[0001] The disclosure relates to an iron, and more particularly to a steam iron.
[0002] A conventional steam iron emits steam for softening fabrics so as to facilitate removal
of creases formed on the fabrics, and includes a temperature adjusting mechanism and
a steam adjusting mechanism. The temperature adjusting mechanism is operable to adjust
temperature of a soleplate of the conventional steam iron. The s team adjusting mechanism
is operable to adjust steam emission rate of the conventional steam iron. When using
the conventional steam iron, a user needs to separately operate the temperature adjusting
mechanism and the steam adjusting mechanism for various demands. Such operation is
inconvenient.
[0003] Therefore, an object of the disclosure is to provide a synchronous adjustment mechanism
for a steam iron that can alleviate the drawback of the prior art.
[0004] According to the disclosure, the synchronous adjustment mechanism is for use in a
steam iron that includes a soleplate, and includes an active module and a passive
module. The active module is operable to adjust steam emission rate of the steam iron.
The passive module is operable to adjjust temperature of the soleplate. The active
module and the passive module are cooperatively associated with each other, so that
when the active module is operated to adjust the steam emission rate of the steam
iron, the passive module is driven by the active module to synchronously adjust the
temperature of the soleplate.
[0005] Another object of the disclosure is to provide a steam iron that includes a synchronous
adjustment mechanism and that can alleviate the drawback of the prior art.
[0006] According to the disclosure, the steam iron includes a main body including a soleplate,
and a synchronous adjustment mechanism disposed on the main body. The synchronous
adjustment mechanism includes an active module and a passive module. The active module
is operable to adjust steam emission rate of the steam iron. The passive module is
operable to adjust temperature of the soleplate. The active module and the passive
module are cooperatively associated with each other, so that when the active module
is operated to adjust the steam emission rate of the steam iron, the passive module
is driven by the active module to synchronously adjust the temperature of the soleplate.
[0007] Other features and advantages of the disclosure will become apparent in the following
detailed description of the embodiments with reference to the accompanying drawings,
of which:
Figure 1 is a perspective view illustrating a first embodiment of the steam iron according
to the disclosure ;
Figure 2 is a fragmentary perspective view illustrating the first embodiment;
Figure 3 is another fragmentary perspective view illustrating the first embodiment;
Figure 4 is a fragmentary sectional view illustrating an adjusting rod of the first
embodiment;
Figure 5 is a schematic perspective view illustrating a rotary switch of the first
embodiment at a middle position and the adjusting rod at a low flow rate position;
Figure 6 is another schematic perspective view illustrating the rotary switch at a
right position and the adjusting rod at a high flow rate position;
Figure 7 is still another schematic perspective view illustrating the rotary switch
at a left position and the adjusting rod at a seal position;
Figure 8 is a fragmentary perspective view illustrating a second embodiment of the
steam iron according to the disclosure;
Figure 9 is another fragmentary perspective view illustrating an adjusting rod unit
of the second embodiment;
Figure 10 is still another fragmentary perspective view illustrating the adjusting
rod unit;
Figure 11 is a schematic fragmentary sectional view illustrating an adjusting rod
of the adjusting rod unit at a low flow rate position;
Figure 12 is another schematic fragmentary sectional view illustrating the adjusting
rod at a high flow rate position; and
Figure 13 is still another schematic fragmentary sectional view illustrating the adjusting
rod at a seal position.
[0008] Before the disclosure is described in greater detail, it should be noted that where
considered appropriate, reference numerals or terminal portions of reference numerals
have been repeated among the figures to indicate corresponding or analogous elements,
which may optionally have similar characteristics.
[0009] Referring to Figures 1 to 4, the first embodiment of the steam iron 2 according to
the disclosure includes a main body 3, and a synchronous adjustment mechanism 5 disposed
on the main body 3. It should noted that, in the following paragraphs, a tapered end
of the main body 3 (see Figure 1) is defined as the front side of the main body 3,
and the left and right sides of the main body 3 are defined accordingly.
[0010] The main body 3 includes a casing 31, and a soleplate 32 that is mounted to a bottom
side of the casing 31 and that permits steam to emit therethrough. The casing 31 cooperates
with the soleplate 32 to define a steam chamber 33 (see Figure 4) therebetween. The
steam chamber 33 accommodates water that is to be evaporated, and has an inlet hole
331 (see Figure 4) that is in fluid communication with a water chamber 35 (see Figure
4).
[0011] The main body 3 of the steam iron 2 is widely known in the art, and will not be described
in greater detail in the following paragraphs.
[0012] Referring to Figures 3 to 5, the synchronous adjustment mechanism 5 includes a passive
module 700 that is operable to adjust temperature of the soleplate 32, and an active
module 800 that is operable to adjust steam emission rate of the steam iron 2. The
active module 800 and the passive module 700 are cooperatively associated with each
other, so that when the active module 800 is operated to adjust the steam emission
rate of the steam iron 2, the passive module 700 is driven by the active module 800
to synchronously adjust the temperature of the soleplate 32.
[0013] The passive module 700 includes a temperature adjuster 51 for being rotated to adjust
the temperature of the soleplate 32, and a transmission arm unit 52 that is disposed
in the casing 31 and that is horizontally movable for rotating the temperature adjuster
51. The active module 800 includes a rotary switch 53 that is rotatably mounted to
the casing 31 and that is partially exposed from the casing 31 for manual operation,
and an adjusting rod unit 54 that is uprightly mounted in the casing 31, that is pivoted
to the rotary switch 53, and that is movable relative to the casing 31 for driving
movement of the transmission arm unit 52. The adjusting rod unit 54 includes an adjusting
rod 55 that is mounted in a front portion of the casing 31 and that is moved relative
to the casing 31 by the rotary switch 53 in an upright direction.
[0014] The temperature adjuster 51 has a pinion portion 511 meshing with the transmission
arm unit 52, so that movement of the transmission arm unit 52 rotates the temperature
adjuster 51 to adjust the temperature of the soleplate 32.
[0015] The transmission arm unit 52 includes a transmission arm 521 that is horizontally
movable relative to the casing 31 in a front-rear direction, and two arm resilient
members 520 each of which has two opposite ends respectively abutting against the
transmission arm 521 and the casing 31 (see Figure 3). The transmission arm 521 has
an arm portion 522 that extends in the front-rear direction, a driven portion 523
that is fixedly connected to a front end of the arm portion 522 and that protrudes
forwardly, and a rack portion 528 that is connected to a lateral side of a rear end
of the arm portion 522, that extends in the front-rear direction, and that meshes
with the pinion portion 511 of the temperature adjuster 51. The rack portion 528 is
moved by the arm portion 522 in the front-rear direction to rotate the pinion portion
511 of the temperature adjuster 51.
[0016] The transmission arm 521 further has a plurality of guiding grooves 529 each of which
is formed through top and bottom surfaces of the transmission arm 521 and extends
in the front-rear direction. The casing 31 has a plurality of limiting portions 312
each of which movably engages a respective one of the guiding grooves 529, so that
the transmission arm 521 is only permitted to move relative to the casing 31 in the
front-rear direction.
[0017] The driven portion 523 of the transmission arm 521 tapers toward the adjusting rod
55, and has an upper driven surface 524 that is inclined downwardly toward the adjusting
rod 55, a lower driven surface 524' that is inclined upwardly toward the adjusting
rod 55, and a driven tapered end 525 that is located between the upper and lower driven
surfaces 524, 524'. Each of the upper driven surface 524, the lower driven surface
524' and the driven tapered end 525 is contact able with the adjusting rod unit 54
. Each of the arm resilient members 520 extends in the front-rear direction, is spaced
apart from the other one of the arm resilient members 520 in a left-right direction,
and has two opposite ends respectively abutting against the transmission arm 521 and
the casing 31 for resiliently biasing the transmission arm 521 to abut against the
adjusting rod 55. In this embodiment, each of the arm resilient members 520 is configured
as a compression spring. In a variation, each of the arm resilient members 520 may
be configured as an elastic rubber, a V-shaped resilient plate, a torsion spring or
the like.
[0018] Referring to Figures 5 to 7, the rotary switch 53 is rotatable relative the casing
31. A rotating axis about which the rotary switch 53 is rotatable extends in the front-rear
direction, and is orthogonal to a longitudinal axis of the adjusting rod 55. The rotary
switch 53 has an oblong engaging groove 530 (see Figure 2) that is located at the
left side the rotating axis and that substantially extend in a lateral direction.
The engaging groove 530 is engaged with the adjusting rod unit 54 such that rotation
of the rotary switch 53 moves the adjusting rod unit 54 relative to the casting 31
in the upright direction. The rotary switch 53 is manually operable to rotate among
a right position (a first limit position, see Figure 6) where the rotary switch 53
is rotated rightward to be stopped by the casing 31, a left position (a second limit
position, see Figure 7) where the rotary switch 53 is rotated leftward to be stopped
by the casing 31, and a middle position (see Figures 4 and 5) that is located between
the right and left positions.
[0019] Referring to Figures 3 to 5, the adjusting rod 55 of the adjusting rod unit 54 is
moved by the rotary switch 53 in the upright direction, and includes a rod portion
56 that is movably inserted into the inlet hole 331 for adjusting flow rate of the
water flowing into the steam chamber 33, a pivot portion 57 that is disposed on a
top end of the rod portion 56 and that engages pivotally the rotary switch 53, and
a driving portion 58 that protrudes from the rod portion 56 toward the transmission
arm 521 and that is substantially triangle-shaped.
[0020] The rod portion 56 of the adjusting rod 55 has a fluid-tight section 561 that is
operable to fluid-tightly seal the inlet hole 331, a low flow rate section 562 that
extends downwardly from a lower end of the fluid-tight section 561, and a high flow
rate section 564 that extends downwardly from a lower end of the low flow rate section
562. The low flow rate section 562 has two low flow rate grooves 563 (only one is
visible in Figures 4 and 5) each of which is formed in an outer surrounding surface
thereof and extends downwardly. The high flow rate section 564 has two high flow rate
grooves 565 (only one is visible in Figures 4 and 5) each of which is formed in an
outer surrounding surface thereof, is in fluid communication with a respective one
of the low flow rate grooves 563, and extends downwardly through a lower portion of
the high flow rate section 564 . Each of the high flow rate grooves 565 has a volume
greater than that of each of the low flow rate grooves 563. The adjucting rod 55 is
moved by the rotary switch 53 among a high flow rate position where the high flow
rate section 564 corresponds in position to the inlet hole 331 so that the water in
the water chamber 35 flows into the steam chamber 33 via the high flow rate grooves
565 at a relatively high flow rate, a low flow rate position where the low flow rate
section 562 corresponds in position to the inlet hole 331 so that the water in the
water chamber 35 flows into the steam chamber 33 via the low flow rate grooves 563
at a relatively low flow rate, and a seal position where the fluid-tight section 561
corresponds in position to and seals the inlet hole 331 so that the water in the water
chamber 35 is prevented from flowing into the steam chamber 33.
[0021] Referring to Figures 2, 3 and 4, the pivot portion 57 of the adjusting rod 55 has
a pivot rod 571 that is spaced apart from the longitudinal axis of the adjusting rod
55, and that engages pivotally and movably the engaging grove 530 of the rotary switch
53 (see Figure 2) . When the rotary switch 53 is rotated, the pivot rod 571 moves
along the engaging groove 530, and is moved by the rotary switch 53 so as to move
the rod portion 56 and the driving portion 58 of the adjusting rod 55 in the upright
direction. The pivot portion 57 further has three positioning grooves 572 that are
formed in a rear surface thereof and that are spaced apart from each other in the
upright direction. The main body 3 further includes a positioning resilient plate
34 that is mounted to the casing 31 and that resiliently and removably engages an
alternative one of the positioning grooves 572 for positioning the adjusting rood
55 relactive to the casing 31 at a corresponding one of the high flow rate position,
the low flow rate position and the seal position.
[0022] The driving portion 58 of the adjusting rod 55 has an upper driving surface 581 that
is inclined downwardly toward the transmission arm 521, a lower driving surface 581'
that is inclined upwardly toward the transmission arm 521, and a driving tapered end
582 that is located between the upper and lower driving surfaces 581, 581'. The upper
and lower driving surfaces 581, 581' of the driving portion 58 are respectively contactable
with the lower and upper driven surfaces 524' 524 of the driven portion 523 of the
transmission arm 521. The driving tapered end 582 of the driving portion 58 is contactable
with the driven tapered end 525 of the driven portion 523 of the transmission arm
521.
[0023] In this embodiment, when the rotary switch 53 is at the right position (see Figure
6), the adjusting rod 55 is at the high flow rate position so that the water flows
into the steam chamber 33 at a relatively high flow rate, and the lower driving surface
581' of the driving portion 58 is in contact with the upper driven surface 524 of
the driven portion 523 of the transmission arm 521.
[0024] When the rotary switch 53 is rotated from the right position to the middle position
(see Figures 4 and 5), the adjusting rod 55 is moved downwardly by the rotary switch
53 from the high flow rate position to the low flow rate position, so that the water
flows into the steam chamber 33 at a relatively low flow rate to thereby lower the
steam emission rate of the steam iron 2. During the movement of the adjusting rod
55 from the high flow rate position to the low flow rate position, the lower driving
surface 581' of the driving portion 58 pushes the upper driven surface 524 of the
driven portion 523 of the transmission arm 521 to move the transmission arm 521 rearwardly
against the biasing action of the arm resilient members 520, so as to rotate the temperature
adjuster 51 until the lower driving surface 581' and the upper driven surface 524
are separated from each other and the driving tapered end 582 is in contact with the
driven tapered end 525. In this embodiment, the rearward movement of the transmission
arm 521 rotates the temperature adjuster 51 to lower the temperature of the soleplate
32.
[0025] When the rotary switch 53 is rotated from the middle position to the left position
(see Figure 7), the adjusting rod 55 is moved downwardly by the rotary switch 53 from
the low flow rate position to the seal position, so that the water is prevented from
flowing into the steam chamber 33 and that the steam iron 2 would not emit steam.
During the movement of the adjusting rod 55 from the low flow rate position to the
seal position, the driving tapered end 582 and the driven tapered end 525 are first
moved to be separated from each other. Then, in response to further downward movement
of the adjusting rod 55, the arm resilient members 520 bias the transmission arm 521
to move forwardly, so that the lower driven surface 524' of the driven portion 523
is pushed against the upper driving surface 581 of the driving portion 58 and that
the temperature adjuster 51 is rotated by the transmission arm 521 to raise the temperature
of the soleplate 32.
[0026] The steam iron 2 of this disclosure provides high steam emission rate mode, low steam
emission rate mode and dry iron mode for different needs. Referring to Figure 6, when
the high steam emission rate mode is in demand, the rotary switch 53 is rotated to
the right position so that the adjusting rod 55 is moved to the high flow rate position,
and the temperature adjuster 51 is thereby rotated by the transmission rod 521 to
raise the temperature of the soleplate 32. At this time, the water in the water chamber
35 flows into the steam chamber 33 at a relatively high flow rate to be evaporated
by the soleplate 32 that is at relatively high temperature.
[0027] Referring to Figures 4 and 5, when the low steam emission rate mode is in demand,
the rotary switch 53 is rotated to the middle position so that the adjusting rod 55
is moved to the low flow rate position, and the temperature adjuster 51 is thereby
rotated by the transmission rod 521 to lower the temperature of the soleplate 32.
At this time, the water in the water chamber 35 flows into the steam chamber 33 at
a relatively low flow rate to be evaporated by the soleplate 32 that is at relatively
low temperature.
[0028] Referring to Figures 2, 3 and 7, when the dry iron mode is in demand, the rotary
switch 53 is rotated to the left position so that the adjusting rod 55 is moved to
the seal position, and the temperature adjuster 51 is thereby rotated by the transmission
rod 521 to raise the temperature of the soleplate 32. At this time, the water in the
water chamber 35 is prevented from flowing into the steam chamber 33, and the soleplate
32 is at relatively high temperature for dry ironing.
[0029] Referring to Figures 8, 9 and 11, the second embodiment of the steam iron 2 according
to the disclosure is different from the first embodiment in the configuration of the
synchronous adjustment mechanism 5. For the sake of brevity, only the differences
between the first and second embodiments are described in the following paragraphs.
[0030] In the second embodiment, the active module 800 further includes a sleeve member
502 that is connected fixedly to the main body 3 and that permits the rod portion
56 of the adjusting rod 55 to extend therethrough. The sleeve member 502 has an oblong
limiting through hole 503 formed in a rear side thereof. The sleeve member 502 further
has an upper limiting surface 504 that defines an upper edge of the limiting through
hole 503 and that is inclined upwardly toward the adjusting rod 55, and a lower limiting
surface 505 that defines a lower edge of the limiting through hole 503 and that is
inclined downwardly toward the adjusting rod 55.
[0031] Referring to Figures 9 to 11, the adjusting rod 55 of the second embodiment is formed
with an installation groove 567 that faces toward the limiting through hole 503. The
adjusting rod unit 54 further includes a driving block 59 that is movably mounted
to the installation groove 567 of the adjusting rod 55, and a rod resilient member
501 that has two opposite ends respectively abutting against the driving block 59
and the adjusting rod 55.
[0032] The driving block 59 is movable relative to the adjusting rod 55 in the front-rear
direction, and extends rearwardly through the limiting through hole 503. In this embodiment,
the driving block 59 is substantially triangle-shaped and tapers rearwardly. A height
of the driving block 59 is greater than that of a rear opening of the installation
groove 567 so that the driving block 59 is prevented from being separated from the
installation groove 567. The driving block 59 has an upper driving surface 591 that
is inclined downwardly toward the transmission arm 521, a lower driving surface 591'
that is inclined upwardly toward the transmission arm 521, and a driving tapered end
592 that is located between the upper and lower driving surfaces 591, 591'. The upper
and lower driving surfaces 591, 591' are respectively contactable with the upper and
lower limiting surfaces 504, 505 of the sleeve member 502.
[0033] The driven portion 523 of the transmission arm 521 of this embodiment has an upright
driven surface 526 that faces toward the adjusting rod 55 and that is contactable
with the driving tapered end 592 of the driving block 59.
[0034] The rod resilient member 501 is disposed in the installation groove 567 of the adjusting
rod 55, and resiliently biases the driving block 59 toward the transmission arm 521
away from the adjusting rod 55. In this embodiment, the rod resilient member 501 is
configured as a compression spring, and exerts a force greater than that exerted by
the arm resilient members 520.
[0035] The rotary switch 53 is rotatable among the right, middle and left positions to adjust
the steam emission rate of the second embodiment.
[0036] Referring to Figure 11, when the rotary switch 53 is rotated to the middle position,
the adjusting rod is at the low flow rate position, and the driving block 59 protrudes
out of the sleeve member 502 by a maximum extent with the upper and lower driving
surfaces 591, 591' thereof being respectively in contact with the upper and lower
limiting surfaces 504, 505 of the sleeve member 502. Since the rod resilient member
501 exerts a force greater than that exerted by the arm resilient members 520, the
driving block 59 pushes the transmission arm 521 against the biasing action of the
arm resilient members 520 to rotate the temperature adjuster 51 to lower the temperature
of the soleplate 32 (see Figure 8). At this time, the steam iron 2 is in the low steam
emission rate mode.
[0037] Referring to Figure 12, when the rotary switch 53 is rotated f rom the middle position
to the right position, the adjusting rod 55 is moved upwardly relative to the sleeve
member 502 to the high flow rate position. During the movement of the adjusting rod
55 from the low flow rate position to the high flow rate position, the upper limiting
surface 504 of the sleeve member 502 pushes the upper driving surface 591 of the driving
block 59 to move the driving block 59 away from the transmission arm 521, so that
the transmission arm 521 is biased by the arm resilient members 520 to move forwardly
to abut against the driving block 59 and that the temperature adjuster 51 is rotated
by the transmission arm 521 to raise the temperature of the soleplate 32. At this
time, the steam iron 2 is in the high steam emission rate mode.
[0038] Referring to Figure 13, when the rotary switch 53 is rotated from the middle position
to the left position, the adjusting rod 55 is moved downwardly relative to the sleeve
member 502 to the seal position. During the movement of the adjusting rod 55 from
the low flow rate position to the seal position, the lower limiting surface 505 of
the sleeve member 502 pushes the lower driving surface 591' of the driving block 59
to move the driving block 59 away from the transmission arm 521, so that the transmission
arm 521 is biased by the arm resilient members 520 to move forwardly to abut against
the driving block 59 and that the temperature adjuster 51 is rotated by the transmission
arm 521 to raise the temperature of the soleplate 32. At this time, the steam iron
2 is in the dry iron mode.
[0039] In summary, by virtue of the synchronous adjustment mechanism 5, when the steam emission
rate of the steam iron 2 is adjusted by manual operation of the rotary switch 53,
the temperature of the sole plate 32 is adjusted synchronously and accordingly. The
operation to switch the steam iron 2 of this disclosure among the different modes
is relatively convenient.
[0040] In the description above, for the purposes of explanation, numerous specific details
have been set forth in order to provide a thorough understanding of the embodiments.
It will be apparent, however, to one skilled in the art, that one or more other embodiments
may be practiced without some of these specific details. It should also be appreciated
that reference throughout this specification to "one embodiment," "an embodiment,"
an embodiment with an indication of an ordinal number and so forth means that a particular
feature, structure, or characteristic may be included in the practice of the disclosure.
It should be further appreciated that in the description, various features are sometimes
grouped together in a single embodiment, figure, or description thereof for the purpose
of streamlining the disclosure and aiding in the understanding of various inventive
aspects.
1. A synchronous adjustment mechanism (5) adapted for use in a steam iron (2) that includes
a soleplate (32),
characterized by:
an active module (800) operable to adjust steam emission rate of the steam iron (2);
and
apassivemodule (700) operable to adjust temperature of the soleplate (32), said active
module (800) and said passive module (700) being cooperatively associated with each
other, so that when said active module (800) is operated to adjust the steam emission
rate of the steam iron (2), said passive module (700) is driven by said active module
(800) to synchronously adjust the temperature of the soleplate (32).
2. The synchronous adjustment mechanism (5) as claimed in claim 1, characterized in that said active module (800) includes an adjusting rod unit (54) that is movable to adjust
the steam emission rate of the steam iron (2), and a switch (53) that is operable
to move said adjusting rod unit (54), said passive module (700) including a temperature
adjuster (51) that is capable of being driven to adjust the temperature of the soleplate
(32), and a transmission arm unit (52) that is capable of being driven by said adjusting
rod unit (54) to drive said temperature adjuster (51).
3. The synchronous adjustment mechanism (5) as claimed in claim 2, further characterized in that said switch (53) is operable to rotate among different positions so as to move said
adjusting rod unit (54) to adjust the steam emission rate of the steam iron (2), the
movement of said adjusting rod unit (54) synchronously driving said transmission arm
unit (52) to drive said temperature adjuster (51) so as to adjust the temperature
of the soleplate (32).
4. The synchronous adjustment mechanism (5) as claimed in claim 3, the steam iron (2)
including a main body (3) that has the soleplate (32), said synchronous adjustment
mechanism (5) further characterized in that said transmission arm unit (52) includes a transmission arm (521) that is adapted
to be mounted to the main body (3) and that is movable to drive said temperature adjuster
(51), said switch (53) being operable to rotate among a first limit positions, a second
limit position, and a middle position that is located between the first and second
positions, said adjusting rod unit (54) including an adjusting rod (55) that is pivotally
connected to said switch (53) to be driven by the rotation of said switch (53) so
as to adjust the steam emission rate of the steam iron (2) and that has a driving
portion (58) protruding toward said transmission arm (521), said driving portion (58)
being in contact with an upper portion of said transmission arm (521) when said switch
(53) is at the first limit position, said driving portion (58) being in contact with
a lower portion of said transmission arm (521) when said switch (53) is at the second
limit position, said driving portion (58) pushing said transmission arm (521) to drive
said temperature adjuster (51) when said switch (53) is rotated toward the middle
position from either one of the first and second limit positions.
5. The synchronous adjustment mechanism (5) as claimed in claim 4, further characterized in that said transmission arm (521) has a driven portion (523) that is in contact with said
driving portion (58) of said adjusting rod (55), said driven portion (523) having
an upper driven surface (524) that is inclined downwardly toward said adjusting rod
(55), a lower driven surface (524') that is inclined upwardly toward said adjusting
rod (55), and a driven tapered end (525) that is located between said upper and lower
driven surfaces (524, 524'), said driving portion (58) having an upper driving surface
(581) that is inclined downwardly toward said transmission arm (521), a lower driving
surface (581') that is inclined upwardly toward said transmission arm (521), and a
driving tapered end (582) that is located between said upper and lower driving surfaces
(581, 581'), said lower driving surface (581') of said driving portion (58) being
in contact with said upper driven surface (524) of said driven portion (523) when
said switch (53) is at the first limit position, said upper driving surface (581)
of said driving portion (58) being in contact with said lower driven surface (524')
of said driven portion (523) when said switch (53) is at the second limit position,
when said switch (53) is rotated away from either one of the first and second limit
positions to the middle position, a corresponding one of said upper and lower driving
surfaces (581, 581') of said driving portion (58) pushing a corresponding one of said
upper and lower driven surfaces (524, 524') of said driven portion (523) to move said
transmission arm (521) until the corresponding one of said upper and lower driving
surfaces (581, 581') and the corresponding one of said upper and lower driven surfaces
(524, 524') being separated from each other and said driving tapered end (582) being
in contact with said driven tapered end (525).
6. The synchronous adjustment mechanism (5) as claimed in claim 3, further characterized in that said transmission arm unit (52) includes a transmission arm (521) that is movable
to drive said temperature adjusted (51), said switch (53) being operable to rotate
among a first limit position, a second limit position, and a middle position that
is located between the first and second limit positions, said adjusting rod unit (54)
including an adjusting rod (55) that is moved by the rotation of said switch (53)
to adjust the steam emission rate of the steam iron (2), and a driving block (59)
and a rod resilient member (501) that are mounted to said adjusting rod (55), said
adjusting rod (55) being formed with an installation groove (567), said driving block
(59) being limitedly movably mounted to said installation groove (567), and partially
extending out of said installation groove (567), said rod resilient member (501) resiliently
biasing said driving block (59) away from said adjusting rod (55), said active module
(800) further including a sleeve member (502) that permits said adjusting rod (55)
to extend therethrough, said sleeve member (502) having a limiting through hole (503)
that corresponding in position to said installation groove (567), said driving block
(59) being biased by said rod resilient member (501) to extend out of said limiting
through hole (503) by a maximum extent and pushing against said transmission rod (521)
when said switch (53) is at the middle position, when said switch (53) is rotated
away from the middle position to either one of the first and second limit positions,
said adjusting rod (55) being moved relative to said sleeve member (502) by said switch
(53) such that said sleeve member (502) pushes said driving block (59) to move away
from said transmission arm (521) against the biasing action of said rod resilient
member (501) so as to permit said transmission rod (521) to move toward said adjusting
rod (55) to drive said temperature adjuster (51).
7. The synchronous adjustment mechanism (5) as claimed in claim 6, further characterized in that said transmission rod (521) has a driven portion (523), said sleeve member (502)
further having an upper limiting surface (504) that defines an upper edge of said
limiting through hole (503), and a lower limiting surface (505) that defines a lower
edge of said limiting through hole (503), said driving block (59) having an upper
driving surface (591) that is inclined downwardly toward said transmission arm (521),
and a lower driving surface (591') that is inclined upwardly toward said transmission
arm (521), said upper and lower driving surfaces (591, 591') of said driving block
(59) being respectively in contact with said upper and lower limiting surfaces (504,
505) of said sleeve member (502) when said switch (53) is at the middle position,
said upper limiting surface (504) pushing said upper driving surface (591) to move
said driving block (59) away from said transmission arm (521) when said switch (53)
is rotated away from the middle position to the first limit position, said lower limiting
surface (505) pushing said lower driving surface (591') to move said driving block
(59) away from said transmission arm (521) when said switch (53) is rotated away from
the middle position to the second limit position.
8. The synchronous adjustment mechanism (5) as claimed in claim 4, further characterized in that said transmission arm unit (52) further includes at least one arm resilient member
(520) that has two opposite ends respectively abutting against said main body (3)
and said transmission arm (521) for resiliently biasing said transmission arm (521)
to move toward said adjusting rod (55).
9. The synchronous adjustment mechanism (5) as claimed in claim 8, further characterized in that said temperature adjuster (51) has a pinion portion (511), said transmission arm
(521) further having a rack portion (528) that meshes with said opinion portion (511)
of said temperature adjuster (51).
10. The synchronous adjustment mechanism (5) as claimed in any one of claims 4 and 6,
the main body (3) of the steam iron (2) having an inlet hole (331) that fluidly communicates
a water chamber (35) and a steam chamber (33), said synchronous adjustment mechanism
(5) further characterized in that said adjusting rod (55) further having a rod portion (56) that is movably inserted
into the inlet hole (331) for adjusting flow rate of the water flowing from the water
chamber (35) into the steam chamber (33), said rod portion (56) having a fluid-tight
section (561), a low flow rate section (562) that extends downwardly from a lower
end of said fluid-tight section (561), and a high flow rate section (564) that extends
downwardly from a lower end of said low flow rate section (562), said low flow rate
section (562) having at least one low flow rate groove (563) that is formed in an
outer surrounding surface thereof, said high flow rate section (564) having at least
one high flow rate groove (565) that is formed in an outer surrounding surface thereof,
said high flow rate grooves (565) having a volume greater than that of said low flow
rate grooves (563), said adjusting rod (55) being moved by said switch (53) among
a high flow rate position where said switch (53) is at the first limit position and
where said high flow rate section (564) corresponds in position to said inlet hole
(331), a low flow rate position where said switch (53) is at the middle position and
where said low flow rate section (562) corresponds in position to said inlet hole
(331), and a seal position where said switch (53) is at the second limit position
and where said fluid-tight section (561) corresponds in position to and seals said
inlet hole (331).
11. A steam iron (2)
characterized by:
a main body (3) including a soleplate (32); and
a synchronous adjustment mechanism (5) disposed on said main body (3), and including
an active module (800) that is operable to adjust steam emission rate of said steam
iron (2), and
a passive module (700) that is operable to adjust temperature of said soleplate (32),
said active module (800) and said passive module (700) being cooperatively associated
with each other, so that when said active module (800) is operated to adjust the steam
emission rate of said steam iron (2), said passive module (700) is driven by said
active module (800) to synchronously adjust the temperature of said soleplate (32).
12. The steam iron (2) as claimed in claim 11, characterized in that said active module (800) includes an adjusting rod unit (54) that is movable to adjust
the steam emission rate of said steam iron (2), and a switch (53) that is operable
to move said adjusting rod unit (54), said passive module (700) including a temperature
adjuster (51) that is capable of being driven to adjust the temperature of said soleplate
(32), and a transmission arm unit (52) that is capable of being driven by said adjusting
rod unit (54) to drive said temperature adjuster (51).
13. The steam iron (2) as claimed in claim 12, further characterized in that said switch (53) is operable to rotate among different positions so as to move said
adjusting rod unit (54) to adjust the steam emission rate of said steam iron (2),
the movement of said adjusting rod unit (54) synchronously driving said transmission
arm unit (52) to drive said temperature adjuster (51) so as to adjust the temperature
of said soleplate (32).
14. The steam iron (2) as claimed in claim 13, further characterized in that said transmission arm unit (52) includes a transmission arm (521) that is mounted
to said main body (3) and that is movable to drive said temperature adjuster (51),
said switch (53) being operable to rotate among a first limit position, a second limit
position, and a middle position that is located between the first and second limit
positions, said adjusting rod unit (54) including an adjusting rod (55) that is pivotally
connected to said switch (53) to be driven by the rotation of said switch (53) so
as to adjust the steam emission rate of said steam iron (2) and that has a driving
portion (58) protruding toward said transmission arm (521), said driving portion (58)
being in contact with an upper portion of said transmission arm (521) when said switch
(53) is at the first limit position, said driving portion (58) being in contact with
a lower portion of said transmission arm (521) when said switch (53) is at the second
limit position, said driving portion (58) pushing said transmission arm (521) to drive
said temperature adjuster (51) when said switch (53) is rotated toward the middle
position from either one of the first and second limit positions.
15. The steam iron (2) as claimed in claim 14, further characterized in that said transmission arm (521) has a driven portion (523) that is in contact with said
driving portion (58) of said adjusting rod (55), said driven portion (523) having
an upper driven surface (524) that is inclined downwardly toward said adjusting rod
(55), a lower driven surface (524') that is inclined upwardly toward said adjusting
rod (55), and a driven tapered end (525) that is located between said upper and lower
driven surfaces (524, 524'), said driving portion (58) having an upper driving surface
(581) that is inclined downwardly toward said transmission arm (521), a lower driving
surface (581') that is inclined upwardly toward said transmission arm (521), and a
driving tapered end (582) that is located between said upper and lower driving surfaces
(581, 581'), said lower driving surface (581') of said driving portion (58) being
in contact with said upper driven surface (524) of said driven portion (523) when
said switch (53) is at the first limit position, said upper driving surface (581)
of said driving portion (58) being in contact with said lower driven surface (524')
of said driven portion (523) when said switch (53) is at the second limit position,
when said switch (53) is rotated away from either one of the first and second limit
positions to the middle position, a corresponding one of said upper and lower driving
surfaces (581, 581') of said driving portion (58) pushing a corresponding one of said
upper and lower driven surfaces (524, 524') of said driven portion (523) to move said
transmission arm (521) until the corresponding one of said upper and lower driving
surfaces (581, 581') and the corresponding one of said upper and lower driven surfaces
(524, 524') being separated from each other and said driving tapered end (582) being
in contact with said driven tapered end (525).
16. The steam iron (2) as claimed in claim 13, further characterized in that said transmission arm unit (52) includes a transmission arm (521) that is movable
to drive said temperature adjusted (51), said switch (53) being operable to rotate
among a first limit position, a second limit position, and a middle position that
is located between the first and second limit positions, said adjusting rod unit (54)
including an adjusting rod (55) that is moved by the rotation of said switch (53)
to adjust the steam emission rate of said steam iron (2), and a driving block (59)
and a rod resilient member (501) that are mounted to said adjusting rod (55), said
adjusting rod (55) being formed with an installation groove (567), said driving block
(59) being limitedly movably mounted to said installation groove (567), and partially
extending out of said installation groove (567), said rod resilient member (501) resiliently
biasing said driving block (59) away from said adjusting rod (55), said active module
(800) further including a sleeve member (502) that permits said adjusting rod (55)
to extend therethrough, said sleeve member (502) having a limiting through hole (503)
that corresponding in position to said installation groove (567), said driving block
(59) being biased by said rod resilient member (501) to extend out of said limiting
through hole (503) by a maximum extent and pushing against said transmission rod (521)
when said switch (53) is at the middle position, when said switch (53) is rotated
away from the middle position to either one of the first and second limit positions,
said adjusting rod (55) being moved relative to said sleeve member (502) by said switch
(53) such that said sleeve member (502) pushes said driving block (59) to move away
from said transmission arm (521) against the biasing action of said rod resilient
member (501) so as to permit said transmission rod (521) to move toward said adjusting
rod (55) to drive said temperature adjuster (51).
17. The steam iron (2) as claimed in claim 16, further characterized in that said transmission rod (521) has a driven portion (523), said sleeve member (502)
further having an upper limiting surface (504) that defines an upper edge of said
limiting through hole (503) and that is inclined upwardly toward said adjusting rod
(55), and a lower limiting surface (505) that defines a lower edge of said limiting
through hole (503) and that is inclined downwardly toward said adjusting rod (55),
said driving block (59) having an upper driving surface (591) and a lower driving
surface (591'), said upper and lower driving surfaces (591, 591') of said driving
block (59) being respectively in contact with said upper and lower limiting surfaces
(504, 505) of said sleeve member (502) when said switch (53) is at the middle position,
said upper limiting surface (504) pushing said upper driving surface (591) to move
said driving block (59) away from said transmission arm (521) when said switch (53)
is rotated away from the middle position to the first limit position, said lower limiting
surface (505) pushing said lower driving surface (591') to move said driving block
(59) away from said transmission arm (521) when said switch (53) is rotated away from
the middle position to the second limit position.
18. The steam iron (2) as claimed in claim 14, further characterized in that said transmission arm unit (52) further includes at least one arm resilient member
(520) that has two opposite ends respectively abutting against said main body (3)
and said transmission arm (521) for resiliently biasing said transmission arm (521)
to move toward said adjusting rod (55).
19. The steam iron (2) as claimed in claim 18, further characterized in that said temperature adjuster (51) has a pinion portion (511), said transmission arm
(521) further having a rack portion (528) that meshes with said pinion portion (511)
of said temperature adjuster (51).
20. The steam iron (2) as claimed in any one of claims 14 and 16, further characterized in that said main body (3) of said steam iron (2) has an inlet hole (331) that fluidly communicates
a water chamber (35) and a steam chamber (33), said adjusting rod (55) further having
a rod portion (56) that is movably inserted into said inlet hole (331) for adjusting
flow rate of the water flowing from said water chamber (35) into said steam chamber
(33), said rod portion (56) having a fluid-tight section (561), a low flow rate section
(562) that extends downwardly from a lower end of said fluid-tight section (561),
and a high flow rate section (564) that extends downwardly from a lower end of said
low flow rate section (562), said low flow rate section (562) having at least one
low flow rate groove (563) that is formed in an outer surrounding surface thereof,
said high flow rate section (564) having at least one high flow rate groove (565)
that is formed in an outer surrounding surface thereof, said high flow rate grooves
(565) having a volume greater than that of said low flow rate grooves (563), said
adjusting rod (55) being moved by said switch (53) among a high flow rate position
where said switch (53) is at the first limit position and where said high flow rate
section (564) corresponds in position to said inlet hole (331), a low flow rate position
where said switch (53) is at the middle position and where said low flow rate section
(562) corresponds in position to said inlet hole (331), and a seal position where
said switch (53) is at the second limit position and where said fluid-tight section
(561) corresponds in position to and seals said inlet hole (331).