Technical Field
[0001] The present invention relates to a rotary electric part, and more particularly relates
to a rotary electric part suitably used as a rotary encoder to detect a rotational
angle, rotational direction, and so forth, of a rotating member, in accordance with
rotation operations thereof, and so forth.
Background Art
[0002] Conventionally, there has been proposed a rotary electric part including a rotating
member rotatably held within a casing, and a contact point mechanism having a moving
contact unit whereby a conducting state and non-conducting state are switched between
terminals, according to a rotated position of the rotating member, so as to switch
between a conducting state and non-conducting state between the terminals in accordance
with a rotating operation as to the rotating member (for example, Japanese Unexamined
Patent Application Publication No.
2009-16247).
[0003] EP 2 479 768 A1 discloses a switch device for an apparatus such as an household appliance, a washing
machine or the like, comprising a containment enclosure, a coding unit for the selection
of operating programs of said apparatus, said coding unit comprising a rotatable switch
body. The switch device comprises a power unit comprising network electrodes, connected
to the electricity network for powering said apparatus, and movable power electrodes,
said power unit also comprises an activating lever interacting with said switch body
and with said power electrodes. Said activating lever is capable to assume a resting
position and an operating position following the rotation of said switch body, in
said resting position said power electrodes are not connected with said network electrodes,
and in said operating position said power electrodes are connected with said network
electrodes for supplying said apparatus. The switch device comprises means for controlling
said activating lever controlled by an electrical signal and suitable to bring said
activating lever from said operating position to said resting position.
DE10 2004 026 099 A1 discloses a rotary switch according to the preamble of claim 1.
Summary of Invention
Technical Problem
[0004] However, the above-described rotary electric part cannot switch a conducting state
between terminals to a non-conducting state unless the rotating member is rotated.
Accordingly, in a case of using this rotary electric part as a power switch for a
washing machine or the like, for example, there may be a situation occurring where
current such as standby current continues to be supplied even after washing has ended.
[0005] The present invention has been made in light of this state, and accordingly it is
an object thereof to provide a rotary electric part which can switch a conducting
state between terminals to a non-conducting state without rotating the rotating member.
Solution to Problem
[0006] A rotary electric part according to the present invention includes: a casing from
which a first terminal is exposed; a rotating member rotatably held within the casing;
a second terminal having a movable contact point unit capable of contacting and separating
from the first terminal in conjunction with rotating actions of the rotating member;
and rotation detecting means that detect rotation of the rotating member; in which
a conducting state and a non-conducting state, between the first terminal and the
second terminal, is switched, wherein a moving member is provided between the rotating
member and the movable contact point unit, the moving member moving in a direction
intersecting a rotational axis line direction of the rotating member in conjunction
with rotation of the rotating member, and bringing the movable contact point unit
into contact with the first terminal, and further, recovery mechanism is provided
to disengage contact between the movable contact point unit and the first terminal
and restore the first terminal and the second terminal in a conducting state to a
non-conducting state, the recovery mechanism including a solenoid, and a driving member
which is driven by the solenoid and returns the moving member.
[0007] According to this rotary electric part, the first terminal and second terminal in
a conducting state can be returned to a non-conducting state by disengaging the contact
between the contact point unit and the first terminal, by the recovery mechanism including
the driving member to return the solenoid and moving member. Accordingly, by controlling
power to the solenoid, the conducting state between the first terminal and the second
terminal can be switched to a non-conducting state without necessitating rotation
by the rotating member. As a result, a state can be avoided where standby current
continues to be supplied in a case of applying the rotary electric part to a power
switch of a washing machine or the like, thereby enabling demand for reduction in
power consumption to be met. Also, the moving member is disposed between the rotating
member and movable contact point unit, so a situation where the rotation of the rotating
member is directly transmitted to the contact point unit can be prevented, and accordingly
the contact stability of the contact point unit as to the first terminal can be improved.
[0008] In the present invention, in the rotary electric part, the moving member further
includes a base, and a pressing portion protruding further toward the movable contact
point unit side than the base, in which the movable contact point unit has a protruding
portion protruding toward the side of the moving member, wherein, in a state of the
first terminal and second terminal being in a conducting state, the pressing portion
is in contact with the protruding portion and presses the movable contact point unit
toward the first terminal side. In this case, in a case where the first terminal and
second terminal are in a conducting state, the movable contact point unit is in contact
with the protruding portion by the pressing portion provided on the moving member
so as to be pressed toward the side of the first terminal, so switching of the first
terminal and the second terminal to a conducting state can be performed in a stable
manner, without having a complicated configuration.
[0009] Particularly, in the rotary electric part, the protruding portion is preferably pressed
toward the first terminal side by the pressing portion, in conjunction with the movement
of the moving member in one direction, with a protrusion-shaped holding portion which
holds the protruding portion of the movable contact point unit being provided on an
end of the pressing portion in the one direction. In this case, the protrusion of
the movable contact point unit is held in a stable manner by the holding portion provided
on the pressing portion, so trouble such as the protruding portion moving away from
the pressing portion due to vibration or the like, and the conducting state of the
first terminal and the second terminal switching to a non-conducting state, can be
suppressed.
[0010] Also, in the rotary electric part, preferably, a plurality of first cam portions
made up of a plurality of recessed portions and protruding portions are provided on
the rotating member in the circumferential direction, and, in conjunction with rotation
of the rotating member, the protruding portions of the first cam portions engage a
first engaging portion provided on the moving member to move the moving member in
a direction intersecting the rotational axis line direction of the rotating member,
and also to bring the moveable contact point unit into contact with the first terminal.
In this case, the multiple protruding portions provided in the circumferential direction
of the rotating member engage the first engaging member provided on the moving member,
and moves the moving member in a direction intersecting the rotational axis line direction
of the rotating member. Accordingly the moving member can be moved to multiple positions
in conjunction with the rotations of the rotating member, so even in a case where
the first terminal and the second terminal have been switched to a non-conducting
state at a position other than the initial position by the recovery mechanism, these
can be returned to a conducting state in a short period (by few rotational operations
of the rotating member).
[0011] Further, in the rotary electric part, preferably, a holding member movably holding
the moving member is provided facing the moving member, and an opening is formed in
the holding member to expose the first cam portions of the rotating member. In this
case, the moving member is held so as to be capable of sliding movement by the holding
member, so movement of the moving member in a direction intersecting the axial line
direction of the rotating member can be performed smoothly.
[0012] Further, in the rotary electric part, preferably, the rotating member accommodates
an engaging member, elastically pressed outwards in the radial direction of the rotating
member, and the holding member is provided with a plurality of second cam portions
made up of multiple recessed portions and protruding portions, with which the engaging
member is engaged and disengaged, and in a case where the engaging member is engaged
with a recessed portion of the second cam portion, the first engaging portion is facing
a recessed portion of the first cam portions. In this case, in a case where the engaging
member has engaged with a recessed portion of the second cam portion and the rotating
member is at a stable position, the first engaging portion of the moving member faces
a recessed portion of the first cam portions, so at the time of the moving member
being returned by the driving member due to the driving by the solenoid, a situation
can be prevented where movement of the moving member is impeded due to the first engaging
member coming into contact with a part of the rotating member (protruding portion
of the first cam portions). Accordingly, the moving member can return in a sure manner
due to the recovery mechanism, and the first terminal and second terminal can be switched
to a non-conducting state in a sure manner.
[0013] Further, in the rotary electric part, preferably, the moving member is provided with
a second engaging portion at a position facing the first engaging portion across the
rotational axis line of the rotating member, and the rotating member is provided with
a third cam portion that engages the second engaging portion in conjunction with rotation
of the rotating member, and returns the moving member. In this case, the third cam
portion engages with the second engaging portion provided to the moving member and
returns the moving member, so in conjunction with rotation of the rotating member,
the first terminal and second terminal can be switched to a non-conducting state in
a sure manner by an operator making a rotating operation of the rotating member as
to the initial position.
[0014] Further, in the rotary electric part, preferably, one pair each of the first terminal
and second terminal are provided, the movable contact point units provided the pair
of second terminals are disposed arrayed across the rotational axis line of the rotating
member, the moving member is provided with a pair of the pressing portions corresponding
to the movable contact point units of the second terminals, and a part situated between
the pair of the pressing portions is pressed by the driving member. In this case,
pressing force from the driving member is received at the part situated between the
pair of pressing portions which press the pair of movable contact point units, so
the moving member can be smoothly returned, and the first terminal and second terminal
can be switched to a non-conducting state in a stable manner.
[0015] Further, in the rotary electric part, preferably, the solenoid has a plunger capable
of reciprocal movement in the axial line direction of the rotating member, the driving
member has a shaft portion, a pressing portion that presses the moving member, and
an engaging portion that engages the plunger, and the shaft portion is turnably held
by the casing. In this case, the shaft portion of the driving member is turnably held
by the casing, and the plunger is engaged by the engaging portion, so the pressing
portion of the driving member can be smoothly moved in accordance with driving of
the solenoid, and the moving member can be returned to the initial position in a sure
manner. Advantageous Effects of Invention
[0016] According to the present invention, a rotary electric part can be provided which
can switch a conducting state between terminals to a non-conducting state without
necessitating rotation of a rotating member. Brief Description of Drawings
[0017]
[Fig. 1] Fig. 1 is a perspective diagram illustrating an external view of a rotary
electric part according to the present embodiment.
[Fig. 2] Fig. 2 is a perspective view where a part of the rotary electric part according
to the present embodiment has been separated.
[Fig. 3] Fig. 3 is a disassembled perspective view of a lower case of the rotary electric
part according to the present embodiment, and structural members accommodated in the
lower part.
[Fig. 4] Fig. 4 is a disassembled perspective view of the lower case of the rotary
electric part according to the present embodiment, and structural members accommodated
in the lower part.
[Fig. 5] Fig. 5 is an explanatory diagram of a rotating member included in the rotary
electric part according to the present embodiment.
[Fig. 6] Fig. 6 is an explanatory diagram of a slider included in the rotary electric
part according to the present embodiment.
[Fig. 7] Fig. 7 is an explanatory diagram of positional relationship between the rotating
member, slider, and a holder, included in the rotary electric part according to the
present embodiment.
[Fig. 8] Fig. 8 is a disassembled perspective view of an upper case of the rotary
electric part according to the present embodiment, a cover, and structural members
accommodated therein.
[Fig. 9] Fig. 9 is a disassembled perspective view of the upper case of the rotary
electric part according to the present embodiment, a cover, and structural members
accommodated therein.
[Fig. 10] Fig. 10 is an explanatory diagram of the configuration of the inner side
(lower face side) of the upper case included in the rotary electric part according
to the present embodiment.
[Fig. 11] Fig. 11 is a perspective view for describing structural members around a
board included in the rotary electric part according to the present embodiment.
[Fig. 12] Fig. 12 is a perspective view for describing structural members around a
board included in the rotary electric part according to the present embodiment.
[Fig. 13] Fig. 13 is a cross-sectional view illustrating an assembled state of the
rotary electric part according to the present embodiment.
[Fig. 14] Fig. 14 is a perspective view illustrating an assembled state of the rotary
electric part according to the present embodiment.
[Fig. 15] Fig. 15 is a side view illustrating an assembled state of the rotary electric
part according to the present embodiment.
[Fig. 16] Fig. 16 is a perspective view of the rotary electric part according to the
present embodiment at the time of a manual on operation.
[Fig. 17] Fig. 17 is a side view of the rotary electric part according to the present
embodiment at the time of a manual on operation.
[Fig. 18] Fig. 18 is a perspective view illustrating the state of the rotary electric
part according to the present embodiment immediately prior to a manual off operation.
[Fig. 19] Fig. 19 is a diagram illustrating an example of a circuit diagram pertaining
to an auto off function which the rotary electric part according to the present embodiment
has.
[Fig. 20] Fig. 20 is a perspective view of the rotary electric part according to the
present embodiment at the time of an auto off operation.
[Fig. 21] Fig. 21 is a side view of the rotary electric part according to the present
embodiment at the time of an auto off operation.
[Fig. 22] Fig. 22 is a perspective view of the rotary electric part according to the
present embodiment after an auto off operation.
[Fig. 23] Fig. 23 is a side view of the rotary electric part according to the present
embodiment after an auto off operation.
[Fig. 24] Fig. 24 is a perspective view of the rotary electric part according to the
present embodiment at the time of a manual on operation after an auto off operation.
Description of Embodiments
[0018] An embodiment of the present invention will be described below in detail with reference
to the attached drawings. The rotary electric power according to the present invention
is suitably used for detection of rotating operations, using an operating dial for
a washing machine or the like, for example, but the objects of application are not
restricted thusly, and modifications may be made as appropriate. For example, it may
be applied to detection of rotating operations using an operating dial for a microwave
oven.
[0019] Fig. 1 is a perspective diagram illustrating an external view of a rotary electric
part 1 according to an embodiment of the present invention. Note that hereinafter,
for sake of brevity of description, the lower right direction in Fig. 1 will be called
"front side of rotary electric part 1" or simply "front side", and the upper left
side in the same drawing will be called "back side of rotary electric part 1" or simply
"back side". Also hereinafter, for sake of brevity of description, the upper side
in Fig. 1 will be called "upper side of rotary electric part 1" or simply "upper side",
and the lower side in the same drawing will be called "lower side of rotary electric
part 1" or simply "lower side".
[0020] As illustrated in Fig. 1, the rotary electric part 1 according to the present embodiment
is integrally configured including a lower case 2, an upper case 3 disposed at the
upper side of the lower case 2, and a cover 4 disposed at the upper side of a back
side portion of the upper case 3. The lower case 2, upper case 3, and cover 4 are
integrated in a state where various types of structural members are accommodated in
space formed between the lower case 2 and the upper case 3, and the upper case 3 and
the cover 4, thereby making of the rotary electric part 1. The lower case 2, upper
case 3, and cover 4 configure the casing of the rotary electric part 1.
[0021] Fig. 2 is a perspective view where a part of the rotary electric part 1 according
to the present embodiment has been separated. Fig. 2 illustrates a state where the
rotary electric part 1 according to the present embodiment has been separated into
the lower case 2 and structural members accommodated in the lower case 2, and the
upper case 3 and cover 4 and structural members accommodated therein.
[0022] The inner space within the lower case 2 accommodates a rotating member 6 rotatably
held by the casing such that the vertical direction of the rotary electric part 1
is the rotational axis line direction, a slider 9 disposed above the rotating member
6 so as to be moveable in the front-back direction of the rotary electric part 1 (a
direction intersecting the rotational axis line direction of the rotating member 6)
in conjunction with the rotational motion thereof, and a holder 10 which holds the
slider 9 so as to be movable in the front-back direction of the rotary electric part
1, which will be described in detail later. The inner space of the lower case 2 accommodates
a pair of movable contact point units 1102 extending in the front-back direction,
and second terminals 11 integrally provided with these movable contact point units
1102.
[0023] The inner space of the upper case 3 accommodates a pair of first terminals 13 disposed
such that a part thereof is exposed at the upper side, and a lever 14 configuring
a part of a recovery mechanism which moves the slider 9 within the lower case 2 by
sliding, under certain conditions (not illustrated in Fig. 2, see Fig. 8 or Fig. 9).
Also, a solenoid 15 configuring a part of the above-described recovery mechanism is
accommodated in the inner space of the cover 4 (not illustrated in Fig. 2, see Fig.
8 or Fig. 9). A board 5, formed of a printed board where the solenoid 15 is mounted,
is disposed between the upper case 3 and cover 4. The board 5 is sandwiched between
the upper end portion of the upper case 3 and the lower end portion of the cover 4.
The solenoid 15 accommodated in the cover 4 is mounted on this board 5.
[0024] A connecting pin 16, extending in the vertical direction for electrical connection
between the board 5 and an unshown board (hereinafter referred to as "parts mounting
board") to which the rotary electric part 1 is mounted, is disposed to the side of
the lower case 2 and upper case 3. The connecting pin 16 is held by a holding portion
207 provided to the side face of the lower case 2, with the upper end portion being
connected to the board 5 by soldering or the like, and the lower end portion being
connected to the parts mounting board by soldering or the like. This connecting pin
16 forms a supply path for drive instruction signals supplied to the solenoid 15 at
the time of executing the auto off function of the rotary electric part 1, which will
be described later.
[0025] Now, the structural members of the rotary electric part 1 according to the present
embodiment will be described. First, the lower case 2 of the rotary electric part
1 and structural members accommodated in the lower case 2 according to the present
embodiment will be described. Fig. 3 and Fig. 4 are disassembled perspective views
of the lower case 2 of the rotary electric part 1 and structural members accommodated
in the lower case 2 according to the present embodiment. Fig. 3 illustrates the lower
case 2 and the structural members accommodated in the lower case 2 from above, and
Fig. 4 illustrates the lower case 2 and the structural members accommodated in the
lower case 2 from below.
[0026] As illustrated in Fig. 3 and Fig. 4, the lower case 2 accommodates a rotating member
6 which accepts rotation operations by an operator, a wafer 7 is integrally formed
with this rotating member 6 and having a conducting pattern 702 formed on the lower
face thereof, a sliding member 8 disposed facing the lower face of this wafer 7, the
slider 9 which is disposed between the rotating member 6 and the movable contact point
units 1102 so as to slide in the front-back direction of the rotary electric part
1, a holder 10 which slidably holds the slider 9, and the second terminals 11 having
the movable contact point units 1102 capable of moving toward and away from the first
terminals 13 in conjunction with the rotational action of the rotating member 6.
[0027] The lower case 2 is formed of an insulating resin material for example, and has a
formed generally opened toward the upper side. The lower case 2 has a base face portion
201 configured as a generally square horizontal plane, and a side face portion 202
extending toward the upper side from the outer edge portion of the base face portion
201. A circular opening 203 is formed at the middle of the base face portion 201.
A pair of supporting wall portions 204 are formed facing a side face portion 202a
disposed toward the back side. These supporting wall portions 204 are erected from
the base face portion 201 at a position at a certain distance from the inner wall
face of the side face portion 202a.
[0028] Engaging pieces 205 and 206, which respectively engage later-described engaging arms
309 and 310 of the upper case 3, are provided on the outer wall faces of a pair of
side wall portions 202b disposed facing the sides and the outer wall face of the side
face portion 202a. Further, a holding portion 207 is provided extending vertically
at a position toward the back side of the side wall portions 202b disposed to the
left side. A through hole passing through in the vertical direction is formed in this
holding portion 207, this through hole holding the connecting pin 16 which will be
described later. Multiple protruding pieces 208 (three in the present embodiment)
are provided on the lower face of the base face portion 201, for positioning as to
the parts mounting board. Also, a supporting piece 209 which supports the holder 10
is provided nearby a corner portion of the base face portion 201.
[0029] The sliding member 8 includes, for example, a base portion 801 formed of an insulating
resin material, and multiple sliding terminals 802 provided on the base portion 801.
The sliding terminals 802 are formed by insert molding at the time of manufacturing
the base portion 801, for example. The sliding member 8 is accommodated in the space
within the lower case 2, and is fixed to the base face portion 201. For example, the
sliding member 8 is fixed to the base face portion 201 by swaging a protruding piece
or the like provided protruding downwards from the lower face of the base portion
801.
[0030] The base portion 801 includes a slender portion 801a extending in the left-right
direction, and a frame-shaped portion 801b extending toward the back side from around
the middle of the slender portion 801a. A generally rectangular opening 801c is provided
at the middle of the frame-shaped portion 802b. The sliding terminals 802 include
sliding portions 802a extending slightly upwards from the back side end face of the
slender portion 801a, and output portions 802b bent toward the lower side from the
front side end face of the slender portions 801a or the inner end face of the frame-shaped
portion 801b. The tips of the output portions 802b are guided to the lower side of
the lower case 2 in a state fixed to the base face portion 201.
[0031] The rotating member 6 is formed of an insulating resin material, and includes a disc-shaped
portion 601 having a general disc shape, a cylindrical portion 602 which extends to
the upper side at the middle portion of the disc-shaped portion 601, a holding portion
603 provided extending toward the lower side at the middle portion of the disc-shaped
portion 601, and a flange portion 604 provided extending to the sides from the lower
end portion of the disc-shaped portion 601. A recessed portion 601a is formed on the
perimeter face of the disc-shaped portion 601, as an accommodating recessed portion
disposed toward the center of the disc-shaped portion 601 (see Fig. 4).
[0032] Accommodated within the recessed portion 601a is a steel ball 1201 and a coil spring
1202 to generate a clicking sensation accompanying rotating operation of the rotating
member 6. Note that the steel ball 1201 and coil spring 1202 configure part of a moderation
mechanism. The steel ball 1201 forms an engaging member. Multiple crush ribs 603a
are provided on the perimeter face of the holding portion 603, to hold the waver 7
(see Fig. 5A). Detailed configuration of the rotating member 6 will be described later.
[0033] The wafer 7 is configured from an insulating board for example, and has a general
disc shape. A circular opening 701 is formed at the middle of the wafer 7. Multiple
conducting patterns 702 (702a, 702b) are provided concentrically around the opening
701 on the lower face of the wafer 7. These conducting patterns 702 configure rotation
detecting means to detect rotation (more specifically, rotation angle and rotation
position) of the rotating member 6, along with the sliding terminal 802 of the sliding
member 8. The wafer 7 is integral with the lower face of the flange portion 604 of
the rotating member 6. The wafer 7 is press-fit at the time of accommodating the holding
portion 603 of the rotating member 6 at the opening 701, by crushing the crush ribs
603a disposed on the perimeter face of the holding portion 603, and is fixed to the
lower face of the flange portion 604.
[0034] The holder 10 forms a holding member, and is disposed facing the slider 9. The holder
10 is formed of an insulating resin material for example, and is configured as a frame-shaped
member 1002 in which a generally circular opening 1001 is formed. An upper face portion
1003 formed of a smooth face is provided to a part of a pair of side walls 1002a and
a back wall 1002b making up the frame-shaped member 1002. Guide pieces 1004a and 1004b
are disposed on the upper faces of the pair of side walls 1002a, distanced from each
other in the front-back direction, to guide the slider 9. A pair of guide pieces 1005
extending in the front-back direction are disposed on the upper face of a front wall
1002c, on the inner side of the guide pieces 1004a. A recessed portion 1006 which
is recessed downwards is provided between the guide pieces 1005. This recessed portion
1006 functions as an opening from which later-described cam portions 613 of the rotating
member 6 are exposed.
[0035] A lower face 1007 formed of a smooth face is provided to the lower face of the pair
of side walls 1002a, back wall 1002b, and front wall 1002c. Click cams 1008 made up
of multiple protrusions and recesses are disposed on the inner wall face of the pair
of side walls 1002a. These click cams 1008 form a second cam portion. The click cams
1008 make up the moderation mechanism along with the steel ball 1201 and coil spring
1202. Also, a recessed portion 1009 is provided on the inner wall face of the back
wall 1002c. This recessed portion 1009 serves to hold the steel ball 1201 accommodated
in the recessed portion 601a of the rotating member 6 in a state where the rotary
electric part 1 has not been operated (initial state).
[0036] The click cams 1008 serve to situate the rotating member 6 at a stable position by
engaging the steel ball 1201 accommodated in the recessed portion 601a. Specifically,
the rotating member 6 is situated at a stable position by engaging the steel ball
1201 resting in a recessed portion making up the click cams 1008. The cam portions
613 formed on the disc-shaped portion 601 have a recessed portion 613b thereof situated
at a position corresponding to an engaging piece 909 of the slider 9, in a state in
which the rotating member 6 is situated at a stable position, which will be described
in detail later. That is to say, in a case where the steel ball 1201 has engaged a
recessed portion of the click cams 1008, the engaging piece 909 of the slider 9 faces
a recessed portion 613b of the cam portions 613.
[0037] The slider 9 makes up a moving member, and is formed of an insulating resin material,
for example. The slider 9 includes a base 901 having a general plate shape, a guided
portion 902 provided to the front side of this base 901, a pair of pressing portions
903 provided to the back side of the base 901, and a contacting portion 904 disposed
between the pressing portions 903 toward the back side. A generally circular opening
901a is provided to the base 901. A lower face portion 905, formed of a smooth face
is provided to the lower face of the slider 9.
[0038] A pair of guided pieces 902a, guided by the guide pieces 1004a provided on the holder
10, are provided to the side faces of the guided portion 902. A pair of guided grooves
902b, which are guided by guide pieces 1005 provided on the holder 10, are provided
to the lower face of the guided portion 902. The pair of pressing portions 903 are
provided protruding further upward than the upper face of the base 901. These pressing
portions 903 press upward the movable contact point units 1102 of the later-described
second terminals 11, in conjunction with the sliding movement of the slider 9. The
contacting portion 904 has a contact face 904a intersecting (orthogonally in the present
embodiment) the upper face of the base 901. The contacting portion 904 receives pressing
of a pressing portion 1402 of the later-described lever 14 on the contact face 904a,
and transmits the driving force of the lever 14 to the slider 9. The detailed configuration
of the slider 9 will be described later.
[0039] The second terminals 11 are formed by blanking and bending processing of a metal
plate having electroconductivity. The second terminals 11 have a terminal portion
1101 generally extending in the vertical direction, and the movable contact point
unit 1102 bent around the middle portion of the terminal portion 1101, and extending
toward the front side. The terminal portions 1101 have at the lower end thereof a
pair of inserting portions 1101a to be inserted into the lower case 2, a base 1101b
extending vertically slightly behind the inserting portions 1101a, and inserting portions
1101c, provided extending upwards from the middle of the upper end of the base 1101b,
and inserted into the board 5.
[0040] The movable contact point units 1102 are formed by being bent forward from the upper
end of the bases 1101b. The movable contact point unit 1102 have a linking portion
1102a linked to the upper end of the base 1101b, a tongue piece 1102b provided at
the tip of the linking portion 1102a, and a contact portion 1102c provided near the
tip of the tongue piece 1102b. A protruding portion 1102d which protrudes downwards
is provided near the tip of the linking portion 1102a. Note that the rotary electric
part 1 according to the present embodiment has a pair of these second terminals 11,
distanced from each other in the left-right direction. Also, the movable contact point
units 1102 have elasticity.
[0041] Now, the configuration of the rotating member 6 and slider 9 which the rotary electric
part 1 according to the present embodiment has, will be described. Fig. 5 is an explanatory
diagram of the rotating member 6 which the rotary electric part 1 according to the
present embodiment has. Fig. 5 illustrates a frontal view (A of the drawing), a rear
view (B of the drawing), and top view (C of the drawing) of the rotating member 6
in the initial state. The lower side of Fig. 5C corresponds to the front side of the
rotary electric part 1, and the upper side corresponds to the back side of the rotary
electric part 1.
[0042] The rotating member 6 has a large-diameter portion 611 and a small-diameter portion
612 (see Fig. 5A and Fig. 5B). The large-diameter portion 611 is disposed to the upper
side of the flange portion 604. The small-diameter portion 612 is disposed to the
upper side of the large-diameter portion 611, except for the front side and back side
portions of the rotating member 6. Multiple cam portions 613 made up of multiple protruding
portions 613a and recessed portions 613b are formed on the perimeter of the small-diameter
portion 612 in the circumferential direction (see Fig. 5C). These cam portions 613
make up of first cam portions. At portions where the small-diameter portion 612 is
not provided, the large-diameter portion 611 (611a and 611b) is provided to the same
position as the upper end of the cam portions 613.
[0043] The large-diameter portion 611a provided to the front side portion of the rotating
member 6 is provided with a recessed portion 614 (see Fig. 5A and Fig. 5C). The engaging
piece 909 of the slider 9, described later, is stored in this recessed portion 614
in the initial state. On the other hand, the large-diameter portion 611b provided
to the back side portion of the rotating member 6 has the above-described recessed
portion 601a formed at the lower end thereof (see Fig. 5B). The steel ball 1201 accommodated
in this recessed portion 601a is pressed outwards in the radial direction of the disc-shaped
portion 601, by the pressing force of the coil spring 1202.
[0044] A rib 615 is provided at a position corresponding to the recessed portion 601a formed
on the large-diameter portion 611b, at the back side of the cylindrical portion 602.
This rib 615 makes up a third cam portion. The rib 615 protrudes to the back side
from the perimeter of the cylindrical portion 602. The rib 615 is configured so as
to be capable of coming into contact with a later-described engaging piece 906 of
the slider 9, in conjunction with rotating action of the rotating member 6.
[0045] Fig. 6 is an explanatory diagram of the slider 9 included in the rotary electric
part 1 according to the present embodiment. Fig. 6 illustrates an upper view (A of
the drawing), a side view (B in the drawing), and a bottom view (C in the drawing)
of the slider 9. The lower side of Fig. 6 corresponds to the front side of the rotary
electric part 1, and the upper side corresponds to the back side of the rotary electric
part 1.
[0046] As illustrated in Fig. 6A, the guided portion 902 is formed narrower than the base
901. A pair of rib-shaped portions 901b are formed on the upper face of the front
end of the base 901, protruding slightly upwards (see Fig. 6B). Also, a rib-shaped
portion 901c is provided on the upper face of the base 901 so as to extend to extend
to the back side, intersecting each of the rib-shaped portions 901b. These rib-shaped
portions 901b and the rib-shaped portion 901c are used to reinforce the slider 9.
The rib-shaped portions 901b also contribute to reduced contact noise as to the movable
contact point units 1102, which occurs when disengaging the pressing state.
[0047] The portion of the base 901 defining the opening 901a that is toward the back side
has provided thereto an engaging piece 906 which protrudes toward the front side and
serves as a second engaging portion (see Fig. 6A and Fig. 6C). Note that this engaging
piece 906 making up the second engaging portion has a tip with an acute angle (e.g.,
60°), and is disposed at a position capable of engaging the aforementioned rib 615
of the rotating member 6 in the initial state.
[0048] Further, protruding holding portions 903a to hold the protruding portions 1102d of
the movable contact point units 1102 are provided on the upper faces of the pressing
portions 903 toward the front side. The holding portions 903a serve to hold the protruding
portions 1102d when the slider 9 moves forward in conjunction with the rotation of
the rotating member 6 and the movable contact point units 1102 are lifted up, for
example. Guided portions 907 are provided on the back face of the pressing portions
903. The guided portions 907 are formed having a plate thickness generally the same
as that of the base 901, and are guided by the guide pieces 1004b of the holder 10.
[0049] At the lower face of the guided portion 902, a protruding portion 908 is provided
between the pair of guided grooves 902b (see Fig. 6C). The protruding portion 908
is provided extending in the left-right direction. An engaging piece 909 is provided
at the middle of the lower face of the protruding portion 908. This engaging piece
909 forms a first engaging portion. The engaging piece 909 has a tip with an acute
angle (e.g., 30°), and is formed so as to be capable of engaging/disengaging the cam
portions 613 (protruding portions 613a and recessed portions 613b) of the rotating
member 6, and at a position so as to be capable of being accommodated in the recessed
portion 614.
[0050] Fig. 7 is an explanatory diagram of the positional relationship between the rotating
member 6, slider 9, and holder 10 of the rotary electric part 1 according to the present
embodiment. Note that Fig. 7 illustrates a state of the rotating member 6, slider
9, and holder 10 where the rotary electric part 1 has not been operated (initial state).
Fig. 7 also illustrates the rotating member 6 with the wafer 7 fixed to the flange
portion 604.
[0051] As illustrated in Fig. 7, the slider 9 has the guided pieces 902a and guided portions
907 held by the holder 10 in a state of being on the inner sides of the respective
guide pieces 1004a and 1004b of the holder 10. In this case, the slider 9 accommodates
the guide pieces 1005 of the holder 10 in the guided grooves 902b, and is disposed
loaded on the upper face portion 1003 of the holder 10 at the lower face portion 905.
The engaging piece 909 provided to the guided portion 902 is situated at a position
corresponding to the recessed portion 1006 of the holder 10. Accordingly, even in
a case where the slider 9 moves by sliding in the front-back direction in conjunction
with the rotation of the rotating member 6, the engaging piece 909 does not come into
contact with the holder 10.
[0052] The rotating member 6 is disposed in a state where the cylindrical portion 602 passes
through the opening 1001 of the holder 10 and the opening 901a of the slider 9. Note
that the holder 10 has the lower face thereof supported by the supporting piece 209
of the lower case 2, and is disposed on the lower case 2 in a non-contacting state
with the flange portion 604 of the rotating member 6 and so forth. Accordingly, the
holder 10 does not impede rotating actions of the rotating member 6.
[0053] In the initial state, the slider 9 is disposed at a position on the holder 10 farthest
to the back side. In this state, the engaging piece 909 of the slider 9 is in a state
accommodated in the recessed portion 614 formed in the disc-shaped portion 601 of
the rotating member 6. The engaging piece 906 of the slider 9 is disposed such that
the tip (front end) thereof faces the tip (back end) of the rib 615 provided on the
cylindrical portion 602 of the rotating member 6. Note that the guide pieces 1004b
of the holder 10 function as stoppers which come into contact with the rear faces
of the pressing portions 903 of the slider 9.
[0054] Next, description will be made regarding upper case 3 and cover 4 of the rotary electric
part 1 according to the present embodiment, and the structural members accommodated
therein. Fig. 8 and Fig. 9 are disassembled perspective views of the upper case 3
and cover 4 of the rotary electric part 1 according to the present embodiment, and
the structural members accommodated therein. Note that Fig. 8 illustrates the upper
case 3 and cover 4 and the structural members accommodated therein from the upper
side, and Fig. 9 illustrates the upper case 3 and cover 4 and the structural members
accommodated therein from the lower side.
[0055] As illustrated in Fig. 8 and Fig. 9, the upper case 3 accommodates the pair of first
terminals 13 which can conduct with the second terminals 11, and the lever 14. The
cover 4 accommodates the solenoid 15. The board 5 is disposed between the upper case
3 and cover 4. The board 5 is placed on a portion of the upper case 3 at the back
side, and the cover 4 is placed thereupon. The cover 4 is fixed to the upper case
3 with the board 5 sandwiched therebetween, whereby the board 5 is also in a state
fixed to the upper case 3.
[0056] The upper case 3 is formed of an insulating resin material for example, and has a
shape generally opened downwards. The upper case 3 has a ceiling portion 301 having
a rectangular shape in plane view, and a side face portion 302 provided extending
downwards from the edges of the ceiling portion 301. The ceiling portion 301 is provided
with a terminal placement portion 303 provided to the front side, and a board placement
portion 304 provided to the back side. The board placement portion 304 is disposed
at a higher position than the terminal placement portion 303.
[0057] A terminal accommodating portion 305 having a generally rectangular shape in plane
view is provided at the middle of the terminal placement portion 303. The terminal
accommodating portion 305 is provided extending upwards from the terminal placement
portion 303 and has a configuration opening upwards. The upper ends of the first terminals
13 (later-described terminal portions 1302) inserted from the lower side are accommodated
within the terminal accommodating portion 305. Note that the upper ends of the first
terminals 13 are accommodated within the terminal accommodating portion 305, and do
not protrude farther upwards than the terminal accommodating portion 305.
[0058] A supporting face 306 formed of a smooth face supporting the lower face of the board
5 is provided at the middle of the board placement portion 304. A circular opening
306a is formed at the middle of the supporting face 306. A later-described plunger
1503 of the solenoid 15 is inserted through this opening 306a. A pair of fixing walls
307 are provided protruding upwards at the back end of the supporting face 306. These
fixing walls 307 are used to position the board 5 placed on the supporting face 306.
A pair of engaging arms 308 which extend upwards are provided at the front end of
the board placement portion 304. These engaging arms 308 serve to engage later-described
engaging pieces 403 of the cover 4 so that the cover 4 is fixed to the upper case
3. These engaging arms 308 are configured so as to be capable of snap joining to the
engaging pieces 403.
[0059] Engaging arms 309 are disposed extending downwards from the front end of side face
portions 302a disposed on the left and right in directions facing each other. On the
other hand, an engaging arm 310 is disposed extending downwards from the middle of
a side face portion 302b situated at the back side. These engaging arms 309 and 310
serve to engage engaging pieces 205 and 206 of the lower case 2 respectively, so as
to fix the upper case 3 to the lower case 2. These engaging arms 309 and 310 are configured
so as to be capable of snap joining to the engaging pieces 205 and 206.
[0060] A pair of extending portions 311 are disposed to the side of the engaging arm 310
extending downwards from the side face portion 302b (see Fig. 9). These extending
portions 311 serve to enter between the side face portion 202a and the supporting
wall portions 204 of the lower case 2 so as to restrict movement of the second terminals
11. Engaging pieces 312 and 313 are provided on the outer wall face at the back side
of the side face portion 302a and the outer wall face at the left side of the side
face portion 302b, to engage later-described engaging arms 404 and 405 of the cover
4. Moreover, a slit 314 is formed extending vertically, at the front side of the engaging
piece 312 of the side face portion 302a. This slit 314 accommodates a part of the
later-described connecting pin 16. The configuration of the inner side (lower face
side) of the upper case 3 will be described later.
[0061] The pair of first terminals 13 are each formed by blanking and bending processing
of a metal plate having electroconductivity. The first terminals 13 have a base 1301
having a generally flat plate shape, and a terminal portion 1302 provided extending
upwards from a part of the edge of the base 1301. A contact point portion 1303 is
provided on the end of the base 1301. The first terminals 13 have the terminal portions
1302 thereof inserted through unshown slits formed at the lower face of the terminal
accommodating portion 305 of the upper case 3 so as to be fixed.
[0062] The lever 14 makes up a driving member, and is formed of an insulating resin material,
for example. The lever 14 includes a shaft portion 1401 extending on the left-right
direction, a pressing portion 1402 extending downwards from the shaft portion 1401,
and an engaging portion 1403 extending obliquely downwards toward the back side form
the shaft portion 1401. The shaft portion 1401 of the lever 14 is supported by a later-described
supporting piece 316 of the upper case 3, which will be described later in more detail.
The pressing portion 1402 is situated at a position capable of coming into contact
with the contact face 904a of the contacting portion 904 of the slider 9, in a state
of being supported by the upper case 3. The engaging portion 1403 is situated at a
position capable of engaging a part of the later-described plunger 1503 of the solenoid
15, in a state of being supported by the upper case 3.
[0063] The solenoid 15 has a case 1502 where a coil 1501 is accommodated, the plunger 1503
disposed so as to be capable of reciprocal movement in the vertical direction of the
ceiling rotary electric part 1 (axial line direction of the rotating member 6), and
a coil spring 1504 disposed between a base face portion 1502a of the case 1502 and
the plunger 1503. A circular opening 1502b is formed at the middle of the base face
portion 1502a of the case 1502. A pair of positioning pieces 1502c is formed at the
back side of this opening 1502b. Also, a pair of connecting terminals 1502d is provided
at the front face portion of the base face portion 1502a, extending downwards. The
connecting terminals 1502d are terminal electrically connected to the ends of the
coil 1501, for conducting electricity to the coil 1501. Note that in the present embodiment,
an AC solenoid is used as the solenoid 15.
[0064] The plunger 1503 has a main unit 1503a contained in a part of a wound portion of
the coil 1501 through the opening 1502b, a shaft 1503b provided protruding downwards
from this main unit 1503a, and a flange portion 1503c provided at the lower end of
the main unit 1503a. The outer diameter of the main unit 1503a is smaller than the
inner diameter dimensions of the coil spring 1504. An engaging portion 1503d having
a disc shape is disposed at the tip (lower end) of the shaft 1503b. The outer diameter
of the flange portion 1503c is formed larger than the outer dimensions of the coil
spring 1504.
[0065] The coil spring 1504 is disposed between the case 1502 and the flange portion 1503c
of the plunger 1503 in a state of having been inserted through the main unit 1503a
of the plunger 1503. The lower end of the coil spring 1504 is retained by the upper
face of the flange portion 1503c, and the upper end of the coil spring 1504 is retained
by the lower face of the base face portion 1502a of the case 1502 (or more specifically,
the lower face around the opening 1502b). The coil spring 1504 provides pressing force
pressing the plunger 1503 downwards.
[0066] The board 5 is formed of an insulating board for example, and has a generally rectangular
shape in plane view. A circular opening 501 is formed at the middle of the board 5.
The plunger 1503 of the solenoid 15 passes through this opening 501. A pair of positioning
holes 502 are formed at the back of the opening 501. A pair of slits 503 is formed
on the outer side of these positioning holes 502, from the back end face toward the
front side. The fixing walls 307 of the upper case 3 are disposed on these slits 503.
A pair of second terminal connecting holes 504 where the second terminals 11 are connected
is formed on the outer sides of the slits 503. On the other hand, a pair of solenoid
connecting holes 505 where the connecting terminals 1502d of the solenoid 15 are connected
is formed to the front side of the opening 501. A pin connection hole 506 where the
connecting pin 16 is connected is formed nearby the left side end of the board 5.
[0067] A triac 17 which switches (on/off control) current, and multiple (two in the present
embodiment) resistor elements 18 are mounted on the lower face of the board 5. A lead
pattern is formed on the upper face of the board 5, for connecting one second terminal
connecting hole 504 and one solenoid connecting hole 505. Provided on the lower face
of the board 5 are a lead pattern for connecting the pin connection hole 506 and a
connection terminal of the triac 17 via a resistor 18, and a lead pattern for connecting
the other solenoid connecting hole 505 and the connection terminal of the triac 17
(see Fig. 12).
[0068] The cover 4 is confirmed of an insulating resin material for example, and has a shape
opened generally downwards. The cover 4 has a ceiling portion 401 having a rectangular
shape in plane view, and a side face portion 402 provided extending downwards from
the edges of the ceiling portion 401. A side face portion 402a disposed at the front
side is provided with a pair of engaging pieces 403 which engage the engaging arms
308 of the upper case 3. Engaging arms 404 and 405 are provided extending downwards
at the back end of a side face portion 402b disposed to the left side, and at the
right end of a side face portion 402c disposed at the back end. These engaging arms
404 and 405 are configured so as to be capable of engaging the respective engaging
pieces 312 and 313 provided on the upper case 3. Note that the engaging arms 404 and
405 are configured so as to be capable of snap joining to the engaging pieces 312
and 313.
[0069] The configuration of the inner side (lower face side) of the upper case 3 which the
rotary electric part 1 according to the present embodiment has will be described.
Fig. 10 is an explanatory diagram of the configuration of the inner side (lower face
side) of the upper case 3 which the rotary electric part 1 according to the present
embodiment has. Note that the upper case 3 is illustrated vertically inverted in Fig.
10. Also note that Fig. 10 illustrates the upper case 3 in a state where the first
terminals 13 and lever 14 have been affixed.
[0070] As illustrated in Fig. 10, provided at the front side of the opening 306a are a pair
of holding pieces 315 extending downwards from the lower face of the board placement
portion 304, and a pair of supporting pieces 316 provided to the sides of the holding
pieces 315. The holding pieces 315 have a U-shaped form opening downwards (toward
the upper side in Fig. 10) at the tips (lower ends) thereof. On the other hand, the
supporting pieces 316 have hook portions 316a formed on the inner sides of the tips,
protruding inwards. The holding pieces 315 and the supporting pieces 316 are provided
to support the lever 14. That is to say, the lever 14 is supported from the sides
by the hook portions 316a of the supporting pieces 316, in a state of the shaft portion
1401 being accommodated in the opening portions of the holding pieces 315. In a state
thus supported, the lever 14 is held turnably within a predetermined range, with the
center of the shaft 1401 as the center of turning. Note that the tip of the engaging
portion 1403 of the lever 14 branches into two, this portion being disposed at a position
facing the opening 306a. The engaging portion 1403 is configured so as to accommodate
the shaft 1503b of the solenoid 15 with this branched portion, and also so as to be
capable of engaging the engaging portion 1503d.
[0071] A storing portion 317, which turnably accommodates the tip (upper end) of the cylindrical
portion 602 of the rotating member 6 in a state where the rotary electric part 1 has
been assembled, is provided at the front side of the holding pieces 315 and supporting
pieces 316. A partition 318 extending downwards from the lower face of the board placement
portion 304 is disposed to the front side of this storing portion 317. This partition
318 serves to section off the space where the bases 1301 of the first terminals 13
are disposed. The pair of first terminals 13 are fixed to the upper case 3 in a state
where the contact point portions 1303 are exposed downwards in this space sectioned
off by the partition 318.
[0072] Next the structural members around the board 5 which the rotary electric part 1 according
to the present embodiment has will be described. Fig. 11 and Fig. 12 are perspective
diagrams for describing the structural members around the board 5 which the rotary
electric part 1 according to the present embodiment has. Fig. 11 illustrates the solenoid
15 mounted on the board 5, and the second terminals 11 and connecting pin 16 connected
to the board 5. Fig. 12 illustrates the solenoid 15, triac 17, and resistor elements
18 mounted on the board 5, and the connecting pin 16 connected to the board 5.
[0073] As illustrated in Fig. 12, the solenoid 15 is mounted on the upper face of the board
5 in a state with the positioning pieces 1502c inserted through the positioning holes
502, and the connecting terminals 1502d inserted through the solenoid connecting holes
505. In this case, the plunger 1503 making up the solenoid 15 protrudes downwards
through the opening 501 in the board 5. The coil spring 1504 is disposed around the
plunger 1503, applying pressing force against the upper face of the flange portion
1503c.
[0074] The inserting portions 1101c of the second terminals 11 are inserted through the
second terminal connecting holes 504. One (left-side) second terminal 11 is connected
to one (left-side) connecting terminal 1502d of the solenoid 15 via the lead pattern
formed on the upper face of the board 5. The other (right-side) second terminal 11
is connected to the other (right-side) connecting terminal 1502d of the solenoid 15
via the lead pattern formed on the upper face of the board 5 and the triac 17. The
upper end of the connecting pin 16 is inserted through the pin connection hole 506.
The connecting pin 16 is connected to the triac 17 via the lead pattern formed on
the lower face of the board 5 and the resistor elements 18. Note that the connecting
terminals 1502d, inserting portions 1101c, and connecting pin 16 are respectively
inserted through the solenoid connecting holes 505, second terminal connecting holes
504, and pin connection hole 506 of the board 5, and soldered to soldering lands provided
around the connecting holes 504 through 506, but the soldering has been omitted from
illustration in Fig. 11, Fig. 12, and so forth, for to facilitate description. The
triac 17 and resistor elements 18 are also mounted by soldering to predetermined positions
on the board 5.
[0075] The rotary electric part 1 according to the present embodiment drives the solenoid
15 by supplying drive instruction signals (predetermined voltage) via the connecting
pin 16, in an on state (state where the first terminals 13 and second terminals 11
are conducting). Accordingly, the slider 9 is moved by driving the lever 14 engaging
the plunger 1503, thus switching to a power off state (auto-off function). Details
of this auto-off function will be described later.
[0076] Next, a state in which the rotary electric part 1 according to the present embodiment
has been assembled will be described. Fig. 13 is a cross-sectional view illustrating
an assembled state of the rotary electric part 1 according to the present embodiment.
Fig. 14 and Fig. 15 respectively are a perspective view and side view illustrating
the assembled state of the rotary electric part 1 according to the present embodiment.
Note that Fig. 13 through Fig. 15 illustrate a state in which the rotary electric
part 1 has not been operated (initial state). In particular, Fig. 13 illustrates a
cross-section passing through the center of the cylindrical portion 602 of the rotating
member 6 and the plunger 1503 of the solenoid 15. The upper case 3 has been omitted
from illustration in Fig. 14 and Fig. 15 to facilitate description.
[0077] As illustrated in Fig. 13, the sliding member 8 is disposed on the base face portion
201 of the lower case 2 within the rotary electric part 1, with the output portions
802b of the sliding terminals 802 extending downwards from the lower case 2. The wafer
7, integrated with the flange portion 604 of the rotating member 6, is disposed above
the sliding member 8 so as to face the sliding member 8. The sliding portions 802a
of the sliding terminals 802 are slidably disposed on the conducting pattern 702 provided
on the lower face of the wafer 7.
[0078] The holder 10 is disposed so as to enclose the disc-shaped portion 601 of the rotating
member 6. The holder 10 is placed upon the supporting piece 209 (omitted from illustration
in Fig. 13) provided to the lower face of the lower case 2, and does not come into
contact with the rotating member 6. Note that the steel ball 1201 accommodated in
the recessed portion 601a of the disc-shaped portion 601 is pressed to the back side
by the pressing force of the coil spring 1202, and is accommodated in the recessed
portion 1009 formed at the inner wall face of the holder 10. The slider 9 is disposed
above the holder 10, so as to be movable by sliding in the front-back direction.
[0079] The upper case 3 is placed upon the lower case 2 accommodating these structural members.
The upper case 3 is placed thereupon, in a state accommodating the tip (upper end)
of the cylindrical portion 602 of the rotating member 6 at the storing portion 317
formed on the lower face thereof. The first terminals 13 fixed to the upper case 3
are disposed with a certain spacing therebetween in the front-back direction in the
terminal accommodating portion 305. The board 5 on which the solenoid 15 has been
mounted is disposed at the back side the upper face of this upper case 3 (board placement
portion 304).
[0080] The solenoid 15 is disposed in a state where the plunger 1503 is protruding into
the space within the upper case 3. The cover 4 is placed upon the board 5 so as to
accommodate the solenoid 15 mounted on the board 5, and is attached to the upper case
3. The lever 14 supported by the upper case 3 accommodates part of the shaft 1503b
of the plunger 1503 by the engaging portion 1403 thereof, and is disposed at a position
such that the pressing portion 1402 is distanced from the contact face 904a of the
slider 9.
[0081] As illustrated in Fig. 14 and Fig. 15, the movable contact point units 1102 of the
second terminals 11 are disposed above the slider 9 accommodated in the lower case
2. In the initial state, the slider 9 is situated at a position farthest to the back
side on the holder 10. Accordingly, the protruding portions 1102d of the movable contact
point units 1102 are situated at positions to the front of the pressing portions 903.
In this case, the tongue pieces 1102b of the movable contact point units 1102 are
situated above the rib-shaped portions 901b provided to the base 901 of the slider
9, with the contact portions 1102c distanced from the contact point portions 1303
of the first terminals 13. While the protruding portions 1102d are disposed at positions
not making contact with the upper face of the base 901, a configuration may be made
with these in contact.
[0082] As illustrated in Fig. 13 and Fig. 14, the engaging piece 906 of the slider 9 is
disposed facing the rib 615 provided to the cylindrical portion 602 of the rotating
member 6. The tip of the rib 615 is disposed facing the tip of the engaging piece
906, in a non-contact state. On the other hand, the engaging piece 909 of the slider
9 is accommodated in the recessed portion 614 provided to the disc-shaped portion
601 of the rotating member 6.
[0083] The rotary electric part 1 according to the present embodiment which has the above-described
configuration can be switched to a power-on state by rotational operation of the rotating
member 6 from the initial state (manual on), and switched to a power-off state by
rotational operation of the rotating member 6 from the power-on state (state where
the first terminals 13 and second terminals 11 are not conducting) (manual off). Further,
the rotary electric part 1 according to the present embodiment can be switched to
a power-off state from the power-on state by the solenoid 15 being driven under certain
conditions (auto off), and switched to a power-on state by rotational operation of
the rotating member 6 from the auto-off state (manual on after auto off).
[0084] Actions of the rotary electric part 1 according to the present embodiment will be
described below. First, actions at the time of manual on and manual off operations
will be described. Fig. 16 and Fig. 17 respectively are a perspective view and side
view of the rotary electric part 1 according to the present embodiment at the time
of a manual on operation. Note that the upper case 3 is omitted from illustration
in Fig. 16 and Fig. 17, in the same way as with Fig. 14 and Fig. 15. This is also
true of the perspective views and side views of the rotary electric part 1 in Fig.
18 and subsequent drawings as well.
[0085] Upon performing a rotating operation of the rotating member 6 from the initial state
illustrated in Fig. 14 and Fig. 15, the wall face portion defining the recessed portion
614 comes into contact with the engaging piece 909 accommodated in the recessed portion
614. Accordingly, the engaging piece 909 is pressed to the front side by the rotating
member 6, and as a result, the entire slider 9 moves forward by sliding, as illustrated
in Fig. 16 and Fig. 17. This sliding movement of the slider 9 causes the pressing
portions 903 to press the protruding portions 1102d of the movable contact point units
1102 upwards. Thus, the entire movable contact point units 1102 are lifted upwards,
and the protruding portions 1102d are placed upon the pressing portions 903, whereupon
the contact portions 1102c provided on the tongue pieces 1102b come into contact with
the contact point portions 1303 of the first terminals 13. Accordingly, the first
terminals 13 and second terminals 11 are switched to a conducting state (power-on
state by manual on operation).
[0086] In this case, the engaging piece 906 moves forward in conjunction with the sliding
movement of the slider 9, and is in a state placed in the rotational movement region
of the rib 615. Note that the rib 615 has moved from the position facing the engaging
piece 906 to a different position, in accordance with the rotating operation of the
rotating member 6, and thus does not come into contact with the engaging piece 906.
Also, the contacting portion 904 of the slider 9 has the contact face 904a thereof
situated near the rear face of the pressing portion 1402 of the lever 14. The rotating
member 6 regarding which the rotating operation has been performed is in a state of
being placed at a stable position, by engaging of the steel ball 1201 accommodated
in the recessed portion 601a and the click cams 1008 (recessed portions) of the holder
10.
[0087] The first terminals 13 and second terminals 11 of the rotary electric part 1 according
to the present embodiment can thus be switched to a conducting state by moving in
a sliding manner the slider 9 in a direction intersecting the rotational axis line
direction of the rotating member 6 (a direction orthogonal to the rotational axis
line direction in the present embodiment) in conjunction with the rotating operation
as to the rotating member 6. In this case, the slider 9 is disposed between the rotating
member 6 and the movable contact point units 1102. Accordingly, a situation where
the rotation of the rotating member 6 is directly transmitted to the movable contact
point units 1102 can be prevented, so the contact stability of the movable contact
point units 1102 as to the first terminals 13 can be improved. Particularly, the slider
9 is held so as to be capable of sliding movement by the holder 10, so movement of
the slider 9 in the front-back direction of the rotary electric part 1 (direction
orthogonal to the axial line direction of the rotating member 6) can be performed
smoothly.
[0088] Further, in the rotary electric part 1 according to the present embodiment, the slider
9 includes a base 901 and pressing portions 903 which are provided protruding farther
to the movable contact point units 1102 side than the base 901. On the other hand,
the movable contact point units 1102 have protruding portions 1102d protruding to
the slider 9 side, so that in a case where the first terminals 13 and second terminals
11 are in a conducting state, the pressing portions 903 are in contact with the protruding
portions 1102d so as to press the movable contact point units 1102d toward the side
of the first terminals 13. Accordingly, in a case where the first terminals 13 and
second terminals 11 are in a conducting state, the contact point units 1102 come into
contact with the protruding portions 1102d by the pressing portions 903 so as to be
pressed toward the side of the first terminals 13, so switching of the first terminals
13 and the second terminals 11 to a conducting state can be performed in a stable
manner, without having a complicated configuration.
[0089] Particularly, the rotary electric part 1 according to the present embodiment has
holding portions 903a which hold the protruding portions 1102d of the movable contact
point units 1102 formed at the upper faces of the pressing portions 903 of the slider
9, at the front side ends. The slider 9 has a configuration such that, at the time
of the protruding portions 1102d riding up over the holding portions 903a, the slider
9 slightly moves forward by itself due to the elastic recovery force of the movable
contact point units 1102, so the protruding portions 1102d of the movable contact
point units 1102 in a state of being pressed by the pressing portions 903 can be held
in a more stable manner by the holding portions 903a. Accordingly, trouble such as
the protruding portions 1102d moving away from the pressing portions 903 due to vibration
or the like and the conducting state of the first terminals 13 and the second terminals
11 switching to a non-conducting state, can be suppressed.
[0090] Fig. 18 is a perspective view illustrating the state of the rotary electric part
1 according to the present embodiment immediately prior to a manual off operation.
Note that part of the front side of the movable contact point units 1102 has been
omitted from illustration in Fig. 18 for the sake of facilitating description. Upon
the rotating member 6 being rotated from the power on state illustrated in Fig. 16
to return to the initial state (i.e., upon the rotating member 6 being rotationally
operated until the rib 615 is at a position facing the engaging piece 906 of the slider
9), the rib 615 comes into contact with the engaging piece 906, since the engaging
piece 906 is situated in the rotating movement path of the rib 615. Accordingly, the
engaging piece 906 is pressed to the back side by the rotating member 6 and as a result
the entire slider 9 moves by sliding to the back side, to the position illustrated
in Fig. 14 and Fig. 15. The movable contact point units 1102 move downwards due to
the pressing of the pressing portions 903 as to the protruding portions 1102d being
disengaged, and the contact portions 1102c provided on the tongue pieces 1102b are
distanced from the contact point portions 1303 of the first terminals 13 (power-off
state by manual off operation).
[0091] Thus, the rotary electric part 1 according to the present embodiment is provided
with the engaging piece 906 at a position facing the engaging piece 909 of the slider
9 across the rotational axis line of the rotating member 6, and on the other hand,
is provided with the rib 615 on the rotating member 6 which engages with the engaging
piece 906 in conjunction with rotation of the rotating member 6 and causes the slider
9 to return to the initial position. Accordingly, the rib 615 engages the engaging
piece 906 upon rotation of the rotating member 6, whereby the slider 9 can be returned
to the initial position, so the first terminals 13 and second terminals 11 can be
switched to a non-conducting state in a sure manner by an operator making a rotating
operation of the rotating member 6 as to the initial position.
[0092] Next, actions at the time of auto off, and manual on operations after auto off, will
be described. The rotary electric part 1 according to the present embodiment has an
auto off function to switch to a power off state from the power on state, by driving
the solenoid 15 under certain conditions. For example, the solenoid 15 is driven according
to driving instruction signals output from a control unit of a device (e.g., a washing
machine) in which the rotary electric part 1 is installed. The driving instruction
signals are output in a case where a situation is detected that there has been no
operation from the operator for a predetermined amount of time, or completion of a
specified action has been completed.
[0093] Fig. 19 is a diagram illustrating an example of circuit diagrams relating to the
auto off function which the rotary electric part 1 according to the present embodiment
has. Members which are in common with the structural members used in the description
above are denoted with the same reference numerals in the circuit diagrams illustrated
in Fig. 19, and description thereof will be omitted. Fig. 19A illustrates a circuit
diagram in a power on state, and Fig. 19B illustrates a circuit diagram in a power
off state, switched from the power on state by the auto off function.
[0094] In the circuit illustrated in Fig. 19, the pair of resistor elements 18A and 18B
are serially connected to the connecting pin 16 connected to the parts mounting board.
The gate of the triac 17 is connected to the node of the resistor element 18A and
resistor element 18B. Connected to one electrode of the triac 17 is the solenoid 15
(coil 1501). The other end of the solenoid 15 (coil 1501) is connected to one second
terminal 11. The end of the resistor element 18B not connected to the resistor element
18A is connected to the other second terminal 11 and the other electrode of the triac
17. Connected to these second terminals 11 are the pair of first terminals 13, via
the power switch made up of the movable contact point units 1102. Note that AC power
voltage (e.g., 200 V) is applied (supplied)to the pair of second terminals 11.
[0095] In the power on state, the triac 17 is in an off state, and the first terminals 13
and second terminals 11 are in a conducting state by the movable contact point units
1102 as illustrated in Fig. 19A. On the other hand, in a case where a driving instruction
signal (predetermined voltage) is input to the triac 17 from a control unit of the
device where the rotary electric part 1 is installed, under certain conditions, the
triac 17 switches to an on state, and driving current flows to the solenoid 15 (coil
1501) via the triac 17. Upon the solenoid 15 being driven by this driving current,
the conducting state of the first terminals 13 and second terminals 11 by the movable
contact point units 1102 is switched to a non-conducting state. Thus supply of the
power voltage to the first terminals 13 via the second terminals 11 is cut off.
[0096] Fig. 20 and Fig. 21 respectively are a perspective view and side view of the rotary
electric part 1 according to the present embodiment at the time of an auto off operation.
Upon a driving instruction signal being input via the connecting pin 16 from the power
on state under certain conditions, the solenoid 15 is driven. Accordingly, at the
solenoid 15, the plunger 1503 serving as a moving core is drawn upwards against the
pressing force of the coil spring 1504. The engaging portion 1503d provided at the
tip of the plunger 1503 engages the engaging portion 1403 of the lever 14. Accordingly,
when the engaging portion 1403 is drawn upwards in conjunction with the upward movement
of the plunger 1503, the lever 14 turns with the axial center of the shaft portion
1401 as the fulcrum of turning.
[0097] Upon the pressing portion 1402 moving backwards in conjunction with the turning of
the lever 14, the pressing portion 1402 presses the contacting portion 904 by coming
into contact with the contact face 904a provided on the contacting portion 904 of
the slider 9. Accordingly, the contacting portion 904 presses the lever 14 further
backwards, and as a result, the entire slider 9 moves backwards as illustrated in
Fig. 20 and Fig. 21. The pressing portions 903 moves backwards from beneath the protruding
portions 1102d of the movable contact point units 1102 in conjunction with the sliding
movement of the slider 9. Thus, the entire movable contact point units 1102 move downwards
by elastic recovery force, whereupon the contact portions 1102c provided on the tongue
pieces 1102b are distanced from the contact point portions 1303 of the first terminals
13. Accordingly, the first terminals 13 and second terminals 11 are switched to a
non-conducting state (power-off state by auto off operation).
[0098] The engaging piece 906 moves to the back side in conjunction with the sliding movement
of the slider 9, and thus is a state evacuated from the rotational movement region
of the rib 615. Also, in a state where the rotating member 6 is situated at a stable
position as described above, a recessed portion 613b of the cam portions 613 is situated
at a position facing the engaging piece 909 of the slider 9. Accordingly, the engaging
piece 909 is accommodated in a recessed portion 613b of the cam portions 613 provided
to the disc-shaped portion 601 of the rotating member 6, by the sliding movement of
the slider 9. Thus, at the time of the slider 9 being returned by the lever 14 due
to the driving by the solenoid 15, a situation can be prevented where movement of
the slider 9 is impeded due to the engaging piece 909 coming into contact with a part
of the rotating member 6 (protruding portion 613a), so the slider 9 is returned in
a sure manner due to the recovery mechanism, and the first terminals 13 and second
terminal 11 can be switched to a non-conducting state in a sure manner.
[0099] Thus, in the rotary electric part 1 according to the present embodiment, the first
terminals 13 and second terminal 11 in a conducting state can be returned to a non-conducting
state by disengaging the contact between the movable contact point units 1102 and
the first terminals 13, by the recovery mechanism including the solenoid 15 and lever
14. Accordingly, by controlling power to the solenoid 15, the conducting state between
the first terminals 13 and the second terminals 11 can be switched to a non-conducting
state without necessitating rotation by the rotating member 6. As a result, a state
can be avoided where standby current continues to be supplied in an application of
the rotary electric part 1 to a power switch of a washing machine or the like, thereby
enabling demand for reduction in power consumption to be met.
[0100] Particularly, in the rotary electric part 1 according to the present embodiment,
the first terminals 13 and second terminals 11 are each provided in pairs, and the
movable contact point units 1102 provided to the pair of second terminals 11 are disposed
arrayed in the left-right direction across the rotational axis line of the rotating
member 6. On the other hand, the slider 9 has a pair of pressing portions 903 corresponding
to the movable contact point units 1102 of the pair of second terminals 11, and has
a configuration where the contacting portion 904 situated between the pair of pressing
portions 903 is pressed by the lever 14. Accordingly, the contacting portion 904 (more
specifically, the contact face 904a) situated between the pair of pressing portions
903 receives pressing force from the lever 14, so the slider 9 can be returned smoothly,
and the first terminals 13 and second terminals 11 can be switched to a non-conducting
state in a stable manner.
[0101] Also, in the rotary electric part 1 according to the present embodiment, the solenoid
15 has the plunger 1503 which is reciprocally movable in the vertical direction, while
the lever 14 has the shaft portion 1401, pressing portion 1402 which presses the slider
9, and the engaging portion 1403 which engages the plunger 1503, with the shaft portion
1401 held turnably by the upper case 3. Accordingly, the pressing portion 1402 of
the lever 14 can be smoothly moved according to driving by the solenoid 15, and the
slider 9 can be returned to the initial position in a sure manner.
[0102] Fig. 22 and Fig. 23 respectively are a perspective view and a side view of the rotary
electric part 1 according to the present embodiment after an auto off operation. Upon
the driving instruction signal output via the connecting pin 16 stopping, the solenoid
15 returns to the initial state. The plunger 1503 of the solenoid 15 moves downwards
in accordance with the pressing force of the coil spring 1504. The lever 14 returns
to the initial position illustrated in Fig. 22 and Fig. 23 in conjunction with the
movement of the plunger 1503. In this case, the slider 9 is in a state where the pressing
portions 903 are retained by the protruding portions 1102d of the movable contact
point units 1102, and accordingly does not move forward.
[0103] Fig. 24 is a perspective view of the rotary electric part 1 according to the present
embodiment at the time of a manual on operation after an auto off operation. Upon
performing a rotation operation of the rotating member 6 from the power-off state
illustrated in Fig. 22 and Fig. 23, a protruding portion 613a (more specifically,
the wall face portion defining the protruding portion 613a) comes into contact with
the engaging piece 909 which had been accommodated in a recessed portion 613b of a
cam portion 613. Accordingly, the engaging piece 909 is pressed toward the front side
by the rotating member 6, and as a result, the entire slider 9 moves forward by sliding,
as illustrated in Fig. 24.
[0104] In conjunction with the sliding movement of the slider 9, the pressing portions 903
press the protruding portions 1102d of the movable contact point units 1102 upwards.
Accordingly, the entire movable contact point units 1102 are raised up, and the protruding
portions 1102d are placed upon the pressing portions 903, whereby the contact portions
1102c provided on the tongue pieces 1102b come into contact with the contact point
portions 1303 of the first terminals 13. Accordingly, the first terminals 13 and second
terminals 11 are switched to a conducting state. That is to say, the rotary electric
part 1 according to the present embodiment is capable of returning to an on state
by performing a rotating operation of the rotating member 6 after the auto off function
has been executed.
[0105] Thus, in the rotary electric part 1 according to the present embodiment, first cam
portions 613 made up of multiple recessed portions 613b and protruding portions 613a
are provided on the rotating member 6. The protruding portions 613a of the first cam
portions 613 engage the engaging piece 909 of the slider 9 in conjunction with the
rotations of the rotating member 6 so as to move the slider 9, and the movable contact
point units 1102 (contact portions 1102c) come into contact with the first terminals
13 (contact point portions 1303). Accordingly, the slider 9 can be moved to multiple
positions in conjunction with the rotations of the rotating member 6, so even in a
case where the first terminals 13 and the second terminals 11 have been switched to
a non-conducting state at a position other than the initial position by the recovery
mechanism, these can be returned to a conducting state in a short period, i.e., by
few rotational operations of the rotating member 6.
[0106] Note that the present invention is not restricted to the above-described embodiment,
and that various modifications may be carried out. The above-described embodiment
is not restricted to sizes and shapes illustrated in the attached drawings, and modifications
may be made as appropriate within a scope where the advantages of the present invention
are manifested. Additionally, modifications may be carried out as appropriate without
departing from the scope of the object of the present invention.
[0107] For example, a case where the protruding portions 1102d are configured from a part
of the movable contact point units 1102 is described in the above embodiment. However,
the configuration of the protruding portions 1102d is not restricted thusly, and various
modifications may be made. For example, a function the same as that of the protruding
portions 1102d may be had by fixing protrusions of synthetic resin or the like, for
example, to the movable contact point units 1102.
[0108] Also, a case where the slider 9 has a plate-shaped base 901 and pressing portions
903 protruding upwards from this base 901 is described in the above embodiment. However,
the configuration of the slider 9 is not restricted thusly, and various modifications
may be made. For example, a configuration may be made where the overall slider 9 may
be formed having thickness dimensions equivalent to that of the pressing portions
903 according to the present embodiment, while recessed portions are formed at positions
corresponding to the base 901 according to the present embodiment.
[0109] Also, a case where the slider 9 moves in a direction orthogonal to the rotational
axis line direction of the rotating member 6 in conjunction with rotations of the
rotating member 6 is described in the above embodiment. However, the direction of
movement of the slider 9 is not restricted thusly. For example, the slider 9 may move
in a direction intersecting the rotational axis line direction of the rotating member
6 at an 80° angle, for example.
[0110] Also, a case where a steel ball 1201 is used as an engaging member for engaging/disengaging
the click cams 1008 serving as the second cam portion is described in the above embodiment.
However, the engaging member is not restricted to a steel ball, and various modifications
may be made. For example, a synthetic resin sphere may be used as the engaging member.
Further, this is not restricted to a sphere, and a pin-shaped engaging member with
a curved face formed on the tip may be used.