ROTARY SWITCH DEVICE
20190066948 ยท 2019-02-28
Assignee
Inventors
Cpc classification
H01H27/06
ELECTRICITY
H01H1/50
ELECTRICITY
H01H1/2008
ELECTRICITY
International classification
Abstract
A rotary switch device includes a terminal base to which a center portion contact and a fixed contact are fixed, a rotation operation member which is operable to rotate around the center portion contact with respect to the terminal base, a plate-like movable contact member which includes a contact protrusion part and a contact surface and which is held in the rotation operation member so as to short-circuit between the center portion contact and the fixed contact at a conductive rotation position, and a compression coil spring of a barrel type.
Claims
1. A rotary switch device comprising: a terminal base to which a center portion contact and a fixed contact are fixed; a rotation operation member which is operable to rotate around the center portion contact with respect to the terminal base; a plate-like movable contact member which includes a contact protrusion part which is pressed in contact with the center portion contact at one end of one surface of plate thickness surfaces and a contact surface which is in contact with the fixed contact at another end of the one surface of the plate thickness surfaces, and which is held in the rotation operation member so as to short-circuit between the center portion contact and the fixed contact at a conductive rotation position; and a compression coil spring of a barrel type in which one end is supported by a bottom surface of a spring accommodation hole formed in the rotation operation member and another end is pressed in contact with a back surface against the one surface of the plate thickness surfaces forming the contact protrusion part and the contact surface of the movable contact member so as to urge the contact protrusion part and the contact surface to a side of the terminal base.
2. The rotary switch device according to claim 1, wherein a coil inner diameter at a pressing end of the compression coil spring to the movable contact member is smaller than a plate thickness of the movable contact member.
3. The rotary switch device according to claim 1, wherein the bottom surface has a circular shape having substantially the same diameter as a coil outer diameter at a supported end of the compression coil spring or a polygonal shape in which the circular shape is inscribed, and a cone-shaped portion which gradually expands along an opening end is formed in a bottom portion of the spring accommodation hole.
4. The rotary switch device according to claim 3, wherein the spring accommodation hole is formed so as to constrain a maximum coil diameter portion of the compression coil spring and regulate falling of the compression coil spring.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0024]
[0025]
[0026]
[0027]
[0028]
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[0032]
[0033]
DETAILED DESCRIPTION
[0034] A rotary switch device of the present invention configured as an ignition switch used in a steering lock apparatus is illustrated in
[0035] The housing 12 is provided with a lock piece 15 which moves between a lock position which advances and retreats in a direction intersecting a rotation axis of the cam member 14 at a predetermined angle and protrudes into the steering column, and an unlock position which is accommodated in the housing. The lock piece 15 is urged to a direction of the lock position by a compression spring 15a and when the plug 13a of the cylinder lock 13 is rotatively operated from a lock rotation position, the lock piece 15 moves from the lock position where the lock piece 15 is locked to a steering shaft to the unlock position where the lock piece 15 is released, and the steering shaft can be operated.
[0036] In addition, the ignition switch is connected to the housing 12 to cause predetermined terminals to conduct in accordance with the rotation of the plug 13a and a power supply state to an electrical system of a vehicle to be changed. In order to transmit the rotational operation of the plug 13a to the ignition switch, a connecting bar 16 which meshes with the cam member 14 and rotates together with the cam member 14 is disposed in the housing 12.
[0037] As illustrated in
[0038] The center portion contact 1 and each fixed contact 2 are drawn into the switch case 17 via wiring.
[0039] The rotation operation member 4 is formed of an insulating material and the connecting bar 16 and a connecting hole 4a are formed at one end portion. The rotation operation member 4 is urged only when returning from a START position (described later) to an ON position by a torsion spring 19, and moderately rotates at an appropriate connecting operation angle by fitting a click ball 21 urged by a click spring 20 into a groove of an inner wall of the switch cover 18.
[0040] Furthermore, in rotation operation member 4, a plate-like movable contact member 7 having a predetermined plate thickness is held toward the terminal base 3. As illustrated in
[0041] Three of the flat movable contact members 7 formed as described above are used to correspond to the respective fixed contacts 2 which are described later. Silver plating as corrosion resistant conductive processing is applied to the surfaces of the movable contact member 7 and each fixed contact 2 in order to prevent occurrence of corrosion on the contact surface and enhance contact reliability without requiring a self-cleaning operation by a high contact pressure.
[0042] Each movable contact member 7 is held by the rotation operation member 4, and is movable in a direction along a rotation axis (RA) in
[0043] The ignition switch according to the example is formed to output a power supply voltage input from a power supply terminal to three output terminals of +IGN1, +IGN2, and START when the plug 13a is rotatively operated in the order of LOCK, ON, and START positions.
[0044] The sequence described above is realized by short-circuiting the center portion contact 1 disposed at a center portion of the terminal base 3 and the fixed contact 2 disposed around the center portion contact 1 and connected to the +IGN1 terminal, the +IGN2 terminal, and the START terminal by the movable contact member 7 described above.
[0045] The three fixed contacts 2 are respectively disposed at terminal positions of three support portions 22 formed in the terminal base 3. Each fixed contact 2 is formed in a rectangular shape intersecting the support portion 22, the support portion 22 is disposed on two concentric circles with respect to the center of the terminal base 3, and as illustrated in
[0046] The contact surface 6 of the movable contact member 7 in a riding state on the support portion 22 is held at a position higher than a height of a center contact of the contact surface 6 in a state where the contact surface 6 illustrated in
[0047] As described above, in the non-contact state in which the movable contact member 7 is not in contact with the fixed contact 2, the support portion 22 supports the end opposite to the contact protrusion part 5 of the movable contact member 7 and functions as a traveling path when the movable contact member 7 is horizontally and rotatively operated.
[0048] Furthermore, the center portion contact 1, the fixed contact 2, and the support portion 22 are formed in a floating island shape of which a periphery is surrounded by a recessed portion, and propagation of the abrasion powders between the fixed contacts 2, and between the support portion 22 and the fixed contact 2, and coagulated powder of molten splashes due to the arc discharge is regulated.
[0049] When the movable contact member 7 is operated to rotate in the clockwise direction in
[0050] As illustrated in
[0051] If sliding loci of the movable contact members 7 in the center portion contact 1 overlap each other, a chance of wear at an overlapping portion increase. In order to prevent this, as illustrated by chain lines in
[0052] As illustrated in
[0053] As illustrated in
[0054] A spring constant of the compression coil spring 10 is adjusted to exceed the contact pressure so that a contact resistance value with respect for low current conduction is sufficiently low and to be equal to or less than a contact pressure at which peeling of the plating film during sliding occurs in a pressure contact state with the fixed contact 2 or the center portion contact 1 (the state in
[0055] In addition, the spring constant of the compression coil spring 10 of the barrel type is nonlinear because the coil diameter is changed, but a flexure region in the vicinity of the center portion having a large coil diameter substantially exhibiting linearity is used.
[0056] As illustrated in
[0057] As a result, when the movable contact member 7 is pressed, a factor of changing the spring constant such as a loss of an effective number of turns caused by a wire end of the pressing end protruding from the plate thickness surface of the movable contact is eliminated.
[0058] As illustrated in
[0059] In addition, a wall surface of the cone-shaped portion 11 is formed by a conical surface that gradually expands in diameter as going to an opening end, and a diameter of an upper end, that is, the spring accommodation hole 8 is slightly larger than a maximum outer diameter of the compression coil spring 10.
[0060] Furthermore, as illustrated in
[0061] Therefore, in the example, when the compression coil spring 10 is inserted into the spring accommodation hole 8, the compression coil spring 10 is guided by the side wall of the cone-shaped portion 11 and the supported end is guided to the center position of the spring accommodation hole 8 which is set in advance. In this state, since the movement of the maximum diameter portion in a lateral direction is regulated by the side wall of the spring accommodation hole 8, excessive inclination is prevented.
[0062] As a result, positions of an abutting portion of the compression coil spring 10 against the movable contact member 7 and the supporting end to the rotation operation member 4 are constant, so that the deflection amount of the compression coil spring 10, that is, a size of the urging force can be precisely controlled.
[0063] In the example, the pressing force by the compression coil spring 10 is applied to two positions corresponding to the contact protrusion part 5 and the contact surface 6 of the movable contact member 7, so that when an action position of the urging force by each compression coil spring 10 varies, distribution of the contact pressure between the center portion contact 1 and the fixed contact 2 varies, and on the other hand, there is a possibility to cause peeling of the plating film due to an excessive contact pressure and to cause conduction failure or the like due to an insufficient contact pressure.
[0064] On the other hand, in the example, since a load point and a size of load with respect to the movable contact member 7 are constant, it is possible to obtain the contact pressure which is set in advance at the contact.
[0065] In addition, in a case where the compression coil spring 10 is inserted into the spring accommodation hole 8, since the coil diameter of the end portion is smaller than the diameter of the spring accommodation hole 8 and the compression coil spring 10 is guided during insertion, the insertion operation is easily performed.
[0066] Moreover, in the above description, a case where the bottom surface 9 of the spring accommodation hole 8 is formed in the circular shape is illustrated. Alternately, a polygonal shape circumscribing the coil outer diameter at the supporting end of the compression coil spring 10 is provided, or a rib or the like is protruded at a contact point position between a circumscribed polygonal shape and a coil outer periphery from the bottom surface 9 which is larger than in diameter the coil outer diameter, that is, a vertex position of an inscribed polygonal shape, so that the movement of the supporting end can be regulated by a rib tip.
[0067] In addition, in the above description, a case where the portion of the movable contact member 7 pressed by the compression coil spring 10 is formed to be a flat surface is illustrated. However, as illustrated in
REFERENCE SIGNS LIST
[0068] 1 center portion contact [0069] 2 fixed contact [0070] 3 terminal base [0071] 4 rotation operation member [0072] 5 contact protrusion part [0073] 6 contact surface [0074] 7 movable contact member [0075] 8 spring accommodation hole [0076] 9 bottom surface [0077] 10 compression coil spring [0078] 11 cone-shaped portion