and the frames of two adjacent columns are linked together, for example using screws, which allows great modularity in the design and in the assembly of a cabinet 100.
[0122] Alternatively, each functional column 111 comprises a framework 164 common to the electrical distribution column 108 and to the connection column(s) 110 of this functional column 111.
[0123] Alternatively, the design of the frame 164 of the cabinet 100 is different, for example the frames 168 form rectangles parallel to the plane formed by the X and Z axes and the crosspieces 170 extend along the Y axis.
[0124] The detail of a 134 communication module is visible at figures 6 And 7 .
[0125] The communication module 134 comprises a front face 176 and a rear face 178.
[0126] In the example shown, between the front face 176 and the rear face 178, the communication module extends over a width ℓ134 of 400 mm.
[0127] When the communication module is installed on the connection column 110, the front face 176 of the module is at the level of the front face F1 of the column and of the cabinet and the rear face 178 of the module is either at the level of the rear face of the cabinet, when the cabinet has a width ℓ2 of 400 mm as in the embodiment of the Figure 4 , either at the level of the reinforcements 174, when the cabinet 100 has a width ℓ1 of 600 mm, as in the embodiments of the figures 1 to 3 And 5 .
[0128] On the front face 176 there is a front ventilation grille 180 and two locks 182, only one of which is visible on the Figure 6 The locks 182 are arranged symmetrically with respect to a median plane π134 of the drawer 134 and make it possible to maintain the communication module 134 mounted in the connection column 110 by cooperating with the frame 164. They can be actuated from outside the cabinet 100, via its front face F1.
[0129] On the rear face 178 is provided a rear ventilation grille 184. When the cabinet 100 has a width ℓ2 of 400 mm as in the embodiment of the Figure 4, the ventilation grille 184 connects the interior of the communication module with the exterior of the cabinet. When the cabinet 100 has a width ℓ3 of 600 mm as in the embodiments of the figures 1 to 3 And 5 , the ventilation grille 184 connects the interior of the communication module with the thermal management area 162.
[0130] Thanks to the front 180 and rear 184 ventilation grilles, the air located inside the communication module 134 is constantly renewed by natural convection, which makes it possible to cool the communication module and maintain an internal temperature in this module compatible with its operation, by evacuating the calories produced by the heating of the electronic components contained in the communication module, and in particular by the heating of the power supply units 150.
[0131] In practice, air enters through the front ventilation grille 180, is heated by the electronic components of the communication module, which allows these components to be cooled, then exits through the rear ventilation grille 184.
[0132] Alternatively, a fan is installed in the communication module 134 to force airflow from the front to the rear of the module. This fan is, for example, installed on the front air vent, or on the rear air vent, or carried by a power supply 150.
[0133] The front face 176 of the communication module 134 includes indicators 185 of operation of the communication module, visible at the Figure 1 These indicators 185 are, for example, indicator lights which indicate the correct operation of the power supply units 150 or a failure, i.e. an interruption in the supply of the first auxiliary voltage.
[0134] Each connecting column 110 comprises two side rails 186, fixed on the frame 164. The side rails 186 are shown in the figures 6 And 7 .
[0135] The communication module 134 comprises two side faces 187, which extend from the front face 176 to the rear face 178. These side faces 187 cooperate with the side rails 186 of the connection column 110, and allow the communication module 134 to be placed in the connection column and removed by sliding it like a drawer, in a direction parallel to the Y axis. The assembly and disassembly of the communication module 134 are therefore quick and easy.
[0136] The two redundant power supplies 150 are connected to an electronic card 188. In practice, the electronic card 188 comprises two connectors 189, on which the power supplies 150 are plugged.
[0137] The electronic card 188 allows the two power supplies 150 to be controlled and the first auxiliary electrical voltage to be managed.
[0138] The electronic card 188 is configured to, in the event that one of the two power supply units 150 is faulty, alert of this fault, for example by means of an indicator 185, but continues to manage the first auxiliary electrical voltage, supplied by the second non-faulty power supply unit.
[0139] The front face 176 of the communication module comprises a cover 190. This cover 190 is removable from the front face 176 and is arranged opposite the two power supply units 150. Thus, when the electronic card 188 signals that a power supply unit 150 is faulty, it is possible to remove the cover 190 to directly access the faulty power supply unit, extract it from the communication module 134 and then replace it with a functional power supply unit. This replacement operation is therefore carried out without requiring the communication module 134 to be removed from the connection column 110, which allows it to be carried out without interrupting the operation of the communication module, the other power supply unit of which remains active.
[0140] This replacement of a power supply unit during operation is advantageous because it allows the operation of the connection column 110 not to be stopped.
[0141] In addition, the electronic card 188 supplies the managed switch 135 with first auxiliary electrical voltage to enable the operation of this switch.
[0142] The electronic card 188 also supplies a first auxiliary electrical voltage to a first connector 192, arranged on a side face 187, and which makes it possible to connect the first auxiliary electrical voltage to another column of the cabinet 100, for example to the first connector 192 of the communication module 134 of another connection column 110. Thus, in the event of failure of the two power supply units 150, a communication module 134 is still supplied with the first auxiliary electrical voltage, by the communication module 134 of another connection column.
[0143] Alternatively, this connection also makes it possible not to install a power supply unit 150 in all the communication modules 134 of a cabinet 100.
[0144] In addition, the first connector 192 supplies the computer bus 142 with first auxiliary electrical voltage.
[0145] The electronic card 188 comprises a computing unit 193 which executes software making it possible to control the managed switch 135 and the power supplies 150. In practice, the electronic card 188 and the managed switch 135 are connected by an internal communication cable (not shown), for example an Ethernet cable.
[0146] The power supplies 150 are themselves powered by the second auxiliary electrical voltage. The second auxiliary electrical voltage therefore makes it possible to power both the power supplies 150 and the electrical loads 104.
[0147] The communication module 134 comprises a protective housing 194, which is for example a circuit breaker. The protective housing 194 supplies the communication module 134 with a second auxiliary voltage. For this, the protective housing 194 is itself supplied by being connected to a power source external or internal to the electrical cabinet 100.
[0148] In practice, the housing 194 is connected to a second connector 196, arranged on the same side face 187 as the first connector 192, which makes it possible to connect the protective housing to the external or internal power source.
[0149] Alternatively, the protective box 194 is connected to a vertical bar 124 of the vertical busbar 122 and to a neutral. By connecting to a single vertical bar of a busbar and to a neutral, the box 194 is supplied with a voltage lower than the voltage delivered by the main power supply. For example, when the main power supply is a three-phase power supply that delivers a voltage of 400V, the auxiliary electrical voltage obtained by connecting to a phase and a neutral is 230V.
[0150] Advantageously, the protective box 194 also supplies the computer bus 142 with a second auxiliary voltage.
[0151] The side face 187 which carries the first and second connectors also comprises two communication connectors 198 connected to the managed switch 135. Among these two communication connectors 198, a first connector allows the connection of an internal communication cable 136 connected to the communication module of another connection column 110, in the case where the cabinet 100 comprises several connection columns 110, and a second connector allows the connection of an internal communication cable 136 connected to the central switch 137. Alternatively, the first and second connectors are each connected to a communication module of another connection column 110, so as to connect three connection columns together. Alternatively, the communication module 134 comprises a number of communication connectors 198 other than two, for example one or three.
[0152] Openings are provided in the side rails 186 to allow access to the connectors 192, 196 and 198 when the communication module is mounted on the side rails.
[0153] A 110 connection column can be configured for several different uses: A first configuration in which the connection column allows connection to electric motors, such as for example three-phase motors. Each electric motor is connected to a control-command unit. The connection column 110 then makes it possible to power these electric motors and to control them. In this first configuration, the connection column 110 is then called “motor starter column”. A second configuration in which the connection column allows connection to downstream electrical distribution circuits, such as for example electrical panels or electrical distribution cabinets. The connection column 110 then makes it possible to distribute the energy coming from the power cables 102 to several downstream circuits, each downstream circuit being connected to a control-command unit, and to protect these downstream circuits.In this second configuration, the connection column 110 is then called a “current distribution column”. A third configuration in which the connection column allows connection to controllable electrical loads, such as for example photovoltaic panels or batteries. Each electrical load is connected to a control-command unit 138. The connection column 110 then allows these electrical circuits to be powered and controlled. In this third configuration, the connection column 110C is then called a “load control column”.
[0154] In practice, the configuration and architecture of the functional area 156, and more particularly of the control-command units 138, differ between the three configurations listed above. In addition, other configurations associated with other uses are conceivable.
[0155] The following discussion details the configuration and architecture of a 110 engine starter column.
[0156] Some of the elements mentioned below are described in the context of the motor starting column, but their application is not limited exclusively to their use in a motor starting column. Thus, some of the elements introduced below may also be applicable to elements used in a current distribution column or in a load control column, for example.
[0157] Thus, the following description details the configuration and architecture of a 200 engine starter module.
[0158] The configuration and architecture of this module can be transposed to other configurations, such as in the case of a current distribution column, where the motor starter module then corresponds to a distribution module which makes it possible to distribute an electric current to one or more downstream circuits and to protect these circuits, or in the case of a load control column, where the motor starter module then corresponds to a control module which makes it possible to supply electrical loads and to control them. Other uses are conceivable.
[0159] The term “functional module” refers to any module whose architecture can be transposed from the architecture described below of an engine starter module 200, such as for example a distribution module or a control module.
[0160] The engine starter column 110 comprises one or more engine starter modules 200, one of which is visible at figures 8 And9 .
[0161] Each engine starter module 200 of an engine starter column 110 is mainly located in the functional area 156 and partially located in the connection area 158 of this engine starter column.
[0162] When an engine starter column 110 comprises several engine starter modules 200, the engine starter modules are juxtaposed vertically.
[0163] In practice, each engine starter module 200 comprises a protection unit 140 and at least one control-command unit 138. Each control-command unit 138 of an engine starter module is electrically protected by the protection unit 140 of this engine starter module.
[0164] Furthermore, each control-command unit 138 is connected to the protection unit 140 protecting this control-command unit, so as to be able to communicate to this protection unit information on the operation of this control-command unit.
[0165] In the example shown, the control-command units 138 are drawers whose height can take several defined values. In the remainder of the description, the control-command units 138 are therefore called “drawer 138”. A basic height of a drawer is defined as a unit height, noted “U”. The height of a drawer can be equal to an integer multiple of this basic height, up to a limit of six times the unit height U.
[0166] Thus, a 138 drawer can occupy a height of 1U, 2U, 3U, 4U, 5U or 6U.
[0167] Preferably, the unit height U is equal to 50 mm. Thus, a 138 drawer of height 6U will, in this example, have a height of 300 mm.
[0168] Each motor starter module 200 has a main height, denoted “H4”, equal to 6U. In the example shown, the functional zone 156 has a height H2 of 1500 mm and can therefore comprise up to five motor starter modules 200.
[0169] Furthermore, the width of a motor starter module, measured along the Y axis, is equal to the width ℓ2 of the functional area in which the module is installed
[0170] Each 200 motor starter module is configured to accommodate any technically permissible combination of drawers, depending on the height of those drawers. For example, a motor starter module can accommodate six 1U high drawers, or three 2U high drawers, or one 6U high drawer.
[0171] As visible to the figures 8 And 9, each engine starter module 200 includes the following elements: a support structure 202; a protection unit 140; a computer bus section 204, which corresponds to a part of the computer bus 142; at least one drawer 138, in practice between one and six drawers 138; at least one input-output module 206, in practice as many input-output modules 206 as drawers 138, i.e. between one and six input-output modules; and at least one external connection module 208, in practice as many connection modules 208 as drawers 138, i.e. between one and six external connection modules. Each external connection module 208 is configured so that an electrical load 104 is connected to it and to power this electrical load. In practice, in the case of a motor starter module 200, each load 104 is an electric motor.
[0172] In the example shown in the figure 8, the 200 motor starter module shown accommodates a 2U height drawer and a 4U height drawer.
[0173] In the example shown in the Figure 9 , the 200 motor starter module shown accommodates two 1U high drawers and two 2U high drawers.
[0174] There are three main positions defined for drawer 138 in the engine starter module: An operating position of the drawer, in which the drawer is fully inserted into the motor starter module 200. This position corresponds to the normal operating position of the drawer 138, i.e., on the one hand, the drawer 138 supplies electrical energy to an external connection module 208 and the electrical load 104 connected thereto, and on the other hand, the drawer 138 is connected to the communication module 134 and to the protection unit 140. All the drawers of the figure 8 and the three lower drawers of the Figure 9are shown in the operating position. A drawer test position, in which the drawer is partially inserted into the motor starter module 200. This position corresponds to an intermediate position in which the drawer 138 operates, i.e. the elements it contains are supplied with electrical energy and it communicates but the drawer does not supply an electrical load 104. The upper drawer of height 1U is shown in the test position at Figure 9 . A disconnected position of the drawer, in which the drawer is partially or completely extended from the engine starter module 200 and in which the drawer is not supplied with electrical energy and does not supply an electrical load 104.
[0175] Drawer 138 is configured to be movable between these three positions.
[0176] As visible at the Figure 10, the support structure 202 of each engine starter module 200 comprises a rear support 210 and a side support 212.
[0177] The rear 210 and lateral 212 supports make it possible, on the one hand, to fix the engine starter module 200 to the engine starter column 110 and, on the other hand, to fix the computer bus section 204, the protection unit 140, each drawer 138, each input-output module 206 and each external connection module 208 to the engine starter module 200.
[0178] In practice, each engine starter module 200 is fixed to the frame 164 of the engine starter column 110 to which the module belongs through its support 202.
[0179] For this, the rear support 210 is fixed either to bars 172 of the frame 164 located on the rear face of the cabinet, when the cabinet has a width ℓ2 of 400 mm as in the embodiment of the Figure 4, or to the reinforcements 174 of the frame 164 when the cabinet has a width ℓ1 of 600 mm as in the embodiments of the figures 1 to 3 And 5 The side support 212 is fixed to bars 172 of the frame 164 located on the front face of the cabinet.
[0180] The supports 210 and 212 are preferably fixed to the frame 164 using screws, not shown in the figures.
[0181] The supports 210 and 212 are fixed together preferably using screws, not shown in the figures.
[0182] In the assembled configuration of the motor starter module 200 on the cabinet 100, the rear support 210 extends mainly parallel to the plane formed by the X and Z axes. It is of generally rectangular shape and comprises ventilation holes 214, in the example shown six ventilation holes.
[0183] The rear support 210 comprises a set of fixing holes 216 which make it possible to fix the rear support 210 both to the frame 164 and to the elements of the engine starter module 200 such as for example the protection unit 140 or the external connection modules 208.
[0184] The lateral support 212 extends mainly parallel to the plane formed by the Y and Z axes, in the assembled configuration of the motor starter module 200 on the cabinet 100. It is generally rectangular in shape.
[0185] The side support 212 is configured to be fixed on the one hand, at a first end, to the rear support 210 and on the other hand, at a second end, to the frame 164 of the cabinet 100. The side support 212 comprises a set of fixing holes 218 which allow this mounting, which is preferably carried out using screws not shown.
[0186] The side support 212 comprises openings 220, located near the rear support 210, i.e. near the rear of the engine starter module. These openings are configured to allow the passage of the external connection modules 208, as seen in the figure 8 . In practice, the lateral support 212 comprises six openings 220.
[0187] The lateral support 212 further comprises windows 222, the role of which is explained below. In practice, the support comprises six windows 222.
[0188] The rear 210 and lateral 212 supports are, in the example shown, formed by folded and pierced metal sheets.
[0189] The support structure 202 further comprises rails 224, in practice six rails 224, which extend along the Y axis. The rails 224 are preferably fixed to the lateral support 212 by screws not shown.
[0190] Each rail 224 comprises two windows 226, juxtaposed along the Y axis. When a rail is fixed to the lateral support 212, its two windows 226 are opposite a window 222 of the lateral support 212, as visible in the figures 8 And 10 .
[0191] On the Figure 10 , two rails 224, namely the upper rail and the lower rail, are shown in exploded view, that is to say that these two rails are shown dismantled from the lateral support 212. The other, intermediate rails are shown in place on the lateral support 212.
[0192] Each rail 224 is “U” shaped, with a bottom 228 parallel to the plane formed by the Y and Z axes and in which the windows 226 are provided, and two edges 230 which extend perpendicular to the bottom 228. The two edges 230 are therefore opposite each other.
[0193] Furthermore, the edges 230 of each rail 224 comprise a tab 232, which extends towards the opposite edge of the rail. The tabs 232 of a rail are provided in its edges 230 at the window 226 of this rail closest to the rear support 210, more precisely at one end of this window closest to the rear support 210.
[0194] A protection unit 140 is shown in perspective at figures 11 And 12 .
[0195] This protection unit contains the protection member or members not shown, such as for example a circuit breaker, which protect the drawer or drawers 138 of the motor starter module 200.
[0196] The protection unit 140 comprises a front face 234, a rear face 236, an inner face 238 and an outer face 240.
[0197] In practice, in the mounted configuration, the front face 234 of the protection unit is contained in the same plane as the front face F1 of the cabinet 100.
[0198] In practice, the front and rear faces 234 and 236 are parallel to the plane formed by the X and Z axes and the inner and outer faces 238 and 240 are parallel to the plane formed by the Y and Z axes.
[0199] The rear face 236 of the protection unit 140 is fixed to the rear support 210 of the structure 202 of the engine starter module 200, for example using screws, not shown, which pass through the fixing holes 216 of the rear support.
[0200] When the protection unit 140 is fixed to the structure 202, the inner face 238 of the protection unit and the lateral support 212 of the structure 202 face each other, that is to say they are arranged opposite each other. A volume V1 is defined as the volume located between the inner face 238 of the protection unit, the rear support 210 and the lateral support 212.
[0201] The electrical connection of the protection unit 140 to the vertical busbar 122 is made using electrical connectors 244, arranged on the outer face 240 of the protection unit, as visible in the Figure 12. Each connector 244 is connected to a vertical bar 124 of the vertical busbar 122. In practice, the protection unit 140 comprises four electrical connectors 244, which makes it possible to connect, for example, a power supply comprising three phases and a neutral. Furthermore, it is possible not to connect certain electrical connectors 244, for example if the power supply of the electrical cabinet 100 comprises three phases without neutral, or one phase and a neutral.
[0202] The protection unit 140 comprises several groups of electrical outlets 246. These groups of electrical outlets extend from the rear face 236 of the protection unit, towards its front face 234. In other words, the groups of electrical outlets 246 are arranged in the volume V1.
[0203] In practice, the protection unit 140 comprises six groups of electrical outputs 246.
[0204] The protection unit 140 can therefore protect up to six drawers 138.
[0205] The protection unit 140 therefore makes it possible to pool the protection of the drawers 138 of a motor starter module 200. This pooling is advantageous because it makes it possible to reduce the cost of the motor starter module, each drawer 138 not requiring a dedicated protection unit.
[0206] Furthermore, it is advantageous that the protection unit 140 is not integrated into the drawers 138. Indeed, in the event of failure of a drawer, only this drawer needs to be replaced and the protection unit 140 does not have to be replaced, which is less expensive.
[0207] Each group of electrical outputs 246 comprises four electrical outputs 248, each connected to one of the four electrical connectors 244.
[0208] The protection member of the protection unit 140 is therefore arranged between the electrical connectors 244 and the electrical outputs 248.
[0209] This protection device is therefore connected, for each phase and the neutral, at the input to a connector 244 and at the output to six electrical outputs 248, that is to say to one of the four electrical outputs of each group of electrical outputs.
[0210] A 246 electrical outlet group is contained in a volume of height equal to 1U.
[0211] The protection unit 140 comprises rails 250, preferably six rails 250, which are identical to the rails 224 of the support structure 202. In particular, the rails 250 comprise windows 252 and tabs 254
[0212] The rails 250 are arranged on the inner face 238 of the protection unit.
[0213] On the Figure 11, the upper and lower rails 250 are shown in exploded view, that is to say that these rails are removed from the protection unit 140. The other intermediate rails 250 are shown in place on the protection unit 140.
[0214] The rails 250 face the rails 224 of the support structure 202, that is, each rail 250 extends parallel to, and in the same horizontal plane as, a rail 224. Thus, a rail 250 and a rail 224 together form a pair of rails.
[0215] As described below, a pair of rails formed of a rail 250 and a rail 224 allows a drawer 138 to be moved between its operating position, its test position and its disconnected position.
[0216] Furthermore, the inner face 238 of the protection unit 140 comprises windows 256, in practice six windows 256, which are located opposite the windows 252 of the rails 250.
[0217] A 4U high 138 drawer is shown in figures 13 And 14 .
[0218] This 4U high 138 drawer includes a 300 front section.
[0219] As visible at the Figure 13 , the front part 300 of the drawer extends mainly parallel to the plane formed by the X and Z axes.
[0220] All 138 drawers include a front part 300, which is different depending on the height of the drawer. Thus, the height of the front part is adapted to the height of the drawer of this front part. A front part 300 can therefore have a height of 1U, 2U, 3U, 4U, 5U or 6U.
[0221] In the remainder of the description, any element described with reference to the 4U high drawer 138 of the figures 13 And 14 is also present in 138 drawers of different heights, unless explicitly mentioned.
[0222] The front part 300 comprises a display 302, which displays information on the operation of the drawer 138. This information is, for example, the reference of the electrical load 104 controlled by the drawer 138, the electrical power delivered to this electrical load, or even the state of this electrical load.
[0223] Alternatively, the display 302 further includes a light-emitting diode, or "LED," strip that includes one or more LEDs capable of emitting visual indicators in the form of colors.
[0224] The front part 300 includes a main handle 304.
[0225] The handle 304 includes a base 306 and a grip extension 308.
[0226] In practice, the base 306 and the gripping extension 308 are formed from a single piece, assembled to the front part by fixing means 309 such as screws.
[0227] The base 306 includes a button 310. The button 310 makes it possible to issue a command to open the electromagnetic lock 311 arranged on one side of the drawer 138, as seen in figures 13 And 14 where the electromagnetic lock 311 is on the side of the rail 250 of the protection unit 140.
[0228] Alternatively, the electromagnetic lock 311 is arranged on another side of the drawer 138, as seen in figures 15 And 16 , where the electromagnetic lock 311 is on the side of the rail 224 of the support structure 202. Alternatively, two electromagnetic locks 311 are arranged on the drawer 138, each on one side.
[0229] In a variant of the invention not shown, the button 310 is arranged at another location on the front part 300 of the drawer 138.
[0230] This electromagnetic lock 311 is movable between a drawer locking position 138 and a drawer unlocking position 138.
[0231] In the locking position of the drawer 138, the electromagnetic lock 311 makes it possible to maintain the drawer 138 either in the operating position or in the test position. In other words, the electromagnetic lock prevents the drawer from being inserted into the engine starter module 200 from its test position to its operating position and prevents it from being removed from the engine starter module from its operating position or from its test position.
[0232] In the unlocked position of the drawer 138, the electromagnetic lock allows the drawer to be freely inserted into the engine starter module from its test position to its operating position, or removed from the engine starter module from its operating position or from its test position.
[0233] In practice, in the locking position of the drawer 138, the electromagnetic lock 311 extends outside the drawer and mechanically blocks its insertion into the engine starter module or its exit from the engine starter module, as detailed below.
[0234] By default, the electromagnetic lock 311 is in the drawer locking position 138 and the lock switches to the drawer unlocking position when it receives an opening command. In the absence of an opening command, the lock switches to the default drawer locking position.
[0235] In the example, button 310 must be pressed into base 306 to issue an open command and a spring (not shown) keeps the button unpressed.
[0236] In other words, to insert the drawer 138 into the engine starter module from its test position to its operating position, or to remove the drawer 138 from the engine starter module from its operating position, it is necessary to actuate the button 310. Thus, the button 310 makes it possible, when actuated, to send an opening command controlling the unlocking of the electromagnetic lock 311 and thus to authorize the movement of the drawer from its operating position or from its test position.
[0237] In practice, the electromagnetic lock 311 controlled by the button 310 prevents the insertion of the drawer 138 from its test position to its operating position, or the exit of the drawer 138 from its operating position, by interfering with the rail 224 or with the rail 250.
[0238] On the figures 36 And 37, the drawer 138 is shown locked by the electromagnetic lock 311 respectively in the test position and in the operating position. In this example, the electromagnetic lock 311 is shown on the side of the rail 224 of the support structure 202.
[0239] The following description of the operation of the electromagnetic lock 311 applies identically to an electromagnetic lock disposed on the side of a rail 250 and interfering with this rail 250 to prevent the movement of the drawer 138.
[0240] As visible on these figures 36 And 37, the electromagnetic lock 311 comprises a tilting lever 3111 and a bolt 3113 arranged at a first end 3115 of the tilting lever 3111. The tilting lever is rotatable about a second end 3117. Thus, when the electromagnetic lock 311 receives an opening command, the tilting lever 3111 is rotated so as to move the bolt 3113.
[0241] In the locking position of the electromagnetic lock 311, the bolt 3113 is arranged in a slot 2241 of the rail 224, when the drawer 138 is in the test position, or in another slot 2243 of the same rail 224, when the drawer is in the operating position.
[0242] Thus, the movement of the drawer 138 is blocked by the contact of the bolt 3113 with the edge of the slot 2241 or the edge of the slot 2243 of the rail 224 of the support structure 202.
[0243] The rotation of the rocking lever 3111 is driven by an electromagnetic actuator, not shown. This electromagnetic actuator is activated when the electromagnetic lock 311 receives an opening command. In practice, the actuation of the button 310 generates an opening command, which is an electrical signal, which controls the activation of the actuator of the electromagnetic lock 311.
[0244] In a variant of the invention not shown, the electromagnetic lock 311 does not include a tilting lever that can rotate and the bolt 3113 is driven in translation by an electromagnetic actuator, for example via a slider.
[0245] The base 306 includes a pull tab 312, accessible through a window 314 of the base 306.
[0246] The pull tab 312 is operable between a button 310 locking position and a button 310 unlocking position.
[0247] In the locking position of the button 310, the pull rod 312 mechanically prevents the button 310 from being actuated. In other words, in this position, it is not possible to send an opening command to the electromagnetic lock 311 and, therefore, it is not possible to move the drawer 138 from its operating position or from its test position in the engine starter module 200.
[0248] The position of the pull tab 312 in which the button 310 is prevented from being actuated by the pull tab therefore corresponds to a locking position of the drawer 138.
[0249] To the Figure 13 , the pull tab 312 is shown in the locking position of the button 310. In practice, the pull tab 312 can be translated along the X axis relative to the base 306 and the locking position of the pull tab is obtained when the pull tab is to the right of the window 314 of the base.
[0250] The grip extension 308 of the handle is configured to be easily gripped by hand and thus facilitate movement of the drawer 138 within the motor starter module 200, parallel to the Y axis.
[0251] Further, the grip extension 308 includes a through hole 316. The hole 316 is configured to allow placement of a locking device 318 in the main handle 304.
[0252] Locking devices 318 are shown in figures 8 And 9 , and are, in the example, padlocks.
[0253] In practice, the through hole 316 is configured to be able to place several locking devices 318 there, for example the rods of three locking devices.
[0254] The pull tab 312 is fixedly attached to a rod 810 visible at the figure 40 , which extends into the main handle 304 of the drawer 138.
[0255] The rod 810 comprises a first free end 812 and a second free end 814.
[0256] The first end 812 of the rod 810 is fixedly connected to a support plate 816, which is driven into movement by the pull rod 312. Thus, the pull rod 312 transmits a translational movement to the rod 810 via the support plate 816.
[0257] In practice, the support plate 816 is arranged in the base 306 of the handle 304, and is movable in translation in the base 306 along an axis parallel to the axis X of the drawer 138.
[0258] The free end 814 of the rod 810 is configured so as, in the locking position of the button 310, not to extend into the through hole 316 and so as, in the unlocking position of the button 310, to extend into the through hole 316.
[0259] Thus, when the locking device 318 is in place in the through hole 316, the pull tab 312 cannot be actuated towards the unlocking position of the button 310, because the end 814 of the rod 810 is prevented from extending into the through hole 316 by the locking device 318, in the example by the shackle of a padlock.
[0260] In addition, the rod 810 comprises a cutout 818. When the pull tab 312 is in the unlocking position of the button 310, the cutout 818 is located opposite the button 310 and does not prevent the button from being activated. Conversely, when the pull tab 312 is in the locking position of the button 310, the cutout 818 is offset, along the X axis, relative to the button 310, and the body of the rod 810 then prevents the button from being actuated.
[0261] In other words, when the pull tab 312 is in the locking position of the drawer 138 and possibly when a locking device 318 is in place in the through hole 316, the button 310 cannot be actuated.
[0262] In summary, when the pull tab 312 is in the locking position of the button 310, it is possible to put in place a locking device 318 in the hole 316 of the handle 304, which makes it possible to prevent the translation of the pull tab 312 towards the unlocking position of the button 310. This makes it possible to block the actuation of the button 310 and therefore the sending of a command to unlock the drawer 138 by the electromagnetic lock 311.
[0263] The support plate 816, integral with, and actuated by, the pull tab 312 is further connected to a mechanical lock 820, visible on the figures 36 to 40 . On the figures 36 And 37, the rail 224 is partially hidden, in order to make part of the mechanism of the mechanical lock 820 visible.
[0264] In the example shown in these figures, the mechanical lock 820 is shown on the side of a rail 224. The description below of the operation of the mechanical lock 820 applies identically to a mechanical lock arranged on the side of a rail 250 and interfering with this rail 250 to prevent the movement of the drawer 138.
[0265] The mechanical lock 820 is complementary to the electromagnetic lock 311 and these locks together form a drawer locking system 138.
[0266] Preferably, the mechanical lock 820 is made of a metallic material, for example steel.
[0267] The mechanical lock 820 comprises a structure 822, which is fixed to the drawer 138. This structure 822 extends mainly parallel to the Y axis, i.e. parallel to the axis of movement of the drawer 138 in the motor starter module 200.
[0268] Further, when drawer 138 is mounted in motor starter module 200, structure 822 is received in rail 224.
[0269] The structure 822 includes a boss-shaped tab 824 which is in contact with the rail 224 and thus makes it possible to maintain electrical continuity between the structure 822 and the rail 224, when the drawer is mounted in the engine starter module. In particular, this electrical continuity allows the drawer 138 to have a common ground with the engine starter module 200.
[0270] The mechanical lock 820 comprises a rod 826, which extends mainly parallel to the Y axis and which is movable in translation along this axis relative to the structure 822.
[0271] The rod 826 comprises a first end 828, a main body 829 and a second end 830.
[0272] The second end 830 is thin relative to the main body 829, that is, the dimension of the second end 830, measured along an axis parallel to the Z axis of the drawer 138, is smaller than the dimension of the main body 829. In other words, the second end 830 is narrower than the main body 829.
[0273] The first end 828 is connected to an actuating lever 832, by a pivot connection 834, with axis Z834 parallel to the axis Z of the drawer 138. Thus, the actuating lever 832 is movable in rotation relative to the rod 826.
[0274] Furthermore, the actuating lever 832 is also connected to the structure 822, by a pivot connection 836, with axis Z836 parallel to the axis Z of the drawer 138. Thus, the actuating lever 832 is movable in rotation relative to the structure 822. In practice, the axis Z836 represents the axis of rotation of the actuating lever 832 relative to the drawer 138, since the structure 822 is fixed relative to the drawer 138.
[0275] In addition, a guide rail 838 is provided in the actuating lever 832. The guide rail 838 has a bent shape, that is to say that it comprises two rectilinear parts oblique to each other, denoted respectively 840 and 842.
[0276] In the guide rail 838 is arranged a lug 844, fixed to the support plate 816. More precisely, the lug 844 is arranged at the end of a leg 845 which is integral with the support plate 816 and is bent at right angles to this support. Thus, the lug 844 is movable and its movement is driven by the pull rod 312.
[0277] When the pull tab 312 is in the locking position of the button 310, the lug 844 is disposed in the portion 840 of the guide rail 838, as shown in figure 38 .
[0278] When the pull tab 312 is in the unlocking position of the button 310, the lug 844 is arranged in the part 842 of the guide rail 838, as shown in figure 39 .
[0279] The passage of the pull tab 312 from its locking position to its unlocking position causes a rotation of the actuating lever 832 around the axis Z836, due to the translation along an axis parallel to the axis X of the drawer of the lug 844.
[0280] Indeed, the lug 844 moves only in translation, since it is attached to the support plate 816 by the tab 845. This translation is carried out without movement of the actuating lever 832 when the lug 844 is located in the first part 840 of the guide rail 838. Then, the lug 844 forces the rotation of the actuating lever 832 around the pivot 836 as soon as it engages in the second part 842 of the guide rail 838, by exerting a force on the side walls of the guide rail.
[0281] The rotation of the actuating lever 832, under the action of the lug 844, causes a movement of the pivot 834, which then approaches, along an axis parallel to the Y axis of the drawer 138, the support plate 816.
[0282] This movement of the pivot 834 then causes a movement of the rod 826, also along an axis parallel to the Y axis of the drawer 138 and in the direction of the support plate 816.
[0283] Thus, the actuating lever 832 makes it possible to convert a translational movement of the pull rod 312 along an axis parallel to the X axis of the drawer 138 into a translational movement of the rod 826 along an axis parallel to the Y axis of the drawer, that is to say in a direction perpendicular to the direction of the translation of the pull rod 312.
[0284] Preferably, the connection between the rod 826 and the actuating lever 832 comprises an operating clearance, along an axis parallel to the axis X of the drawer 138, not visible in the figures, which facilitates the conversion of the rotation of the actuating lever into translation of the rod.
[0285] The second end 830 of the rod 826 cooperates with two latches 850, which belong to the mechanical lock 820. Each latch 850 comprises a main body 852, pivotally mounted around a pivot 854 whose rotation axis X854 is parallel to the axis X of the drawer 138, and a hook 856.
[0286] Each latch 850 is movable between a drawer locking position 138, shown in figures 36 And 38 , and a drawer unlocking position 138, shown in figures 37 And 39 .
[0287] When the latches 850 are in the drawer 138 locking position, their hook 856 extends into a notch 2245 of the rail 224. This position is visible at figure 36 .
[0288] In this position, the drawer 138 is in the test position and cannot be moved to its operating position or to its disconnected position, because the hooks 856 abut against the walls of the notches 2245 of the rail 224.
[0289] When the latches 850 are in the drawer unlocking position 138, as seen in the figure 37 , the hooks 856 do not extend into the notches 2245 and do not prevent the movement of the drawer 138 in the engine starter module.
[0290] As visible to the figures 38 And 39, the structure 822 also comprises two guide notches 857. Each notch 857 is configured to guide a hook 856, i.e., a hook 856 extends towards a notch 857, when the latches 850 are in the drawer 138 locking position and when the latches are in the drawer unlocking position.
[0291] By means of the guide notches 857, the movement of the hooks 856 is guided so as to facilitate their insertion into the notches 2245 of the rail 224 when the latches 850 swing into the locking position of the drawer 138.
[0292] By default, the 850 latches are in the drawer 138 unlock position.
[0293] Indeed, the mechanical lock 820 further comprises an elastic member 858, which holds the latches 850 in the unlocking position of the drawer 138.
[0294] In the example shown, this elastic member 858 is an elastically deformable tab, for example made of spring steel.
[0295] This elastically deformable tab is generally U-shaped, with branches that converge away from its bottom. It extends around the pivots 854 and its two ends are each held by an end 860 of the main body 852 of a latch 850.
[0296] In a variant of the invention not shown, the elastic member 858 is a traction spring, for example helical, which extends between the two ends 860 of the main bodies 852 of the two latches, along an axis parallel to the axis Z of the drawer 138.
[0297] Each latch 850 further comprises a cam 862 which is oriented towards the other latch 850. Thus, the two cams 862 are located opposite each other.
[0298] When the pull tab 312 is in the unlocking position of the button 310, the latches 850 are in the unlocking position of the drawer 138.
[0299] Indeed, when the pull tab 312 is in the unlocking position of the button 310, the second end 830 of the rod 826 is located between the cams 862 of the latches 850. This second end 830 being thin, the cams 862 are brought together and the hooks 856 are sufficiently far from the rail 224 so as not to extend into the notches 2245 of the rail.
[0300] Conversely, when the pull tab 312 is in the locking position of the button 310, the latches 850 are in the locking position of the drawer 138.
[0301] Indeed, when the pull tab 312 is in the locking position of the button 310, the rod 826 is moved so that the main body 829 of the rod is located between the cams 862 of the latches 850, as visible in the figure 36. Thus, the latches 850 are moved away from each other and the hooks 856 extend into the notches 2245 of the rail 224.
[0302] In other words, when the pull 312 moves from its unlocking position to its locking position of the button 310, the rod 826 of the mechanical lock 820 moves so as to push on the cams 862 and thus spread the hooks 856 in the notches 2245 of the rail 224 until the latches 850 reach their locking position of the drawer 138. The movement of the pull 312 therefore makes it possible to move the hooks 856.
[0303] The notches 2245 of the rail 224 are provided at a specific location, so that the hooks 856 can extend therein only when the drawer 138 is in the test position. The mechanical lock 820 therefore makes it possible to lock the drawer 138 in the test position.
[0304] Thus, the mechanical lock 820 is movable between two positions: a drawer locking position 138, in which the drawer is in the test position, and a drawer unlocking position 138, in which the mechanical lock 820 does not oppose the movement of the drawer 138.
[0305] Furthermore, when the pull tab 312 is in the locking position of the button 310, then the mechanical lock 820 is in the locking position of the drawer 138, and when the pull tab 312 is in the unlocking position of the button 310, then the mechanical lock 820 is in the unlocking position of the drawer 138.
[0306] Thus, when the pull tab 312 is in the locking position of the button 310, it is possible to mechanically block the movement of the drawer 138 in the engine starter module 200, thanks to the mechanical lock 820.
[0307] Furthermore, in this position of the pull tab 312 a locking device can be placed in the hole 316 of the handle, which then prevents the pull tab from passing into the unlocking position of the button 310 and therefore the mechanical lock 820 from passing into the unlocking position of the drawer 138.
[0308] In summary, the pull 312 allows the mechanical lock 820 to be operated.
[0309] The drawer locking system 138 thus comprises two separate locking mechanisms, i.e. the electromagnetic lock 311 and the mechanical lock 820.
[0310] It is understood that the pull tab 312 interacts with these two locking mechanisms, because, depending on its position, the pull tab 312 allows or prevents the activation of the button 310, which controls the electromagnetic lock 311, and moves the mechanical lock 820 between its locking or unlocking positions of the drawer 138.
[0311] In summary, the electromagnetic lock 311 makes it possible to lock the drawer 138 either in the operating position or in the test position, and the mechanical lock 820 makes it possible to lock the drawer 138 in the test position.
[0312] Furthermore, the electromagnetic lock 311 can only be unlocked when the mechanical lock 820 is unlocked.
[0313] Locking the position of the drawer 138 in the test position is then redundant, which is particularly advantageous for securing the use of the drawer 138 and the electrical load 104 connected to it.
[0314] Indeed, during maintenance operations on the electrical load 104 connected to a drawer 138, it is desirable for the drawer 138 to be supplied with electrical energy but for the electrical load 104 not to be supplied with electrical energy, which corresponds to the test position of the drawer. In this position of the drawer, it is then possible to work on the electrical load 104 connected to the drawer without risk, since the electrical load 104 is not supplied with electrical energy.
[0315] To ensure the safety of a maintenance worker working on the electrical load 104, it is necessary to ensure that the drawer 138 cannot be tilted from its test position to its operating position. To do this, the maintenance worker installs a locking device 318, such as a padlock, on the drawer 138, which prevents the drawer 138 from moving. This operation is referred to as "electrical lockout" of the electrical load 104, since it is not possible to restore the electrical power supply to the electrical load 104 while the locking device 318 is installed.
[0316] The locking device 318 thus prevents the drawer 138 from being unlocked.
[0317] Since the through hole 316 is configured to accommodate multiple locking devices 318, multiple maintenance personnel can prevent unlocking of the drawer 138 by each installing a locking device 318.
[0318] Having a redundant lock is then more secure, because in the event of failure of one of the two locks, it remains impossible to switch the drawer 138 into the operating position.
[0319] Furthermore, the electromagnetic lock 311 and the mechanical lock 820 both operate independently of the elements contained in the drawer 138. Thus, the locking system described above can be used for many types of control drawer, regardless of the functions that these drawers comprise.
[0320] Alternatively, the drawer 138 further comprises a manually operated mechanism for unlocking the electromagnetic lock 311 in the absence of electrical voltage, so as to allow the drawer to be moved from its operating position to its test position, or from its test position to its disconnected position.
[0321] Alternatively, the drawer 138 does not include a mechanical lock 820 and the drawer locking system is then formed solely of the electromagnetic lock 311.
[0322] Alternatively, the button 310 is replaced by another control device, such as a touch screen or a handle.
[0323] Alternatively, the electromagnetic lock 311 is controlled by a device other than the button 310, in particular by a remote device. In such a variant, the commands for opening the electromagnetic lock 311 are for example issued by a remote computer, which may be the computer 130, or for example by the communication module 134.
[0324] The front portion 300 of the drawer 138 further comprises a secondary handle 320.
[0325] The secondary handle 320 includes a base 322 and a grip extension 324.
[0326] The grip extension 324 of the secondary handle is identical to the grip extension 308 of the primary handle 304.
[0327] The base 322 of the secondary handle 320 differs from the base 306 of the primary handle in that the base 322 does not include a button or a pull tab.
[0328] In practice, only the 138 drawers with a height of 4U, 5U and 6U include a secondary handle 320. The drawers with a height of 1U, 2U and 3U include only the main handle 304.
[0329] The 304 main handle has a height equal to 1U, so that it can be mounted on a 1U height drawer.
[0330] The front portion 300 comprises ventilation grilles 326. The ventilation grilles are in practice perforations provided in an area of the front portion and which allow the circulation of air between the exterior of the drawer 138 and the interior of the drawer.
[0331] Each 326 air vent has a height equal to 1U.
[0332] In practice, the front part of a drawer with a height N×U, with N an integer between 1 and 6, includes N ventilation grilles. For example, the front part 326 of the drawer with a height of 4U of the figures 13 And 14includes four 326 ventilation grilles and the front part of the 2U height drawer visible at the figure 8 includes two 326 air vents.
[0333] The 138 drawer includes a 328 base, which has a height equal to 1U and a 330 cover.
[0334] The base 328 is the main structure of the drawer. The front part of the drawer is fixed to the base 328 and the drawer is mounted and fixed in the engine starter module 200 by the base 328.
[0335] In practice, the electromagnetic lock 311 is arranged in the base 328 of the drawer.
[0336] The base 328 is horizontal and the elements contained in the drawer, which are detailed below, are fixed to it.
[0337] In the example shown on the figures 8 , 9 , 13 And 14 , base 328 is located at the bottom of drawer 138.
[0338] The cover 330 is a protective structure, which makes it possible to close the drawer 138 and to protect the elements contained in the drawer. In practice, the cover 330 has a shape which depends on the height of the drawer 138. Thus, each drawer height corresponds to a cover height.
[0339] When the drawer 138 has a height equal to 1 U, the cover 330 is formed by a flat and horizontal plate 332. Such an example is visible in the Figure 9 . In such an example, the height of the hood 330 is considered to be 0×U.
[0340] As visible to the figures 13 And 14, when the drawer 138 has a height greater than 1U, the cover 330 comprises a horizontal flat plate 332, two side walls 334 which extend from two opposite edges of the flat plate towards the base 328 and which are parallel to a plane formed by the Y and Z axes, and a rear wall 336 which extends from an edge of the flat plate opposite the front part 300 of the drawer towards the base 328 and which is parallel to a plane formed by the X and Z axes. In such a configuration, the height of the cover 330 is 1U less than the height of the drawer 138.
[0341] So the height of the 330 cover is between 0U and 5U.
[0342] In practice, in the example of figures 13 And 14which corresponds to a drawer of height 4U, the cover 330 has a height equal to 3U. Thus, when positioned on the base 328, the cover 330 extends from the base to the top of the drawer 138, that is to say that the flat plate 332 of the cover 330 is at the level of the upper edge of the front part 300.
[0343] In the case of a drawer with a height equal to 2U or 3U, the rear wall 336 of the cover 330 comprises a ventilation hole 338.
[0344] In the case of a drawer with a height equal to 4U, 5U, or 6U, the rear wall 336 of the cover 330 comprises two ventilation holes 338.
[0345] Alternatively, the rear wall 336 of the cover of a 6U height drawer includes three ventilation holes 338.
[0346] On the figures 15 And 16 , a drawer 138 of height equal to 1U is shown without its cover 330 which is the same as that shown in the Figure 9 .
[0347] We see on the Figure 15 the front part 300 of the drawer 138 whose pull 312 is in the unlocking position of the button 310, that is to say that the pull is to the left of the window 314 of the base 306 and that the button 310 can be actuated to unlock the drawer 138 of the engine starter module 200.
[0348] The base 328 comprises a support plate 340. The support plate 340 is “U” shaped, that is to say it comprises a main part 342, horizontal, which is in practice the bottom of the drawer 138, and two vertical walls 344, which extend parallel to the plane formed by the Y and Z axes.
[0349] The base 328 further comprises two lateral structures 346. The lateral structures 346 are fixed to the outside of the vertical walls 344 of the support plate 340 by fixing means such as, for example, screws 347. In practice, the lateral structures 346 extend from the front part 300 of the drawer 138 along the Y axis to the rear of the drawer, that is to say to a rear part 348 of the drawer opposite its front part, this rear part 348 of the drawer also belonging to the base 328 of the drawer 138.
[0350] The lateral structures 346 therefore belong to the base 328 of the drawer 138.
[0351] In practice, the structure 822 of the mechanical lock 820 is integral with a lateral structure 346.
[0352] Each side structure 346 comprises casters 350, preferably two casters 350.
[0353] The rollers 350 each have an axis X350 parallel to the axis X and are configured to roll in the rails 224 of the structure 202 of the engine starter module and in the rails 250 of the protection unit 140. Thus, the diameter of the rollers 350 is less than the spacing between the two edges of the rails 224 and 250.
[0354] In practice, each drawer 138 is mounted in the volume V1 of the engine starter module 200. For this, a first lateral structure 346 is inserted into a first rail among the rails 224 and 250 and a second lateral structure 346 is inserted into a second rail among the rails 224 and 250 of the same pair of rails, then the rolling of the rollers 350 on the rails allows the drawer to enter the engine starter module and to exit it.
[0355] Thus, the drawer 138 is movable in the engine starter module between the three main positions of the drawer, thanks to the lateral structures 346.
[0356] Each lateral structure 346 further comprises a movable lateral contact 352, which makes it possible to connect the drawer 138 to a communication interface 353 which belongs either to the input-output module 206 or to the protection unit 140 and the operation of which is explained below.
[0357] The rear portion 348 of the drawer 138 extends between the two side structures 346.
[0358] In the case of a 1U height drawer, the cover 330 extends from the front part 300 to the rear part 348 and between the two side structures 346.
[0359] In the case of a drawer with a height greater than or equal to 2U, the side walls 334 of the cover 330 extend to the vertical walls 344 and the rear wall 336 of the cover extends to the rear part 348.
[0360] The rear portion 348 includes a group of upstream connectors 354, a group of downstream connectors 356 and a ventilation port 358.
[0361] The upstream connectors 354 and downstream connectors 356 are therefore mounted on the base 328 of the drawer 138.
[0362] As best seen at the figure 16 , the ventilation orifice 358 is located between the group of upstream connectors 354 and the group of downstream connectors 356, along the longitudinal axis X of the drawer 138. Advantageously, the ventilation orifice 358 is centered relative to the base 328, along the axis X. In addition, the groups of upstream 354 and downstream 356 connectors are arranged on either side of the ventilation orifice 358 in a symmetrical manner.
[0363] When a drawer is mounted in the engine starter module 200, the ventilation hole 358 is located opposite a ventilation hole 214 of the rear support 210.
[0364] In practice, the rear part 348 comprises four upstream connectors 354 and four downstream connectors 356.
[0365] When the drawer 138 is in the operating position, the upstream connectors 354 are plugged into the four electrical outputs 248 of a group of electrical outputs 246 of the protection unit 140. Thus, the drawer 138 is supplied with electrical energy from an electrical supply line, via the protection unit 140. In other words, the protection unit 140 is a source of electricity for the drawer 138.
[0366] When the drawer 138 is in the operating position, the downstream connectors 356 are plugged into an external connection module 208. Thus, the drawer 138 supplies electrical energy to an external connection module 208 and makes it possible to supply an electrical load 104 when such a load is connected to the external connection module 208.
[0367] When the drawer 138 is in the test position or in the disconnected position, the upstream 354 and downstream 356 connectors are disconnected respectively from the electrical outputs 248 of the protection unit 140 and the external connection module 208.
[0368] The drawer 138 includes functional elements 362, not shown in detail but whose location is marked by dotted lines at the Figure 17 . In a known manner, these functional elements 362 make it possible to control the electrical load 104, in practice an electric motor, and allow the operation of the drawer 138.
[0369] These functional elements include in particular: at least one contactor; a thermal protection relay, for example a bimetallic electromechanical relay or an electronic relay, which has the role of protecting the electric motor powered by the drawer 138 from possible overloads which may occur in particular when starting the motor; operating sensors of the drawer 138, such as for example voltage sensors of the electrical supply coming from the upstream connectors 354; and electronic components configured to collect signals coming from operating sensors of the electrical load 104, arranged on, or in the vicinity of, the electrical load 104, such as for example temperature probes or speed sensors.
[0370] In practice, the contactor is directly connected to the upstream connectors 354 by connection bars 360 and to the downstream connectors 356 by downstream connection bars 361. In practice, one connection bar 360 or 361 is provided per connector 354 or 356. On the figures 15 And 16 , only three connection bars are shown for the sake of simplification, namely those of the current phases.
[0371] Thus, the contactor can, in a known manner, selectively interrupt or allow the passage of an electric current between the upstream connectors 354 and the downstream connectors 356. Thanks to the contactor, it is possible to supply the electric load 104 with electrical energy, which makes it possible, for example, to start and then operate an electric motor when the passage of a current is permitted, and to stop the operation of such a motor when the current is interrupted.
[0372] Furthermore, the drawer 138 can contain several contactors, which makes it possible, for example, to control the voltage delivered to the electrical load 104 in order to control, for example, the rotation speed of a motor; or even to control the direction of rotation of a motor.
[0373] The drawer 138 also includes an electronic control card 364. The electronic control card is attached to the support plate 340.
[0374] The electronic control card 364 is connected to the communication module 134 of the engine starter column 110. It makes it possible to control the functional elements 362 of the drawer 138, such as the contactor, the thermal protection relay, the display 302 according to the commands coming from the communication module. It also makes it possible to group together the information coming from the drawer operating sensors and the information coming from the electronic components configured to collect signals coming from the electrical load operating sensors, before analyzing them and transmitting them to the communication module 134.
[0375] Depending on this analysis of the information coming from the operating sensors of the drawer and the electrical load, the electronic control card 364 can adapt its control of the functional elements 362, for example by giving the order to the contactor to interrupt the power supply to the electrical load when an operating sensor reports a malfunction of the electrical load.
[0376] Thus, thanks to the functional elements 362 and the electronic card 364, each drawer 138 supplies an electrical load 104, controls this electrical load and monitors this electrical load. Each drawer 138 therefore simultaneously has a role of supplying, controlling and monitoring an electrical load 104.
[0377] The electronic control card 364, the functional elements 362 and the electromagnetic lock 311 of the drawer are supplied with first auxiliary electrical voltage.
[0378] The electromagnetic lock 311 is in practice controlled by the electronic control card 364 and the button 310 communicates with the electronic control card.
[0379] When the button 310 is pressed, it sends a control signal to the electronic control card 364, requesting the activation of the electromagnetic lock 311 so as to switch to the unlocking position of the drawer 138.
[0380] In this case, the electronic control card 364 carries out verification operations, after receiving the signal from the button 310 and before switching the electromagnetic lock to the drawer unlocking position.
[0381] These verification operations consist, for example, in analyzing the information coming from the drawer operating sensors and the electrical load operating sensors 104, so as to switch the electromagnetic lock 311 to the drawer unlocking position only if the operating states of the drawer, for example of the functional elements 362, and / or of the electrical load are satisfactory.
[0382] The electronic control card is configured so that if, during these verification operations, a failure of the drawer 138, for example of one of the functional elements 362, or of the electrical load 104, for example of one of the operating sensors of the electrical load, is detected, then the lock 311 is not switched to the unlocking position of the drawer and so that, preferably, an information message on this failure is displayed on the display 302.
[0383] Thus, thanks to the electromagnetic lock 311, the opening of which is controlled by the button 310 and validated by the electronic control card 364, the drawer 138 can only be unlocked, i.e. moved from its test position or from its operating position, after validation of the correct operating condition of the drawer 138 and / or of the electrical load 104.
[0384] This validation prior to unlocking the drawer 138 is particularly advantageous, because it makes it possible to secure the use of the electrical cabinet 100 and the electrical load 104 by ensuring the correct operation of the drawer and the electrical load before their connection.
[0385] The choice of the height of a drawer 138 - that is to say from 1U to 6U - depends on the power to be supplied to the electrical load 104. Indeed, the higher the power consumed by the electrical load 104, the larger the dimensions of the contactor and other functional elements.
[0386] Thus, a contactor controlling a low-power motor, for example up to 11 kW, will be space-saving and can be installed in a 1U high drawer, while a contactor controlling a high-power motor, for example 75 kW, will be more space-saving and must be installed in a 6U high drawer. A contactor controlling a medium-power motor, for example 30 kW, will for example be installed in a 3U high drawer.
[0387] The design of the drawers 138 described here is advantageous, because the base 328, which constitutes the main structure of the drawer allowing its installation in the engine starter module and which carries all of the electrical connectors - upstream and front connectors, lateral contacts - and functional elements 362 of the drawer 138, is common to the six heights of drawer 138.
[0388] Thanks to the front part 300 and the cover 330, whose heights are adapted to the dimensions of the functional elements 362, the drawer 138 is modular.
[0389] Thus, it is simple to adapt the height of a drawer 138 to the dimensions of a contactor and other functional elements, since only the front part 300 and the cover 330 differ between drawers 138 of different heights.
[0390] The functional elements 362 of a drawer 138 heat up during their operation, and in particular the contactor and the thermal protection relay. The heat thus produced warms the air contained in the drawer 138, which must then be renewed to maintain an internal temperature compatible with the operation under normal conditions of the functional elements of the drawer.
[0391] An air flow FL1 passing through a drawer 138 is shown in Figure 17 .
[0392] In this figure, the location of the functional elements 362 of the drawer 138 is represented by dotted lines. It can be seen that the air flow FL1 passes at the level of these functional elements, which allows them to be cooled by heat exchange. In practice, when the air flow FL1 passes at the level of the functional elements, the air flow cools the functional elements by heating up.
[0393] The quantity of heat produced by the functional elements 362 of the drawer depends in particular on the electrical power of the motor 104 controlled by this drawer.
[0394] In the case of a low power electric motor, for example up to 11 kW, the heat produced will be evacuated from the 1U height drawer 138 controlling this motor by the air flow FL1 which is caused by natural convection.
[0395] This natural convection occurs thanks to the ventilation grille 326 of the front part 300 of the 1U drawer and the ventilation hole 358 of the rear part 348 of the drawer.
[0396] In practice, the air flow FL1 enters through the ventilation grille 326 and exits through the ventilation orifice 358.
[0397] In the case of a higher power electric motor, for example between 11 kW and 75 kW, the slide 138 controlling this motor will have a height between 2U and 6U, depending on the power of the motor. In such a configuration, the air flow FL1 allowing the slide to be cooled enters through the ventilation grilles 326 of the front part 300 and exits on the one hand through the ventilation orifice 358 of the rear part 348 and on the other hand through the ventilation orifice(s) 338 of the rear wall 336 of the cover 330.
[0398] In other words, the ventilation orifice 358 of the rear part 348 and the ventilation orifice(s) 338 of the rear wall 336 of the cover 330 together form a rear ventilation zone 359 of the drawer 138. The rear ventilation zone of the drawer is therefore located at the rear part 348 of the drawer.
[0399] In the case of a 1U high drawer 138, the rear ventilation area 359 of the drawer is assimilated to the ventilation orifice 358 of the rear part 348 of the drawer.
[0400] In practice, in the case of a drawer with a height between 2U and 6U, the drawer 138 comprises one or more fans 366 to force the circulation of the air flow FL1 in the drawer 138.
[0401] Each fan 366 is disposed on the rear wall 336 of the cover and has a height slightly less than 2U. The fans 366 are configured to expel the air contained in the drawer 138 to the outside of the drawer.
[0402] When the drawer 138 has a height equal to 2U or 3U, it includes a fan 366. This fan is arranged between the ventilation orifice 358 of the rear part 348 of the drawer and the ventilation orifice 338 of the cover 330. In other words, this fan is arranged on the rear ventilation zone 359 of the drawer.
[0403] When drawer 138 has a height equal to 4U, as seen in the Figure 14 , 5U or 6U, it comprises two fans 366, superimposed, a first of which is arranged between the ventilation orifice 358 of the rear part 348 of the drawer and a first ventilation orifice 338 of the cover and a second is arranged entirely on a second ventilation orifice 338 of the cover. In other words, these two fans are arranged on the rear ventilation zone 359 of the drawer.
[0404] When the drawer 138 has a height equal to 6U, it optionally includes a third fan 366 arranged on a third ventilation orifice 338.
[0405] Thanks to the fan(s) 366, the air renewal in the drawer 138 is improved and the cooling of the functional elements is more efficient.
[0406] Advantageously, the electronic control card 364 controls the fan(s) 366 to optimize their operation.
[0407] Advantageously, the electronic control card 364 is configured to cut off the fans 366 when the functional elements of the drawer 138 do not generate heat, in particular when the electrical load 104 is not supplied with electrical energy.
[0408] According to another advantageous approach, the drawer 138 comprises a temperature sensor measuring the internal temperature of the drawer 138 and the rotation speed of the fans 366 is adapted according to the internal temperature of the drawer 138, that is to say that the rotation speed increases when the temperature is high to accelerate the air renewal and decreases when the internal temperature of the drawer is satisfactory.
[0409] Advantageously, the drawer 138 comprises one or more radiators 368, one of which is shown in Figure 17 , which are arranged on one or more functional elements 362 and which make it possible to increase the heat exchange with the air flow FL1 circulating in the drawer 138, thus improving the cooling of these functional elements.
[0410] In this case, advantageously, the drawer 138 comprises deflectors 370 which concentrate the air flow FL1 on these radiators 368. In practice, the deflectors 370 are for example sheets which direct the air flow along its passage through the drawer. The presence of deflectors in the drawer 138 leads to modifying the flow of the air flow in the drawer 138, without modifying its main direction, that is to say from the front part 300 towards the rear ventilation zone 359.
[0411] The fact that the air enters the drawer 138 through its front part 300 and exits through its rear ventilation zone 359 is advantageous. Indeed, these two parts are arranged at two ends of the drawer, along the Y axis, and the air flow circulating in the drawer then circulates directly between these two ends along the Y axis, that is to say that it does not undergo any significant variation in direction, which is more efficient than an air circulation in which the air inlet and the air outlet would be located on the same face, for example the front face. Indeed, any variation in the direction of flow of an air flow slows down this air flow.
[0412] In other words, the air flow FL1 passes through the drawer from one side to the other without any significant variation in direction. By "without significant variation" is meant that the air flow FL1 does not follow a curve having an angular amplitude of more than 30°, preferably more than 15°.
[0413] In practice, the air flow FL1 is disturbed when it comes into contact with the functional elements 362, but these disturbances do not constitute a change in the main direction of the air flow and are necessary to ensure a heat exchange between the air and the functional elements.
[0414] Furthermore, the cumulative height of the ventilation grilles 326 of the front part 300 is substantially equal to the height of the rear ventilation zone 359 of the drawer 138. In other words, the rear ventilation zone of the drawer 359 as well as the ventilation grilles 326 of a drawer 138 extend over the entire height of the drawer, regardless of the height of the drawer. Thus, the air flow FL1 passes through the drawer 138 from one side to the other without variation in vertical direction, that is to say that the air flow FL1 is horizontal.
[0415] Thanks to this thermal management based on an air flow passing through the drawer 138 from one side to the other, the cooling of the functional elements of the drawer 138 is improved.
[0416] In addition, this thermal management based on an air flow passing through an element from one side to the other also makes it possible to cool the communication module 134.
[0417] Indeed, the communication module 134 comprises a front ventilation grille 180, on its front face 176, and a rear ventilation grille 184, on its rear face 178, which have a role similar respectively to the ventilation grilles 326 of the front part 300 of the drawers 138 and to the ventilation orifice 358 of the rear part 348 of the drawers 138.
[0418] The rear ventilation grille 184 therefore has a role similar to the rear ventilation zone 359 of the drawer 138.
[0419] The communication module 134 is therefore also crossed from one side to the other by an air flow FL1, without any notable variation in direction.
[0420] This air flow makes it possible to cool the elements producing heat in the communication module 134, in practice the power supply unit(s) 150 and the electronic card 188.
[0421] In a variant of the invention not shown, the communication module 134 further comprises at least one fan mounted to force the circulation of the air flow FL1 in the communication module and arranged on the rear ventilation grille 184 and / or on the front ventilation grille 180. Preferably, this or these fans are controlled by the electronic card 188.
[0422] In a variant of the invention not shown, the communication module 134 further comprises at least one radiator, arranged on the power supply unit(s) 150 or on the electronic card 188. Preferably, the communication module 134 further comprises at least one deflector, configured to direct the air flow FL1 towards the radiator(s).
[0423] The term “functional unit” refers to a unit which is either a communication module 134 or a control-command unit 138, in the example a drawer 138, and which is cooled by the air flow FL1.
[0424] The drawer 138 has a width, measured along the Y axis, equal to ℓ2, i.e. 400 mm. This width is measured between the front part 300 and the rear part 348 of the drawer.
[0425] When the motor starter module 200 is installed in a cabinet 100 of width ℓ2 equal to 400 mm as in the embodiment of the Figure 4, the rear part 348 of each drawer is located at the level of the rear face F2 of the cabinet 100. In addition, the sheet 166 forming the rear face of the cabinet 100 comprises ventilation grilles 372, visible at the Figure 4 . These ventilation grilles are arranged opposite the ventilation zone 359 of each drawer. Thus, the ventilation zone 359 of a drawer 138 connects the interior of this drawer with the exterior of the cabinet, through these ventilation grilles 372. In such a configuration, the air circulating in the drawer 138 comes out directly outside the cabinet 100, through its rear face.
[0426] When the motor starter module 200 is installed in a cabinet 100 of width ℓ1 equal to 600 mm as in the embodiments of figures 1 to 3 And 5, the rear portion 348 of each drawer is located at the interface between the functional area 156, which includes the motor starter module 200, and the thermal management area 162. Thus, the ventilation area 359 connects the interior of the drawer 138 with the thermal management area 162 of the cabinet. In such a configuration, the air flow FL1 circulating in the drawer 138 emerges in the thermal management area 162 of the cabinet.
[0427] Additionally, in such a configuration, the air circulating in the communication module 134 also exits into the thermal management area 162 of the cabinet, through the rear ventilation grille 184 of the communication module.
[0428] The thermal management zone 162 is an essentially empty column, which extends over the entire height of the cabinet 100. Thus, the air leaving the drawers 138, heated by the functional elements 362 of these drawers, rises by convection to the top of the thermal management zone 162, just like the air leaving the communication module 134.
[0429] Furthermore, the thermal management zone 162 comprises an upper face, at the top of the cabinet 100, which is in practice a part of the upper face F4 of the cabinet. This upper face comprises an exhaust grille, not shown. This exhaust grille allows hot air to exit the thermal management zone 162. Thus, an air flow FL2 coming from the drawers 138 and the communication module 134 rises through the thermal management zone 162 and exits from the top of the thermal management zone 162, that is to say through the upper face F4 of the cabinet 100, as shown in Figure 2 .
[0430] In other words, the thermal management zone 162 has the role of a chimney for evacuating hot air coming from the drawers 138 and the communication module 134.
[0431] Optionally, the upper face of the thermal management zone, which corresponds to the upper face F4 of the cabinet, comprises an extraction fan 374, which sucks in the air contained in the thermal management zone to discharge it outside the cabinet 100. Thanks to such a fan, the evacuation of the hot air flow FL2 is facilitated.
[0432] Thanks to the thermal management zone 162, which allows extraction of hot air from all of the drawers 138, as well as from the communication module 134, through the top of the cabinet 100, it is possible to install the cabinet 100 in such a way that its rear face is obstructed, for example by positioning the cabinet against a wall, or back-to-back with a second cabinet 100, without harming the thermal management of the drawers 138 and the communication module 134.
[0433] Alternatively, the fans 366 are arranged on the ventilation grilles 326 of the front part of the drawer 138 and facilitate the entry of the air flow FL1 into the drawer.
[0434] Alternatively, the fans 366 are arranged both on the ventilation grilles 326 of the front part of the drawer and on the rear ventilation zone 359.
[0435] Further, when the cabinet 100 does not include a wiring area 160, as in the embodiment of the Figure 5 , the connection of the cables 139 is carried out in the thermal management zone 162, but the cables 139 are not arranged in the air flow FL2 and therefore do not impact the cooling of the cabinet. Indeed, the cables are located at the rear of the connection zone 158 while the air flow FL2 is located at the rear of the functional zone 156.
[0436] Alternatively, the thermal management of a drawer 138 and of a cabinet 100 comprising one or more drawers 138 described above is applied to drawers 138 installed in current distribution or load control columns.
[0437] Alternatively, the thermal management of a drawer 138 and of a cabinet 100 comprising one or more drawers 138, described above and comprising the use of the grids 326 and the orifices 338 and 358, is applied to control-command units 138 which are fixed units of the cabinet.
[0438] There figure 18is a perspective view of a movable lateral contact 352 of a lateral structure 346. Each movable lateral contact 352 is in practice arranged at a window 400 provided in the lateral structure 346 and a window 402 provided in the vertical wall 344.
[0439] Each drawer 138 comprises two movable lateral contacts 352, each arranged in a lateral structure 346. Among these two movable lateral contacts, a first makes it possible to connect the drawer 138 to the communication interface 353 of the input-output module 206 and a second makes it possible to connect the drawer 138 to a communication interface 353 of the protection unit 140. The design and operation of these two movable lateral contacts are identical.
[0440] Alternatively, the drawer 138 comprises only a single movable lateral contact 352, arranged in a lateral structure 346, which makes it possible to connect the drawer 138 either to the communication interface 353 of an input-output module 206, or to the communication interface 353 of the protection unit 140.
[0441] In practice, each input-output module 206 comprises a communication interface 353 and the protection unit 140 comprises six communication interfaces 353, arranged in the windows 256.
[0442] Each movable side contact 352 comprises a plate 404. The plate 404 comprises a main body 406 which is elongated along the Y axis and two fins 408 which extend perpendicular to the main body 406 along the X axis.
[0443] The main body 406 of the wafer includes an opening 410.
[0444] In practice, the main body 406 has a height along the Z axis less than the height of the window 402 of the vertical wall 344.
[0445] As visible at the figure 19 , the plate 404 is arranged inside the drawer 138, in contact with the face of the vertical wall 344 directed towards the inside of the drawer 138.
[0446] The two fins 408 of the plate extend outwardly from the drawer 138, are disposed in two slots 412 of the vertical wall 344 and extend between the vertical wall 344 and the side structure 346.
[0447] Each fin includes an end edge 414, parallel to the Y axis and a chamfer 416, which connects the end edge 414 to the main body 406 of the insert 404.
[0448] The vertical wall 344 comprises two holding brackets 418, which are located opposite the window 402 and formed by cutting and folding the vertical wall 344. In practice, the holding brackets 418 comprise a first part which extends perpendicular to the vertical wall 344 towards the inside of the drawer 138 and a second part which extends perpendicular to the first part, that is to say parallel to the vertical wall 344, so as to extend opposite the window 402.
[0449] The plate 404 is held in position relative to the drawer 138 by the fins 408, arranged in the slots 412, by the brackets 418, which prevent the plate from translating towards the inside of the drawer 138 along the X axis, and by the vertical wall 344, which prevents the plate from translating towards the outside of the drawer along the X axis.
[0450] The plate 404 is fixed relative to the drawer 138 along the Y axis.
[0451] In addition, a spring 420 is arranged between each bracket 418 and the main body 406 of the plate. The two springs 420 make it possible to keep the plate 404 pressed against the vertical wall 344.
[0452] Each movable contact 352 also comprises a frame 422, disposed between the vertical wall 344 and the lateral structure 346.
[0453] In practice, the lateral structure 346 comprises a main wall 424 and two secondary walls 426. The main wall 424 is parallel to the vertical wall 344 of the support plate 340 and the two secondary walls 426 extend from the main wall 424 towards the vertical wall 344, as visible for one of them at the Figure 15 .
[0454] Thus, the lateral structure 346 defines an interior volume between the main 424 and secondary 426 walls and the vertical wall 344 of the support plate 340.
[0455] The frame 422 is arranged inside the interior volume of the lateral structure 346 and is movable in this interior volume, along the Y axis.
[0456] In practice, the frame 422 is not movable along the X axis because it is in contact on the one hand with the vertical wall 344 and on the other hand with the main wall 424.
[0457] The height H422 of the frame 422 is less than the distance, measured along the Z axis, which separates the two secondary walls 426 of the lateral structure 346.
[0458] The height of the frame 422 is greater than the height H400 of the window 400 of the side structure, so that the frame cannot exit the interior volume of the side structure through the window 400.
[0459] As visible at the figure 20 , the frame 422 comprises two openings 428 of height H428 which pass through the frame 422 along an axis parallel to the axis X.
[0460] Each movable side contact 352 also includes a contact housing 430. The contact housing includes a frame 432 from which two contact carriers 434 extend, on each side of the frame 432, along the Y axis.
[0461] The height of each contact holder 434, denoted “H434”, is less than the height H428 of the openings 428.
[0462] The height of the frame 432, noted “H432”, is greater than the height H428 of the openings 428.
[0463] The contact housing 430 is arranged in the interior volume of the lateral structure 346, between the frame 422 and the vertical wall 344, and extends partially outside this interior volume, along the X axis, through the window 400. In practice, the frame 422 carries the contact housing 430. Each contact holder 434 passes through an opening 428 of the frame 422. In other words, the frame 422 guides the movement of the contact housing 430 along the Y axis in the lateral structure 346.
[0464] The contact housing 430 is movable along the X axis in the frame 422. Its translational movement along the X axis is limited, on the one hand, by the vertical wall 344 and, on the other hand, by the frame 432 which comes into contact with the frame 422, as visible in the figures 21 , 22 And 23 .
[0465] Each movable lateral contact 352 comprises springs 435, in practice four springs 435. The springs 435 are arranged between the contact housing 430 and the frame 422 and are configured to exert a force which moves the contact housing 430 away from the frame 422, along the X axis. Since the frame 422 is not movable along the X axis, the force exerted by the springs 435 leads to moving the contact housing 430 along the X axis relative to the drawer 138, towards the inside of this drawer.
[0466] Each movable side contact 352 also includes two electrical contacts 436.
[0467] Each electrical contact 436 is fixedly arranged in a contact holder 434.
[0468] The electrical contacts 436 each comprise flexible connectors 438.
[0469] The flexible connectors 438 are configured to be able to connect the drawer 138 either to an input-output module 206 or to the protection unit 140. This connection is described below.
[0470] Cables 440 are further connected to the electronic control card 364 of drawer 138. On the figures 18 to 23 , the 440 cables are only partially represented.
[0471] In practice, the cables are connected to the flexible connectors 438 and extend from the rear of the electrical contacts 436 through the window 402 of the vertical wall 344 and through the opening 410 of the plate 404, to the interior of the drawer 138.
[0472] Each movable side contact 352 also includes a guide shaft 442. The guide shaft is preferably a cylinder that extends along the Z axis and is mounted in the frame 422.
[0473] Alternatively, the guide shaft is a single piece with the frame 422.
[0474] The height H442 of the guide shaft 442 is greater than the distance, measured along the Z axis, which separates the secondary walls 426 from the lateral structure 346. Thus, the guide shaft 442 extends outside the interior volume of the lateral structure 346, through two slots 444 formed in the secondary walls 426.
[0475] Each movable side contact 352 also includes tension springs 446, preferably two springs 446. The tension springs 446 extend parallel to the Y axis. Each tension spring 446 is attached at one of its ends to the guide shaft 442 and at the other of its ends to the side structure 346.
[0476] Each movable side contact 352 is configured to ensure a connection of the flexible connectors 438 with a protection unit 140 or an input-output module 206 for any position of the drawer 138 between its operating position and its test position and so that this connection is not interrupted when the drawer 138 is moved between its test position and its operating position.
[0477] For this, each movable lateral contact 352 is movable along the longitudinal axis A138 of the drawer 138, which is parallel to the Y axis, as well as along the transverse axis B138 of the drawer, which is parallel to the X axis.
[0478] THE figures 21 , 22 And 23 illustrate three different positions of a 352 side contact.
[0479] A drawer engagement position 138 is defined as a position between the disconnected position and the drawer test position. figure 21, the drawer 138 is shown between its engagement position and its test position. The test position of the drawer is shown in figure 22 and the operating position of the drawer is shown in figure 23 .
[0480] In these figures, only the movable side contact 352 and a portion of the drawer 138 are shown. In particular, the rails 224 and 250 in which the lateral structures of the drawer are inserted are hidden, for clarity. In practice, the movement of each movable side contact is affected by the interaction of the movable side contact with the rail 224 or 250 in which the lateral structure 346 carrying this movable side contact is inserted.
[0481] When the drawer 138 is inserted into the engine starter module 200 between its disconnected position and its engaged position, the movable side contact 352 does not move relative to the drawer 138.
[0482] In this position, the frame 422 and the guide shaft 442 are held by the tension springs 446 as close as possible to the rear part 348 of the drawer, in a rest position. In practice, the frame 422 and the guide shaft 442 are as close as possible to the rear part of the drawer 348 when the guide shaft 442 is in contact with one end of the slot 444. This position is not shown in the figures.
[0483] Furthermore, in this position, the contact housing 430 and the contacts 426 are in the retracted position in the drawer 138, that is to say that the contact housing 430 is distant from the frame 422 and is closer to the vertical wall 344. In other words, in the retracted position, the contact housing 430 and the contacts 426 are contained at most in the interior volume of the lateral structure 346 and extend at least outside this interior volume through the window 400.
[0484] In practice, the retracted position of the contact housing 430 and the contacts 426 is imposed by the springs 435 which exert a force on the contact housing 430 moving it away from the frame 422.
[0485] During insertion of the drawer 138 into the motor starter module 200, when the drawer 138 arrives in the engagement position, the guide shaft 442 comes into contact with the tabs 232 or 254 of the rails 224 or 250.
[0486] Indeed, the height H442 of the guide shaft 442 is greater than the distance, measured along the Z axis, between the edges of the rails 224 and 250 but is less than the distance between the tongues of the rails.
[0487] From this engagement position, the translation of the frame 422, the contact housing 430 and the electrical contacts 436 along the Y axis is stopped. These elements then begin to move relative to the drawer 138. Thus, between the engagement position of the drawer and the operating position of the drawer, passing through the test position of the drawer, the frame 422 is translated in the interior volume of the lateral structure 346. In practice, the frame 422 becomes fixed relative to the engine starter module 200 while the drawer 138 is in motion. During this movement of the drawer, the tension springs 446 are stretched.
[0488] The movement of the frame 422, the contact housing 430 and the electrical contacts 436 between the drawer engagement position and the drawer test position is carried out in two phases.
[0489] During a first phase, the frame 422, the contact housing 430 and the electrical contacts 436 move relative to the drawer 138 along the Y axis and the B138 axis, moving away from the rest position of the frame 422, while remaining fixed relative to the motor starter module 200. This movement continues until the frame 432 of the contact housing 430, which is fixed along the Y axis, comes into contact with the end edge 414 of the fin 408 of the plate 404, which is movable along the Y axis. This position is shown in FIG. figure 21 .
[0490] During a second phase, after the frame 432 has come into contact with the end edge 414, the movement relative to the drawer 138 of the frame 422 and the elements that it carries along the Y axis continues and the contact housing 430 is further translated along the X axis and the A138 axis, moving away from the interior volume of the lateral structure 346.
[0491] The translation of the contact housing 430 along the X axis therefore takes place thanks to the chamfer 416 of the fin, which, during its translation along the Y axis, pushes the contact housing as well as the contacts 436 from their retracted position towards a position extended from the drawer 138, visible at figure 22 This movement leads to a compression of the springs 435 between the contact housing and the frame 422.
[0492] Furthermore, this translation of the contact housing 430 and the electrical contacts 436 along the X axis is permitted because, from the engagement position to the operating position of the drawer 138, the contact housing 430 of the movable lateral contact 352 is located opposite the windows 226 or 252 of the rail in which the lateral structure is engaged.
[0493] In practice, each contact holder 434 of the contact housing 430 is located opposite one of the two windows 226 or 252 of the rail.
[0494] Thanks to this translation, the electrical contacts 436 extend outside the lateral structure 346 and can come into contact with the protection unit 140 or an input-output module 206.
[0495] Between the drawer test position and the drawer operating position, the contact housing 430 is fixed along the X axis relative to the motor starter module 200 and the frame 432 of the contact housing slides on the end edge 414 of the fin 408 of the plate 404.
[0496] In other words, the frame 432 imposes the movement of the contact housing 430 relative to the drawer 138, towards its extended position.
[0497] Furthermore, the springs 420 which hold the plate 404 against the vertical wall 344, i.e. in a reference position, are configured so that, in the case where the output of the contact housing 430 along the X axis is blocked, for example by an obstacle present in the rail window, the force exerted by the springs 420 is less than the force exerted by the frame 432 on the fin 408 of the plate 404, which then causes the plate 404 to move along the X axis, towards the holding brackets 418, i.e. towards a safety position.
[0498] Thanks to this movement of the plate 404, in such a case, the movable lateral contact 352 is not degraded.
[0499] This movement of the plate 404 also allows for variations in the relative positioning of the parts to be accommodated. For example, if the communication interfaces 353 are closer to the drawers 138, the movement along the X axis of the plate will prevent excessive stress being exerted on the electrical contacts 436.
[0500] In summary, with respect to the engine starter module 200, the movement of the electrical contacts 436 comprises three phases: from the disconnected position to the drawer engagement position, the electrical contacts 436 are in translation along the Y axis in a rail 224 or 250 relative to the motor starter module and are fixed relative to the drawer 138; from the drawer engagement position to the drawer test position, the electrical contacts 436 are in translation along the X axis away from the lateral structure 346, through the windows 226 or 252 of the rail and are fixed along the Y axis relative to the motor starter module 200; and from the drawer test position to the drawer operating position, the electrical contacts 436 are fixed relative to the motor starter module.
[0501] Thanks to this three-phase movement of the electrical contacts 436, and more particularly thanks to the fact that the electrical contacts 436 are fixed relative to the motor starter module 200 between the test position and the operating position of the drawer, the contact between the electrical contacts 436 and the protection unit 140 or the input-output module 206 is maintained without interruption, which makes it possible to maintain a connection between the electronic control card 364 and the protection unit 140 or between the electronic control card 364 and an input-output module 206 between these two positions.
[0502] When the electrical contacts 436 extend through the windows 226 of a rail 224, they also extend through the windows 222 of the side bracket 210 to which the rail 224 is attached.
[0503] The cables 440 are flexible, so that their end connected to the electrical contacts 436 is movable with the electrical contacts 436. In addition, the dimensions of the window 402 of the vertical wall 344 as well as of the opening 410 of the plate 404 make it possible not to hinder the movement of the cables 440.
[0504] When the drawer 138 is removed from the volume V1 of the starting module 200, that is to say when it passes from its operating position to its disconnected position, the movement of the electrical contacts 436 of the movable lateral contact 352 comprises three phases: from the operating position to the test position of the drawer, the electrical contacts 436 are fixed relative to the motor starter module 200 and are in translation along the Y axis relative to the drawer 138; from the test position to the engagement position of the drawer, the electrical contacts 436 are fixed along the Y axis relative to the motor starter module and are in translation along the X axis moving away from the frame 422 and approaching the lateral structure 346, under the effect of the springs 435; and from the engagement position to the disconnected position of the drawer, the electrical contacts 436 are in translation along the Y axis relative to the motor starter module and are fixed relative to the drawer 138.
[0505] As visible at the figure 24 , the input-output module 206 comprises a housing 500 on which two connection pads 502 are arranged, which form the communication interface 353.
[0506] When the drawer 138 is in the operating position or in the test position, the flexible connectors 438 of the two electrical contacts 436 are in contact with the two connection pads 502. In practice, the connectors 438 are said to be “flexible” because they can deform elastically along the X axis under a force, for example under the force generated by contact with the connection pads 502. This deformation makes it possible to maintain good electrical contact between the flexible connectors and the connection pads 502 because it makes it possible to tolerate relative alignment and position defects of the connectors and the pads.
[0507] As visible at the figure 8 , the housing 500 of the input-output module 206 is fixed to the lateral support 212 of the engine starter module 200. Each input-output module 206 is associated with a drawer 138 and is located, on the lateral support 212, at the height of the base 328 of this drawer.
[0508] The input-output module 206 also comprises a linear connector 504 which makes it possible to connect the input-output module 206 to the computer bus section 204 of the engine starter module 200. Thus, the input-output module 206 is connected to the electronic circuits 144, to the electrical supply tracks 148 conducting the first auxiliary voltage and to the electrical supply tracks 154 conducting the second auxiliary electrical voltage.
[0509] The input-output module 206 comprises a first wireless communication card 506, arranged in the housing 500. This first wireless communication card is not visible from outside the housing 500 and is shown in dotted lines at figure 24 .
[0510] The first wireless communication card 506 communicates with a second wireless communication card 508, which is in practice arranged in the drawer 138 associated with the input-output module, as visible in the figure 16 where the second map is also shown in dotted lines.
[0511] In practice, the first and second wireless communication cards are arranged face to face, that is to say they are aligned along the same axis parallel to the transverse axis Y of the electrical cabinet.
[0512] The first and second communication cards are configured to be able to exchange data by transmitting and receiving radio frequencies, for example using a wireless protocol, preferably at a frequency of 60 GHz. For example, the protocol used is the Ethernet protocol. This data exchange is therefore done remotely, without contact between the communication cards.
[0513] Further, the first and second communication cards 506 and 508 are configured to enable this data exchange when the drawer 138 is in the operating position, when the drawer is in the test position, and when the drawer moves between these two positions.
[0514] In the example, the contact between a movable lateral contact 352 of a drawer and the two connection pads 502 of an input-output module makes it possible to deliver the first auxiliary electrical voltage coming from the electrical supply tracks 148 to the drawer and the data exchanged between the first and second communication cards 506 and 508 correspond to the data which transits via the electronic circuits 144.
[0515] This solution is advantageous because it allows the data exchanged on the one hand and the transmission of an electrical voltage on the other to be separated into two different connections.
[0516] Furthermore, since one of the two movable lateral contacts 352 of a drawer 138 is connected to the input-output module from the test position of the drawer to the operating position of the drawer, the first auxiliary electrical voltage is delivered to the drawer from its test position. Thus, the electronic control card 364 and the functional elements 362 are supplied with the first auxiliary electrical voltage in the test position of the drawer.
[0517] This supply in the test position is advantageous, because it allows, for example, to check the correct operation of the drawer 138 before allowing the drawer 138 to move into the operating position.
[0518] Alternatively, a first connection pad 502 among the two pads makes it possible to deliver the first auxiliary electrical voltage to the drawer 138 and a second connection pad makes it possible to exchange data between the drawer and the input / output module 206, in a complementary manner or in a redundant manner with the data exchange carried out by the communication cards, such as for example emergency stop signals.
[0519] Alternatively, the drawer 138 and the input-output module 206 do not include communication cards and the data which passes through the electronic circuits 144 are exchanged between the drawer 138 and the input-output module by the connection pads 502 and a movable lateral contact 352.
[0520] As visible at the figure 8 , each input-output module 206 also includes connection terminals 510.
[0521] Among the connection terminals 510 of an input-output module, some are connected on the one hand to the electrical power supply tracks 154 and on the other hand to the electrical load 104 connected to the drawer 138 associated with said input-output module, which makes it possible to supply this electrical load with a second auxiliary electrical voltage. In practice, power supply cables (not shown) connect the connection terminals 510 to the electrical load 104.
[0522] Alternatively, these power cables are connected to mobile sockets and the mobile sockets are configured to be connected to the connection terminals 510.
[0523] Supplying an electrical load 104 with a second auxiliary electrical voltage makes it possible to supply additional functions of the electrical load 104. When the electrical load 104 is an electric motor, these additional functions are, for example, heating circuits, which make it possible to maintain the electric motor above a minimum temperature when the motor is not in operation. These heating circuits are advantageous because they make it possible to avoid condensation phenomena which could damage this motor.
[0524] Among the connection terminals 510 of an input-output module, others are connected on the one hand to the electronic circuits 144 and on the other hand to sensors not shown arranged at the level of the electrical load 104, such as for example position, speed or temperature sensors when the load 104 is a motor, or even an emergency stop button. The data from these sensors are transmitted on the one hand to the drawer 138 and on the other hand to the computer bus section.
[0525] Thus, each input-output module 206 makes it possible to connect the computer bus section 204 to a control-command drawer 138 and to the electrical load 104 connected to this control-command drawer and allows the exchange of data between the control-command drawer 138 and the electrical load 104.
[0526] This input-output module 206 is advantageous because it allows several connections to be centralized in a single box and it allows the drawer 138 to be connected to the computer bus section 204 without requiring the use of electrical cables.
[0527] As visible at the figure 25 , the computer bus section 204 comprises a housing 600 in which an electronic card 602 is arranged.
[0528] Like the computer bus 142, the computer bus section 204 extends lengthwise along the Z axis.
[0529] The electronic card 602 carries electronic circuits 604, first power supply tracks 606 and second power supply tracks 608.
[0530] The computer bus section 204 also includes linear connectors 610, in practice six linear connectors.
[0531] Each linear connector 610 is connected to the electronic circuits 604 and to the power supply tracks 606 and 608.
[0532] In practice, the computer bus section 204 is configured to be able to be connected with one or more input-output modules 206, up to six input-output modules. Each input-output module is connected to the computer bus section by a linear connector 610. Indeed, the linear connectors 610 are configured to be connected with the linear connectors 504 of the input-output modules, thus ensuring a connection between the computer bus section 204 and the input-output modules 206.
[0533] On the figure 8 , two input-output modules 206 are connected to the computer bus section.
[0534] The computer bus section 204 also comprises male connectors 612 at a first end along the Z axis, in the example at a high end. In practice, the male connectors 612 comprise a first connector 614 connected to the first power supply tracks 606, a second connector 616 connected to the second power supply tracks 608 and a third connector 618 connected to the electronic circuits 604.
[0535] This first end also comprises lugs 620, in practice two lugs 620, which extend from the housing 600 along the Z axis, moving away from the housing.
[0536] The computer bus section 204 also includes female connectors 622 at a second end along the Z axis, in the example at a lower end. In practice, the female connectors 622 include a first connector 624 connected to the first power supply tracks 606, a second connector 626 connected to the second power supply tracks 608 and a third connector 628 connected to the electronic circuits 604.
[0537] The male connectors 612 and the female connectors 622 are of complementary shapes, that is, the male connectors can fit into the female connectors.
[0538] This second end also includes cavities 630. The lugs 620 and the cavities 630 are of complementary shapes, that is to say that the lugs can fit into the cavities.
[0539] The female connectors 622 and the cavities 630 are visible in detail at figure 26 .
[0540] By means of the lugs 620 and the cavities 630, several computer bus sections 204 can be assembled together. By means of the male connectors 612 and the female connectors 622, several computer bus sections 204 can be electrically connected.
[0541] When two computer bus sections 204 are assembled, they are juxtaposed along the Z axis, the male connectors of a first section are fitted into the female connectors of a second section and the lugs 620 of the first section are fitted into the cavities 630 of the second section.
[0542] In practice, each engine starter module 200 comprises a computer bus section 204. Thus, when an engine starter column 110 comprises several engine starter modules 200, which are superimposed, the computer bus sections 204 of all the engine starter modules 200 are assembled and electrically connected to each other.
[0543] A 650 computer bus connection is shown in figure 27 . This connection is also visible at the Figure 6 , assembled to a communication module 134.
[0544] The computer bus connector 650 makes it possible to connect a computer bus section 204 of a connection column 110 to the communication module 134 of this connection column. Thus, each connection column 110 comprises a computer bus connector 650 fixed to the communication module 134 of the column.
[0545] For this, the computer bus connection 650 comprises male connectors 652 and female connectors 654, which are identical respectively to the male connectors 612 and the female connectors 622 of the computer bus section 204.
[0546] The computer bus connector 650 also includes lugs 656 and cavities 658, which are identical to the lugs 620 and cavities 630 of the computer bus section 204, respectively.
[0547] Thus, the computer bus connector 650 can be assembled on, and electrically connected to, a computer bus section, in the same manner that two computer bus sections can be assembled together, i.e. by fitting together.
[0548] In addition, the fact that the computer bus connector 650 comprises male connectors and female connectors is advantageous, because it can be assembled either above a computer bus section, for example when the communication module 134 is arranged above the engine starter module(s) 200, or below a computer bus section, when the communication module 134 is arranged below the engine starter module(s) 200.
[0549] In practice, only the male connectors or the female connectors are used when the computer bus connection 650 is mounted in a column 110. It is then advantageous to protect the unused connectors with a cap, not shown.
[0550] In an engine starter column 110, the computer bus 142 is formed by the assembly of a computer bus connector 650 and one or more computer bus sections 204.
[0551] In a motor starter column 110, the electronic circuits 604 correspond to the electronic circuits 144 of the computer bus 142, the first electrical power supply tracks 606 of the computer bus section(s) correspond to the power supply tracks 148 of the computer bus 142 and the second electrical power supply tracks 608 correspond to the power supply tracks 154 of the computer bus 142.
[0552] The connection of the computer bus 142 to the communication module is made by several front connectors 660. In practice, these connectors include: A first connector 662, which is connected on the one hand to the first connector 192 of the communication module by cables not shown and on the other hand to the power supply tracks 148 of the computer bus 142. Thanks to the first connector 662, the power supply tracks 148 of the computer bus 142 are supplied with a first auxiliary electrical voltage. A second connector 664, which is connected on the one hand to the protective housing 194 of the communication module 134 by cables not shown and on the other hand to the power supply tracks 154 of the computer bus 142. Thanks to the second connector 664, the power supply tracks 154 of the computer bus 142 are supplied with a second auxiliary electrical voltage. A third connector 666, which is connected on the one hand to the managed switch 135 of the communication module 134 by cables not shown and on the other hand to the electronic circuits 144 of the computer bus 142.Thanks to the third connector 666, the electronic circuits 144 of the computer bus 142 are connected to the managed switch 135 and can therefore exchange information with the communication module 134.
[0553] As visible at the figure 34 , the computer bus section 204 can be equipped with jumpers 750.
[0554] We distinguish between figures 34 And 35 three types of 750 riders: a male end jumper 752; a female end jumper 754; and an input-output jumper 756.
[0555] The male 752 and female 754 end jumpers make it possible to prevent the end of the computer bus 142 - which comprises several computer bus sections 204 assembled together - opposite the end connected to the computer bus connector 650 from being free in a motor starter column 110.
[0556] Thus, a first end of the computer bus 142 is connected to the computer bus connector 650 and a second end of the computer bus is connected to a male 752 or female 754 end jumper.
[0557] This connection makes it possible to protect the connectors 622 or 612 of the computer bus section 204 opposite the computer bus connection.
[0558] In practice, the male end jumper 752 protects the female connectors 622 and the female end jumper 754 protects the male connectors 612.
[0559] To enable the assembly of the end jumpers on the computer bus section 204, the male end jumper 752 comprises two lugs 758, of complementary shape to the cavities 630 of the first end of the computer bus section, and the female end jumper 754 comprises two cavities 760, of complementary shape to the lugs 620 of the second end of the computer bus section.
[0560] Furthermore, the end jumpers 752 and 754 make it possible to ensure the continuity of the electronic circuits 604 of the computer bus section 204, corresponding, in an engine start column 110, to the electronic circuits 144 of the computer bus 142.
[0561] Indeed, the electronic circuits 144, in particular when they allow an exchange of data according to the Ethernet protocol, connect the communication module 134 of an engine starter column 110 to the control-command drawers 138 in series. Thus, the electronic circuits 144 form a loop whose point of origin is the communication module 134.
[0562] When a computer bus section 204 includes a free end, the end jumper 752 or 754 mounted on this free end makes it possible to close this loop, thanks to connectors connected to the electronic circuits 604, by being connected to the free end of the computer bus section.
[0563] In practice, the male end jumper 752 comprises male connectors 762 and the female end jumper 754 comprises female connectors 764, which are identical respectively to the male connectors 612 and the female connectors 622 of the computer bus section 204.
[0564] In a variant of the invention not shown, the engine starter column 110 does not include a communication module 134 and the electronic circuits 144 form a loop whose point of origin is the industrial computer 130, which then has a functional role identical to that of the communication module 134.
[0565] Advantageously, these male 762 and female 764 connectors also make it possible to connect the end jumpers 752 and 754 to the power supply tracks 606 and 608.
[0566] Thus, the power supply tracks 606 and 608 can supply the linear connectors 610 either in parallel or in series. Indeed, in the case of a series supply, the male 762 and female 764 end jumpers make it possible to close the loops of the power supply tracks 606 and 608.
[0567] On the same principle, the input-output jumpers 756 make it possible to close the loop formed by the electronic circuits 144 at a given linear connector 610, when no input-output module 206 is connected to this linear connector 610.
[0568] For this, each 756 input-output jumper has a complementary 766 connector, configured to be connected to a 610 linear connector.
[0569] In practice, in a motor starter module 200, the number of input-output jumpers 756 depends on the number of input-output modules 206. This number is equal to the total number of linear connectors 610, minus the number of input-output modules 206 of the motor starter module 200.
[0570] Thus, in the example shown in the figure 8 , in which two input-output modules 206 are connected to the computer bus section 204, which includes six linear connectors 610, four input-output jumpers 756 are connected on the computer bus section, but are not shown to simplify the figure.
[0571] Since an input-output module 206 is always associated with a control-command drawer, it can also be considered that the input-output jumpers 756 make it possible to close the loop formed by the electronic circuits 144 at the level of a linear connector 610, when no control-command drawer is connected to this linear connector.
[0572] As visible at the figure 34 , the computer bus section 204 also includes memory blocks 780, which are in practice electronic chips, also called integrated circuits.
[0573] Advantageously, the computer bus section 204 comprises as many memory blocks 780 as linear connectors 610.
[0574] In the example, the computer bus section 204 therefore comprises six memory blocks 780. At the figure 34, only four 780 memory blocks are shown, through two cutouts of the 600 housing of the computer bus section, to simplify the figure.
[0575] Each memory block 780 is thus associated with a linear connector 610.
[0576] Thus, when the engine starter module 200 is assembled, each memory block 780 is associated with an input-output module 206, which corresponds to the input-output module connected to the linear connector 610, and with a control-command drawer 138, which corresponds to the drawer connected to the input-output module connected to the linear connector 610.
[0577] During operation of the electrical cabinet 100, each memory block 780 records information and parameters about the control-command drawer 138, about the electrical load 104 connected to the control-command drawer 138 and / or about the input-output module 206 to which the drawer and the electrical load are connected.
[0578] For example, a memory block 780 records, regarding the electrical load 104 connected to the control-command drawer 138 associated with the memory block, all or part of the following information: the type of the electrical load 104, such as for example a single-phase electric motor, a three-phase electric motor, or even a controllable electrical load; the operating conditions of the electrical load 104, such as for example the electrical power necessary for its operation; and the type of the control-command drawer 138 which must control the electrical load, that is to say the representative characteristics of the drawer, comprising for example the number and arrangement of the contactors of the functional elements 362 or the type of the thermal protection relay.
[0579] In practice, a memory block 780 records in particular, with regard to the control-command drawer 138 associated with the memory block, the type of the control-command drawer, that is to say the representative characteristics of the drawer, as well as operating parameters of the functional elements 362. These operating parameters are, for example, a power setting to be supplied to the electrical load 104, a setting of the trigger threshold of the thermal protection relay, or detection thresholds of operating sensors.
[0580] In practice, a memory block 780 records, regarding the input-output module 206 associated with the memory block, information which is for example the type of the electrical load 104 connected to the input-output module and / or the type of sensors arranged at the level of the electrical load and connected to the input-output module.
[0581] These operating parameters are generally saved at the level of the electronic control card 364 of the control-command drawer 138.
[0582] Furthermore, each memory block 780 communicates with the communication module 134 of the corresponding engine starter column 110. In fact, each memory block 780 is connected to the electronic circuits 604, thanks to connection circuits 782 visible at the figure 34 , thus enabling this communication.
[0583] The memory blocks 780 are particularly advantageous during the use of the electrical cabinet 100, and particularly during the maintenance phases of the electrical cabinet 100.
[0584] Indeed, in the event of replacement of an old control-command drawer 138 of a motor starter column 110 by a new control-command drawer, a first verification method is carried out by the communication module 134, or by the industrial computer 130 via the communication module 134, comprising at least the following steps: a) detecting the type of the old control-command drawer 138 initially installed at a given location, from the information recorded in the memory block 780 associated with the drawer; b) checking whether the type of the new control-command drawer 138 installed as a replacement corresponds to the type of the old drawer and / or is compatible with the type of the electrical load 104, from the information recorded in the memory block 780 associated with the drawer; c) determining whether the new drawer is suitable for replacing the old drawer;d) in the case where the new control-command drawer 138 is determined in step c) as suitable for replacing the old drawer, adjusting the operating parameters of the functional elements 362 of the new drawer, by saving them in the electronic control card 364 of the new drawer, from the information recorded in the memory block 780, so that these operating parameters are identical to the operating parameters of the old drawer; and e) in the case where the new control-command drawer 138 is determined in step c) as not suitable for replacing the old drawer, preventing the start-up of the new control-command drawer and signaling an anomaly. ;
[0585] This first verification method is advantageous because it makes it possible to ensure that a control-command drawer replacement is correctly carried out and makes it possible to carry out such a replacement without having to indicate operating parameters to the new control-command drawer, these operating parameters being automatically loaded.
[0586] Advantageously, if during step b) it is detected that the type of the new control-command drawer 138 is not identical to the type of the old drawer, but that the new drawer is compatible with the type of the electrical load 104, then during step c), the new drawer is determined as suitable for replacing the old drawer and step d) is carried out, and a signal indicating the difference in type between the new drawer and the old drawer is emitted, for example by means of a message displayed on the display 302. For example, the new control-command drawer 138 may comprise functional elements 362 making it possible to control an electrical load of higher power than the old drawer, but also suitable for controlling the electrical load associated with the drawer.The new drawer is then compatible with the electrical load, and can therefore be used as a replacement for the old drawer, even if the new drawer is of a different type from the old drawer.
[0587] Alternatively, the first verification method is carried out by the input-output module 206 associated with the replaced control-command drawer 138. The input-output module is then equipped with a calculation unit configured to execute steps a) to e) and access the information recorded in the memory block 780 associated with this drawer.
[0588] In the event of replacement of an old input-output module 206 by a new input-output module, which involves rewiring the connection terminals 510 of this module, a second verification method is carried out by the communication module 134, or by the industrial computer 130 via the communication module 134, comprising at least the following steps: a) detecting the type of the electrical load 104 associated with the new input-output module 206 and / or the type of sensors arranged at the electrical load connected to the input-output module, from the information recorded in the memory block 780 associated with this new input-output module; b) checking whether the type of this electrical load and / or of these sensors connected to the new input-output module corresponds to the type of the electrical load and / or of the sensors initially connected to the old input-output module; c) determining whether the electrical load 104 and / or the sensors connected to the new input-output module correspond to the electrical load 104 and / or to the sensors connected to the old input-output module; d) if so, authorizing the start of the electrical load 104; and e) if not, preventing the start of the electrical load 104 and reporting an anomaly.
[0589] This second verification method is advantageous because it makes it possible to ensure that a replacement of input-output module 206 is correctly carried out, and more particularly that the connections to the connection terminals 510 are correctly made.
[0590] Alternatively, the second verification method is carried out by the new input-output module 206. The new input-output module is then equipped with a calculation unit configured to execute steps a) to e) and access the information recorded in the memory block 780 associated with this input-output module.
[0591] Furthermore, in the event of replacement of the communication module 134 of an engine starter column 110, a data recovery method is carried out by the new communication module, which consists of recovering the operating parameters of the control-command drawers 138 and / or the information linked to the electrical loads 104 from the information recorded in the memory blocks 780 so that the new communication module 134 has this information.
[0592] This method of data recovery is particularly advantageous because it avoids having to manually provide a large amount of data to the new communication module 134, which would be tedious, this data being automatically recovered here.
[0593] In the variant where the engine starter column 110 does not include a communication module 134, this data recovery method applies in a similar manner to the replacement of the industrial computer 130.
[0594] Furthermore, the fact that the memory blocks 780 are arranged on the computer bus sections 204 is particularly advantageous, because the computer bus sections are reliable elements, not prone to breakdowns, which are therefore generally not replaced during the lifetime of the electrical cabinet 100. Thus, the information recorded in these memory blocks 780 is not lost, even during complex maintenance operations in which, for example, a simultaneous replacement of control-command drawers 138, the associated input-output modules 206 and the communication module 134 would take place.
[0595] The connection of a drawer 138 to an electrical load 104, that is to say the power supply of this electrical load by this drawer 138, is carried out by means of an external connection module 208. Thus, an external connection module 208 is associated with each drawer 138.
[0596] Three types of external connection modules 208 are shown in figures 28 to 33 . These three types of modules together form a set of external connection modules 700 which is partially represented in each of these figures.
[0597] Each connection module of the module set 700 is configured to allow the connection of a drawer 138 to an electrical load 104 consuming an electrical power included in a given data range.
[0598] A first external connection module 702 is shown in figures 28 And 29This first connection module is configured to connect a drawer 138 to a low-power electrical load 104, for example less than 11 kW.
[0599] A second external connection module 704 is shown in figures 30 And 31 This second connection module is configured to connect a drawer 138 to an electrical load 104 of average power, for example between 11 kW and 30 kW.
[0600] A third external connection module 706 is shown in figures 32 And 33 This third connection module is configured to connect a drawer 138 to a high-power electrical load 104, for example between 30 kW and 75 kW.
[0601] Thus, the choice of an external connection module to be installed on an engine starter module will depend on the electrical power required by the electrical load 104 connected to this module.
[0602] The external connection modules 702, 704 and 706 each comprise a housing 708. The housing 708 comprises in practice two half-housings respectively forming a base 708A and a cover 708B, assembled by fixing means, such as screws 708C visible only for the external connection module 702 at the figure 29 .
[0603] The 708 housing of the 702 external connection module has a height H702 equal to 1U.
[0604] The 708 housing of the 704 external connection module has a height H704 equal to 2U.
[0605] The 708 housing of the 706 external connection module has a height H706 equal to 3U.
[0606] Preferably, the external connection module 702 is associated with a drawer 138 of height 1U or 2U, the external connection module 704 is associated with a drawer 138 of height 2U, 3U, 4U, 5U or 6U and the external connection module 706 is associated with a drawer 138 of height 5U or 6U. Thus, the height of an external connection module is always less than or equal to the height of the drawer associated with it.
[0607] A first end 709 of the housing 708 of each external connection module carries input connectors 710.
[0608] The height of the first end 709 is equal to 1U, regardless of the height of the housing 708.
[0609] A second end 711 of the housing 708 of each external connection module carries output connectors 712.
[0610] The height of the second end 711 is equal to the height H702, H704 or H706 of the housing 708.
[0611] In practice, the input 710 and output 712 connectors are arranged on the same face of the housing 708, that is to say that, when the housing is assembled on the engine starter module 200, the input 710 and output 712 connectors face the same face of the cabinet 100, in the example the front face F1.
[0612] In the example, the first end 709 includes four input connectors and the second end includes four output connectors.
[0613] The input connectors 710 are configured to be connected to the downstream connectors 356 of the drawer 138 associated with the connection module. In other words, the downstream connectors 356 of a drawer supply electrical energy to the external connection module 702, 704 or 706 associated with this drawer. Thus, the drawer 138 is a source of electricity for the connection module.
[0614] The constant height of the first end 709 is advantageous because it is equal to the height of the base 328 of the drawer 138. A first end 709 then allows the connection of all the drawers 138, regardless of their height.
[0615] The output connectors 712 are configured to be connected to the electrical load 104 via the connecting cables 139.
[0616] In practice, the electrical connection cables 139 are connected to the output connectors 712 by terminals 716, as seen in the figure 29 .
[0617] In the housing 708, the input connectors 710 and the output connectors 712 are electrically connected by cables or conductive bars 718. In the first and second external connection modules 702 and 704, taking into account the transmitted power, it is possible to use conductive cables between the connectors 710 and 712, these cables being represented by their respective center lines at figures 29 And 31 In the third external connection module 706, taking into account the transmitted power, connection bars visible at the figure 33 . In the latter case, the connectors 710 and 712 are formed by the ends of the bars 718.
[0618] In practice, each external connection module comprises four conductive cables or conductive bars 718, i.e. one bar per input connector and per output connector.
[0619] The conductive cables or conductive bars 718 are adapted to the power consumed by the electrical load 104 connected to the output connectors 712.
[0620] Thus, for a high power electrical load, for example between 30 kW and 75 kW, the conductive bars 718 are for example copper bars with a section between 16 and 50 mm 2< , for example equal to 50 mm 2< for an electrical load of 75 kW.
[0621] In the case of a low power electrical load, for example less than 11 kW, the conductive cables 718 have a smaller cross-section, for example between 1 and 6 mm 2< , for example equal to 6 mm 2< for an electrical load of 11 kW.
[0622] Alternatively, the conductive cables 718 of the first and second external connection modules 702 and 704 can be replaced by conductive bars.
[0623] In practice, the greater the power delivered to an electrical load, the greater the cross-section of the conductive cables and conductive bars 718, which requires that the external connection module comprising such conductive cables or conductive bars be higher. This is why the third external connection module 706 has a height H706 greater than the height H704 of the second module 704, itself greater than the height H702 of the module 702.
[0624] The second end 711 of each external connection module further comprises a cover 720, which covers the output connectors 712. When the cover 720 is installed, the connectors 712 are not accessible from outside the housing 708 and are therefore protected, which prevents any contact with the terminals 716. When the cover 720 is removed, the connectors 712 are accessible, which allows the cables 139 to be connected to the connectors.
[0625] Preferably, the cover 720 is transparent, which makes it possible to check the correct connection of the cables 139 without making these cables accessible.
[0626] Preferably, the cover 720 is assembled to the housing 708 by fixing means, such as a screw 721 visible only for the external connection module 702.
[0627] As visible at the figure 8 , the housing 708 of each external connection module is fixed to the rear support 210 of the structure 202 of the engine starter module 200, for example using screws, at its first end 709, that is to say at the end which comprises the input connectors 710.
[0628] The housing 708 thus extends from the rear support 210 in a cantilevered manner, away from the engine starter module 200.
[0629] Furthermore, the housing 708 of each external connection module 704 and 706, i.e. of a 2U and 3U height module, comprises a reinforcement 722, which extends from the housing 708 parallel to the first end 709 and which is also fixed to the rear support 210.
[0630] The 722 reinforcement has a height equal to 1U. It is monobloc with the 708B cover.
[0631] The first end 709, and possibly the reinforcement 722, are arranged in the volume V1 and in the functional zone 156 of the connecting column 110.
[0632] The remainder of the housing 708 and the second end 711 extend into the wiring area 160 of the connection column 110.
[0633] In practice, the functional area 156 and the wiring area 160 are separated by the lateral support 212 of the engine starter module. Thus, the first end 709 of an external connection module 702, 704 and 706 extends through the lateral support 212, and more particularly through an opening 220 provided in the lateral support 212.
[0634] The reinforcement 722 of the housing 708 of an external connection module 704 and 706 also extends through an opening 220 of the side support 212.
[0635] Alternatively, the external connection modules are configured so that the input 710 and output 712 connectors are arranged on two opposite faces. Such a configuration is advantageous when the connection of the cables 139 is carried out from the rear of the electrical cabinet 100, as in the variant of the Figure 5 .
[0636] Furthermore, each drawer 138 comprises two centering members 800, arranged on the rear part 348 of the drawer and which extend along the Y axis outside the drawer. Each centering member 800 has a bevel shape, that is to say that its free end is less wide than its base attached to the rear part of the drawer, with which it is preferably in one piece.
[0637] These centering members 800 make it possible to guarantee correct positioning of the drawer 138 in the engine starter module 200 when it is moved to its operating position.
[0638] For this, the protection unit 140 comprises centering cavities 802 and each external connection module 702, 704 and 706 comprises a centering cavity 804.
[0639] The centering cavities 802 of the protection unit 140 are arranged between the groups of connectors 246 and the inner face 238 of the protection unit 140, as visible in the Figure 11
[0640] The centering cavities 804 of each external connection module 702, 704 and 706 are arranged on the cover 708B of each housing 708, near the first end 709 and the input connectors 710.
[0641] The centering cavities 802 of the protection unit and 804 of each external connection module are directed towards the volume V1 of the engine starter module 200.
[0642] The centering cavities 802 and 804 are of complementary shapes to those of the centering members 800 and are positioned so that in the operating position of the drawer, a first centering member 800 of a drawer 138 is received in a centering cavity 802 and a second centering member of a drawer 138 is received in a centering cavity 804.
[0643] When a drawer 138 is moved from its test position to its operating position, the centering members 800 of the drawer 138 are gradually inserted into the centering cavities 802 and 804 and, thanks to the beveled shape of the centering members 800, this progressive insertion makes it possible to center the drawer 138 relative to the centering cavities 802 and 804 and therefore relative to the engine starter module 200.
[0644] Thanks to the external connection modules 208 of the module set 700, the connections of the electrical loads 104 to the drawers 138 are moved from the functional area 156 to the wiring area 160. This is advantageous, because the wiring area 160 is easily accessible, which simplifies the connection of the electrical cables 139 to the output connectors 712.
[0645] Alternatively, the number of types of external connection module 208 within the set of external connection modules may be other than three, in particular equal to 2, 4, 5 or 6.
[0646] In summary, the main electrical power supplied by the power cable 102 is conducted into the electrical cabinet 100 first by the power column 106, then is redistributed to each protection unit 140 of each motor starter column 110 by the busbars 114, 118 and 122, then is redistributed to each drawer 138 by the connectors 248 and 354, then is redistributed to each external connection module 208 by the connectors 356, then is redistributed to each electrical load 104 by each external connection module 208.
[0647] In summary, many data exchanges are carried out in the electrical cabinet 100: the operating data from sensors located on each electrical load 104 are transmitted by the input-output module 206 associated with this load on the one hand to the drawer 138 and on the other hand to the communication module 134, via the computer bus 142;o in the drawer 138, these data are, on the one hand, taken into account by the electronic control card 364 to adapt the operation of the drawer 138, o in the drawer 138, these data are, on the other hand, if necessary, transmitted to the protection unit 140, for example when these data come from the activation of an emergency stop button located near the electrical load 104, with the aim of cutting the electrical power supply at the level of the protection unit 140, and o in the communication module 134, these data are transmitted to the industrial computer 130, each drawer 138 transmits data on its own operation to the communication module of the connection column 110 comprising this drawer;the communication module 134 of each connection column 110 exchanges data on the operation of this connection column with the industrial computer 130 as well as with the communication modules of the other connection columns 110 of the cabinet 100, when the cabinet comprises several connection columns; and the industrial computer 130 transmits commands to the communication module 134 of each connection column 110, this data is then distributed by the managed switch 135 and transmitted to the drawers 138 by the computer bus 142 and the input-output module 206. ;
[0648] The installation of an engine starter column 110, which includes a communication module 134 and at least one engine starter module 200, comprises an assembly phase and a connection phase.
[0649] The assembly phase includes steps that consist of: a) assembling the communication module 134 to the frame 164 of the engine starter column; b) assembling each engine starter module 200, i.e. fixing the protection unit 140, the computer bus section 204, each input-output module 206 and each external connection module 208 to the structure 202 of the engine starter module; c) fixing each engine starter module on the frame 164, by fitting the computer bus sections 204 together and by fitting the computer bus section of an engine starter module on the computer bus connection 650; d) fixing an input-output jumper on each free linear connector 610 and a male or female end jumper on the free end of the computer bus 142; and e) installing the drawers 138 in each engine starter module.
[0650] In practice, the order of steps a) to e) may be different. In particular, steps b), c) and d) may be reversed and step a) may be carried out at any other time. However, step e) always comes after steps a) to c).
[0651] In particular, as a variant, the structure 202 of an engine starter module is firstly fixed to the frame 164 of the engine starter column, then step b) of assembling the engine starter module 200 is carried out.
[0652] The connection phase allowing the commissioning of the electrical cabinet 100 is carried out after the assembly phase and includes steps which consist of: a) connecting the front panel connectors 650 of the computer bus connection 650 to the communication module 134; b) connecting the connection terminals 510 of each input-output module 206 of each engine starter module 200 to the electrical loads 104, so as to connect the sensors of the electrical load to the input-output module and to supply the electrical load with a second auxiliary electrical voltage; and c) connecting the external connection modules 208 to the electrical loads 104 with the cables 139, so as to supply the electrical loads 104 with the main electrical supply.
[0653] In practice, the connection of the main power supply to the electrical loads 104 only requires the connection of the cables 139.
[0654] Thus, the electrical cabinet 100 described here, and more particularly the motor starter column 110, is advantageous, because: all the connections necessary for commissioning the electrical cabinet 100 are made in the connection area 158. This is advantageous because it simplifies the connections of the electrical cabinet. In particular, no connections are required in the functional area 156. a large number of connections internal to the cabinet are made by nesting or plugging in connectors, which is simpler than installing electrical connection cables. the electrical cables connected in the electrical cabinet all come from the connection area 158. Thus, their management is simpler: when the electrical cabinet 100 includes a wiring area 160, as in Figure 3 , all these cables can be grouped into a cable bundle in this wiring area, and when the electrical cabinet 100 does not include a wiring area 160, as in Figure 5, all these cables can be grouped into a cable bundle which exits the cabinet 100 through its rear face F2.
[0655] The orientation of the elements included in an engine starter module 200 described above relates to an engine starter module arranged in a connection column located to the right of an electrical distribution column, on the figures 1 to 5 .
[0656] In practice, the engine starter module 200 described above can also be arranged in a connection column located to the left of an electrical distribution column, on the figures 1 to 5 To do this, the engine starter module 200 is simply rotated 180 degrees around an axis parallel to the transverse Y axis.
[0657] Thus, a motor starter module 200 has no preferred orientation: the protection unit 140, the computer bus section 204, each drawer 138, each input-output module 206 and each external connection module 208 are configured to operate independently of their spatial orientation.
[0658] For example, a drawer 138 of a connection column located to the left of an electrical distribution column will be arranged so that its base 328 is arranged at the top and its cover at the bottom. All the elements contained in a drawer 138 being fixed to the base 328, this arrangement does not impact the operation of the drawer. This arrangement also does not impact the cooling of the drawer by the air flow FL1, since the air flow FL1 is horizontal, and is therefore not affected by a change of orientation. Such an arrangement is visible at Figure 1 .
[0659] This operation of a 200 engine starter module independent of the orientation of this module is interesting for several reasons: it allows the use of identical parts for a connection column located to the left or right of an electrical distribution column, which is economical and facilitates the design of a cabinet 100; and it allows two connection columns to be arranged on each side of an electrical distribution column 108 - so as to form a functional column 111 -, which allows the electrical distribution column to be shared between two connection columns, which is economical and which allows the size of the cabinet 100 to be reduced.
[0660] Similarly, a communication module 134 has no preferred orientation and relative to the orientation described in this disclosure, a module installed in a connection column located to the left of an electrical distribution column will be rotated 180 degrees about an axis parallel to the transverse axis Y, as will the computer bus connector 650 attached thereto.
[0661] The interior arrangement of the left and right connecting column of the figures 1 to 5 is therefore symmetrical with respect to the plane P2 visible at the Figure 2 .
[0662] Furthermore, the electronic control card 364 of a drawer 138 is configured to detect the orientation of the drawer 138, for example using a sensor integrated into the card, and to control the display 302 so that the information displayed there is oriented so as to be easily readable from outside the cabinet 100. The display 302 is therefore configured to adapt the orientation of the information displayed there to the orientation of the drawer 138.
[0663] In a variant of the invention not shown, the electrical cabinet 100 does not include motor starter modules and the protection unit, the computer bus section, the control-command drawers, the input-output modules and the external connection modules are directly arranged in the electrical cabinet 100, fixed to the frame 164.
[0664] On the figures 41 And 42, a drawer 138 of height equal to 1U is shown without its cover 330. This drawer is similar to the drawer shown in figures 15 to 17 , but further comprises a position detection module 900 which is shown alone in the figure 43 .
[0665] In the following, the elements of drawer 138 of the figures 41 And 42 similar to those of drawer 138 shown in figures 15 to 17 have the same references and operate in the same way. In the following, we mainly describe the differences between the drawer of figures 15 to 17 and the drawer of figures 41 And 42 . Further, if a component is mentioned in the following description of drawer 138 without being shown the figures 41 And 42 , it corresponds to the same element represented on the figures 1 to 40 .
[0666] On the figures 41 And 42 , the functional elements 362 and the electronic control card 364 of the drawer 138 are not shown.
[0667] The position detection module 900 is fixed to the base 328 of the drawer 138. In the example, the position detection module 900 is fixed to one of the two side structures 346, preferably to the side structure which does not include the mechanical lock 820. Alternatively, the position detection module 900 is fixed to the same side structure as the mechanical lock 820.
[0668] The position detection module 900 includes sensors for detecting when the drawer 138 is in the test position and for detecting when the drawer is in the operating position. In the example, the position detection module includes two sensors 902 and 904. The two sensors 902 and 904 are connected to the electronic control card 364, so as to transmit to the electronic control card information on the position of the drawer 138.
[0669] The position detection module 900 also includes an actuator 906, provided to actuate the sensors 902 and 904. The actuator 906 is in the example a control rod. The control rod 906 includes a first end 908 and a second end 910.
[0670] The first end 908 is fixed to the movable contact 352 of the lateral structure 346 on which the position detection module 900 is fixed. More precisely, the first end is fixed to the frame 422 of the movable contact 352. Thus, the first end 908 is integral with the frame 422 so that a translation of the frame 422 along the Y axis causes a translation of the control rod 906 along the Y axis, that is to say along the longitudinal axis A138 of the drawer. In other words, the control rod 906 is movable in translation relative to the lateral structure 346 along the longitudinal axis A138 of the drawer.
[0671] The translation of the control rod 906 relative to the lateral structure 346 is advantageously guided by a fixed structure 912 of the position detection module 900, which notably comprises guides 914 at the level of the second end 910.
[0672] The fixed structure 912 is fixed to the lateral structure 346, for example by screwing. Furthermore, in the example, the fixed structure 912 comprises two parts assembled together, for example by riveting. At the figure 43 , the different parts of the fixed structure are identified by the same reference 912.
[0673] Advantageously, the position detection module 900 comprises an elastic return member 916. The elastic return member 916 connects the fixed structure 912 to the control rod 906 so that, in the absence of other forces acting on the control rod, the control rod is returned to a position which corresponds to the position shown in FIG. figure 43 . In other words, the control rod 906 has a stable position, or rest position, which is that shown in the figure 43 , and the elastic return member 916 tends to bring the control rod back to this stable position.
[0674] Here, the control rod 906 comprises a stop 917, which bears against the fixed structure 912 when the control rod is in the rest position, and which prevents movement of the control rod beyond its rest position. Here, the stop 917 is formed of two tabs bent at right angles to the main part of the control rod.
[0675] In the example, the elastic return member 916 is a traction spring, a first end of which is fixed to a hook 918 of the fixed structure 912 and a second end of which is fixed to the second end 910 of the control rod.
[0676] In practice, the control rod 906 is in the rest position when the drawer 138 is between its disconnected position and its engaged position, and the control rod moves along the axis A138 relative to the lateral structure 346 when the drawer is between its engaged position and its operating position, just like the frame 422.
[0677] In the example, the position detection module 900 is oriented so that the second end 910 of the control rod 906 is located near the front portion 300 of the drawer 138 and so that the first end 908 is away from the front portion of the drawer. During the movement of the control rod 906, the second end 910 moves away from the sensors 902 and 904 and towards the front portion 300, until it is located in the front portion, extending through a window 919 provided in the fixed structure 912. In practice, an empty space is provided in the front portion 300 to accommodate the presence of the second end 910.
[0678] The control rod 906 comprises two upper cams 920 and 922 and a lower cam 924. The two upper cams 920 and 922 are located in the same plane parallel to the axis A138, that is to say they are aligned along the Z axis, and are offset from the lower cam 924 along the Z axis. The upper cams 920 and 922 are provided to actuate the detector 902 and the lower cam 924 is provided to actuate the detector 904.
[0679] L920 denotes a length between the upper cam 920 and an actuating element 926 of the detector 902, L922 a length between the upper cam 922 and the actuating element 926, and L924 a length between the lower cam 924 and an actuating element 928 of the detector 904, the lengths L920, L922 and L924 being measured along the axis A138. Advantageously, the length L922 is equal to the length L924.
[0680] The lengths L920, L922 and L924 have their respective maximum values when the control rod 906 is in the rest position, that is to say when the slide 138 is between its disconnected position and its engaged position.
[0681] The length L920 is zero when the drawer 138 is in the test position. Thus, when the drawer is in the test position, the upper cam 920 is in contact with the actuating element 926 of the detector 902, which actuates the detector 902 and causes a detection signal to be sent from the detector 902 to the electronic control card 364, then informing the electronic control card that the drawer is in the test position. In other words, the electronic control card 364 detects that the drawer 138 is in the test position when it receives a signal from the detector 902 actuated by the upper cam 920.
[0682] The lengths L922 and L924 are zero when the drawer 138 is in the operating position. Thus, when the drawer is in the operating position, the upper cam 922 is in contact with the actuating element 926 of the detector 902 and the lower cam 924 is in contact with the actuating element 928 of the detector 904, which simultaneously actuates the detectors 902 and 904 and causes two detection signals to be sent from the detectors 902 and 904 to the electronic control card 364, then informing the electronic control card that the drawer is in the operating position. In other words, the electronic control card 364 detects that the drawer 138 is in the test position when it simultaneously receives a signal from the detector 902 and the detector 904 actuated by the upper cam 922 and lower cam 924.
[0683] When the drawer 138 is in an intermediate position between the test position and the operating position, the upper cams and the lower cam are not in contact with the actuating elements of the detectors, and no detection signal is sent to the electronic control card 364.
[0684] In the example, the detectors 902 and 904 are dry contact switches and the actuating elements 926 and 928 are metal blades pivotally mounted around respective axes Z926 and Z928, parallel to the Z axis.
[0685] The detector 902 is connected to the electronic control card 364 by two wires 930, shown in a simplified manner on the figures 41 to 43. The two wires 930 form a loop starting and ending at the electronic control card, and passing through the detector 902 so that the metal blade 926 of the detector can open or close this loop. In practice, the loop formed by the two wires 930 is closed when the metal blade 926 is in contact with the high cam 920 or the high cam 922, because the high cams then push the metal blade 926 back by pivoting it around the axis Z926, and the loop is open when the metal blade is not in contact with a high cam. When the loop formed by the wires 930 is closed, then the electronic control card 364 receives a detection signal from the detector 902.
[0686] In the same way, the detector 904 is connected to the electronic control card 364 by two wires 932, shown in a simplified manner on the figures 41 to 43, which form a loop which is closed when the metal blade 928 is in contact with the lower cam 924 and which is open when the metal blade is not in contact with the lower cam. When the loop formed by the wires 932 is closed, then the electronic control card 364 receives a detection signal from the detector 904.
[0687] In the example, the electronic control card 364 is configured to detect that the drawer 138 is in the test position when a detection signal from the detector 902 is received, and to detect that the drawer 138 is in the operating position when detection signals from the detectors 902 and 904 are received simultaneously.
[0688] The position detection module 900 is particularly advantageous, because it makes the operation of the drawer 138 more reliable. Indeed, thanks to the detection of the position of the drawer 138 provided by the position detection module 900, the control of the functional elements 362 by the electronic control card 364 takes into account the actual position of the drawer. The control of the functional elements 362 is then improved.
[0689] Furthermore, the operation of the position detection module 900 is particularly reliable, because the position detection module is fully integrated in the drawer 138, and because the position of the drawer is detected only from the position of one of the movable side contacts 352, by detecting the position of this side contact relative to the base 328 of the drawer. In other words, the detection of the position of the drawer does not require interaction with a fixed structure of the motor starter module 200 or the electrical cabinet 100 and the position detection module 900 is isolated in the drawer 138. This is particularly advantageous, since the detection of the position of the drawer 138 is then insensitive to possible disturbances in the position of the drawer 138 relative to the electrical cabinet 100 around its test and operating positions, which could otherwise disturb the detectors 902 and 904.Such disturbances are caused, for example, by vibrations or shocks to the drawer.
[0690] Alternatively, the operating position is detected when the electronic control card 364 receives only a detection signal from the detector 904. In such an alternative, the control rod 906 does not include a second high cam 922, since actuation of the detector 902 in the operating position is not required.
[0691] Alternatively, the orientation of the detectors 902 and 904 is different from the orientation shown in the figures 41 to 43 , and the position of the high cams 920 and 922 and low cams 924 is adapted accordingly.
[0692] Alternatively, the position detection module 900 does not include an elastic return member 916. In such a variant, the return of the control rod 906 to its rest position is ensured by the traction springs 446, which tend to return the frame 422, and consequently the control rod, to the rest position.
[0693] Alternatively, the detectors 902 and 904 are induction switches, or Hall effect switches detecting the position of the high cams 920 and 922 and low cams 924.
[0694] Alternatively, the position detection module 900 comprises a single detector 902 or 904 for detecting the test and operating positions.
[0695] Alternatively, the drawer 138 comprises movable contacts 352 which are movable only along the longitudinal axis A138 of the drawer. In such a variant, the communication interfaces 353 protrude, for example, from the input-output modules 206 and the protection units 140, so as to come into contact with the movable contacts 352 when the drawer 138 is in the test position, and to cause the movable contacts to move relative to the base 328 when the drawer is moved from its test position to its operating position. In such a variant, the operation of the position detection module 900 is unchanged.
Claims
1. Electrical connection enclosure (100), the electrical enclosure being supplied with electrical power by power supply cables (102) and being configured to supply at least one electrical load (104) with power, the electrical enclosure comprising: • a power supply column (106); and • at least one connection column (110), the power supply cables (102) being connected to the electrical enclosure (100) in the power supply column (106), each connection column (110) comprising at least one monitoring-and-control unit (138) configured to allow the electrical connection to an electrical load (104), each monitoring-and-control unit (138) being electrically protected by a protection unit (140) belonging to the connection column of this monitoring-and-control unit, each monitoring-and-control unit (138) being configured to allow the connection and potentially the driving and / or the surveillance of an electrical load (104), the electrical enclosure being configured to be controlled by an industrial computer (130), each connection column (110) comprising a communication module (134) which: • centralizes operating information coming from the monitoring-and-control units (138) of this connection column; • is configured to transmit this operating information to the industrial computer (130); • is configured to receive commands coming from the industrial computer; and • transmits these commands to the monitoring-and-control units of this connection column, characterized in that at least one communication module (134) comprises a power supply block (150) delivering at least one auxiliary voltage to each connection column (110).
2. Electrical enclosure (100) according to Claim 1, characterized in that each connection column (110) comprises a computer bus (142) which connects the communication module (134) of this connection column to each monitoring-and-control unit (138) of this connection column and which allows the exchange of information and of commands between the communication module and each monitoring-and-control unit of this connection column.
3. Electrical enclosure (100) according to Claim 2, characterized in that the exchange of information and of commands between the communication module (134) of a connection column (110) and each monitoring-and-control unit (138) of this column travels through electronic circuits (144) of the computer bus (142) and preferably takes place using the Ethernet protocol.
4. Electrical enclosure (100) according to either one of Claims 2 and 3, characterized in that the computer bus (142) of each connection column (110) comprises electrical power supply tracks (148, 154) configured to supply each monitoring-and-control unit (138) of this connection column and / or at least one electrical load (104) connected to this connection column with at least one auxiliary voltage.
5. Electrical enclosure (100) according to any one of the preceding claims, characterized in that the power supply block (150) delivers a first auxiliary voltage to each monitoring-and-control unit (138) of each connection column (110) and is configured to deliver a second auxiliary voltage to at least one electrical load (104) connected to a monitoring-and-control unit (138).
6. Electrical enclosure (100) according to Claim 5, characterized in that the first auxiliary voltage is a DC voltage of 48 V and the second auxiliary voltage is an AC voltage of 230 V.
7. Electrical enclosure (100) according to any one of the preceding claims, characterized in that: • the power supply column (106) comprises a central switch (137); • the central switch (137) is connected between the industrial computer (130) and the communication module (134) of each connection column (110) in that: ∘ the central switch (137) is configured to receive the commands coming from the industrial computer (130) and to distribute these commands between the communication modules (134) of each connection column; and ∘ the central switch is configured to aggregate the operating information coming from the communication modules of each connection column and to transmit this information to the industrial computer.
8. Electrical enclosure (100) according to any one of the preceding claims comprising at least two connection columns (110), characterized in that: • the communication module (134) of each connection column (110) comprises a managed switch (135); • the managed switches (135) of the communication modules (134) are connected to one another by internal communication cables (136); and • each managed switch is configured to be connected to the industrial computer (130) independently of the other managed switches.
9. Electrical enclosure (100) according to any one of the preceding claims, characterized in that all of the connections of cables to the connectors (192, 196, 198, 510, 660, 712) of the electrical enclosure (100) which are required for commissioning the electrical enclosure are made in a single connection region (158).