The disclosure relates to a method of removing a latched electronic module from a base.
The disclosure is an improved method for unlatching an electronic module from a base. The module has two latch extractor assemblies. Each assembly includes a rigid, channel-shaped shift member at the insertion end of the module. The shift members each have a flat base with upstanding sidewalls. A latch arm on each sidewall is outside the module. A follower arm on each sidewall is inside the module. The two latch arms engage the base when the module is pushed into the base.
Each latch extractor assembly includes an extractor with a grip element away from the base and two cam surfaces which engage the two follower arms on the shift member sidewalls. Movement of the grip element away from the base moves the cam surfaces along the follower, arms to shift the base laterally and move the latch arms out of engagement with the base to release the module for removal from the base. The stiff shift member transmits unlatching forces from the follower arms to the latch arms without bending or twisting.
The module is easily unlatched and removed from the base by pulling upwardly on opposed grip elements on the extractors. Short initial upward movement of the grip elements unlatches the module. After unlatching, further upward movement of the grip elements removes the module from the base. After removal of the module, the grip elements are released and automatically return to their initial positions.
Electronic module 10 is removably mounted in recess 12 on base 14 which is typically mounted on DIN rail 16. The module 10 includes body 18 formed by two hollow molded plastic shells joined together at a circumferential seam 22 defining a hollow interior cavity 24. An electronic component 26 is mounted in cavity 24 and includes an electrical connector 28 which forms electrical connections with a complementary electrical connector (not illustrated) positioned in an opening in the bottom of recess 12 when the module is inserted into the recess, as shown in
Base 14 may be a power supply base for a process fieldbus. The electronic component 26 in module 10 may be a power supply device which regulates the voltage of DC power supplied to a process fieldbus connected to the base despite variation in the voltage of the power supplied to the module. Other types of electronic components may be mounted in the module 10. The module may be mounted on other types of bases.
The module 10 is removably mounted on base 14 by two like latch extractor assemblies 30 located on opposed edges of the module. Each assembly 30 includes a molded plastic extractor 32, return coil spring 34 and metal latch member 36. Each extractor 32, shown in
Spring pocket 46 is provided on strip body 38. When assemblies 30 are mounted in module 10, grip elements 40 extend outwardly from the edges of the module and pockets 46 extend inwardly toward the interior of the module. The recesses in spring pockets 46 face the upper ends of strip bodies 38 and grip elements 40.
Latch member 36, shown in
Stiff channel-shaped shift member 50 includes a flat base 56 forming an extension of spring arm 48 and opposed sides or sidewalls 58 bent up 90 degrees to base 56 and extending upwardly from one side of the base. Angled follower arms 60 extend above sides 58 and are adjacent spring arm 48. Angled latch arms 62 extend above sides 58 and are on the end of shift member 50 away from arm 48. The angled edges of arms 60 and 62 face down, away from spring arm 48.
Latching surfaces 64 on arms 62 face up toward spring arm 48 and are undercut to improve latching engagement with two complementary, angled latch surfaces 66 on an inner side of base wall 74 at the bottom of recess 12, as shown in
The two latch extractor assemblies 30 are identical. Each assembly is mounted on one edge of module body 18. Mounting of an assembly 30 on the right edge of the module shown in
Latch member 36 is positioned in one open shell 20 by extending the mounting ribs 54 on one side of member 36 into recesses 70 in the shell with the arm 48 and shift member 50 extending freely in an interior channel 72 in the shell 20. See
Extractor 32 is fitted in an elongate groove 78 extending along the side of the shell 20 holding the latch member 36. Strip body 38 is freely movable along the groove. Spring pocket 46 extends into recess 80 formed on the inner side of groove 78 with compressed spring 34 extending from the bottom of the pocket to the slotted upper wall 82 of the recess. Wall 82 is slotted to accommodate a tool holding spring 34 compressed in pocket 46 during installation of the extractor and spring into the groove 78 and recess 80. Groove 78 extends from wall 79 at the lower end of the shell to step 84 adjacent the upper end of the shell. Spring 34 normally holds extractor 32 in a down position, shown in
With the extractors 32 and metal latch members 36 positioned in one shell, and electronic component 26 and connector 28 positioned in the shell, the second shell is positioned over the first shell, and the two shells are moved together so that the adjacent edges of the shells abut each other. The shells include post and recess latches on their abutting edges. The latches secure the two shells together to form body 18 with the latch extractor assemblies, electronic component and connector held in place in body 18.
The cam end 42 of each extractor 32 has two angled cam surfaces 86. Surfaces 86 are on opposed sides of cam end 42. When grip elements 40 are pulled up, the cam surfaces 86 immediately engage angled follower arms 60 on shift members 50 to immediately flex the adjacent spring arms 48 inwardly and move members 50 from latched positions adjacent the outer side of the module, shown in
Assembled module 10 is latched into base 14 by extending the lower end of the module into recess 12. Lead ends 92 of shift members 50 are piloted into latch openings 68 formed through base wall 74. The angled surfaces of latch arms 62 engage the outer edges of openings 68 so that the members 50 are moved inwardly and arms 48 are flexed inwardly in channels 72 until arms 62 pass through the openings 68 and the flexed spring arms 48 move outwardly to move the latch arms 62 outwardly and under latch surfaces 66 to the latched position shown in
In order to remove a latched module from the base, an operator pulls the undersurfaces of grip elements 40 up a short distance 75 away from base 14. The edges 44 improve the operator's grip of elements 40. The initial upward movement of the grip elements 40 pulls cam ends 42 up from the position of
Upward movement of grip elements 40 simultaneously unlatches the two members 50 from base bottom wall 74 and, with further upward movement, withdraws the unlatched module from the base recess and disengages the connectors.
During unlatching of the module, ribs 88 on cam ends 42 engage the outer walls of grooves 78. The ribs 88 are located between the two laterally spaced cam surfaces 86, in the center of cam end 42, to support the surfaces during inward camming of shift members 50 and prevent twisting of ends 42 and members 50. The ribs 88 also space the outer surfaces 98 of strip bodies 38 from the adjacent walls of grooves 78 to reduce friction during unlatching.
Metal shift member 50, with flat base 56 and upstanding channel sides 58 has a channel-shaped cross-section and is very stiff. The stiffness of the member prevents bending of the member during unlatching when forces exerted by the cam end 42 of extractor 32 on the spaced follower arms 60 are transmitted along the length of the member 50 to move latch arms 62 on the bottom of the channel member laterally inwardly and unlatch the module. During unlatching each member 50 directly transmits unlatching forces along each L-shaped side of member 50 from an arm 60 to an arm 62 to move arms 62 inwardly away from the angled latch surfaces 66 on the bottom of the base without bending. The lateral stiffness of the channel-shaped metal shift member 50 assures that the member is not deformed laterally despite location of arms 60 outside of rib 88.
The cam end 42 of extractor 32 and shift member 50 of latch member 36 are fitted together in alignment with follower arms 60 on member 50 extending into recesses 100 formed in the sides of cam end 42.
Number | Name | Date | Kind |
---|---|---|---|
5199897 | Hashiguchi | Apr 1993 | A |
7175465 | Tsai | Feb 2007 | B1 |
7785149 | Kamata et al. | Aug 2010 | B2 |
8092246 | Santiago | Jan 2012 | B1 |
Number | Date | Country | |
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20140109401 A1 | Apr 2014 | US |
Number | Date | Country | |
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Parent | 13069676 | Mar 2011 | US |
Child | 13365344 | US |