CN205417327U - Car as a house is sojourned in to flexible - Google Patents

Car as a house is sojourned in to flexible Download PDF

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Publication number
CN205417327U
CN205417327U CN201620181674.0U CN201620181674U CN205417327U CN 205417327 U CN205417327 U CN 205417327U CN 201620181674 U CN201620181674 U CN 201620181674U CN 205417327 U CN205417327 U CN 205417327U
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China
Prior art keywords
turnover panel
deformable
side wall
fulcrum
top board
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CN201620181674.0U
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Chinese (zh)
Inventor
石建立
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Beijing New Kbb Intelligent Technology Co Ltd
BEIJING ZHUYOUBANG RECREATIONAL INVESTMENT Co Ltd
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Beijing New Kbb Intelligent Technology Co Ltd
BEIJING ZHUYOUBANG RECREATIONAL INVESTMENT Co Ltd
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Priority to CN201620181674.0U priority Critical patent/CN205417327U/en
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Abstract

The utility model discloses a car as a house is sojourned in to flexible. Based on the utility model discloses, car as a house is sojourned in to flexible can enough remove with the vehicle form, also can provide living space with the house form. Specifically, this car as a house is sojourned in to flexible has the natural width space that lies in fixed floor top to, through elevating system, move side wall, flexible floor and turn over the folding roof board at the synergy of the first side on fixed floor, car as a house is sojourned in to flexible still has telescopic extension width space in the first side in natural width space. Thereby car as a house is sojourned in to flexible is in the less volume of the removal of being convenient for in the time of can contracting in extension width space to make the inner space expand expanding the stack of passing through natural width space and extension width space when extend in the space. In addition, the natural width space can be surrounded with fixed floor by the fixed side wall and the roof that slides and form, makes the appearance structure of car as a house is sojourned in to flexible when the inner space is expanded harmonious, pleasing to the eye.

Description

Deformable Sojourn house car
Technical field
This utility model relates to a kind of deformable Sojourn house car, and this deformable Sojourn house car can either move with vehicle form, it is also possible to provide living space with house form.
Background technology
The continuous popularization lived along with " vapour residence " metaplasia, Sojourn house car (being commonly called as " caravan ") gradually being generalized.Under normal circumstances, for the ease of travelling, the volume of Sojourn house car is unsuitable excessive, and this necessarily causes the space in Sojourn house car to be extremely limited.But, for the consideration of comfortableness, Sojourn house car is had great expectations of the space that can provide well-to-do as building again.
Thus, not only can travel with less volume as Sojourn house car, but also when parked, current a kind of demand can be become by the deformable Sojourn house car of extending space.
Utility model content
Embodiment of the present utility model provides a kind of deformable Sojourn house car, and it can be moved to have the vehicle form of smaller size smaller and can be in house form by extending space.
In this embodiment, deformable Sojourn house car includes:
Wheel mechanism;
Fixed floor, this fixed floor is positioned at the top of wheel mechanism;
Elevating mechanism, this elevating mechanism is installed in the first side of fixed floor, further, the top of this elevating mechanism has the top board fulcrum that back and forth can lift between default low level and a high position, and the bottom of this elevating mechanism has the first skeleton fulcrum that back and forth can lift in the lower section of aforementioned low level;
Movable side wall, this movable side wall has the degree of freedom of the first side alternating translational relative to fixed floor;
Expansion floor, this expansion floor is installed in the first side of fixed floor having can follow the degree of freedom that the translation position of movable side wall is flexible;
Turnover top board, this turnover top board includes the first turnover panel and the second turnover panel, and, the first turnover panel and the second turnover panel cascade the top being hinged to movable side wall from the top board fulcrum of elevating mechanism;
First skeleton, this first skeleton includes first connecting rod and second connecting rod, and, first connecting rod and second connecting rod cascade, from the first skeleton fulcrum of elevating mechanism, the pin joint being hinged between the first turnover panel and the second turnover panel;
Actuating unit, this actuating unit drives the first skeleton and elevating mechanism coordinated, changed by the attitudes vibration of the first skeleton and the position of top board fulcrum and the first skeleton fulcrum, be constrained to the motion path of the pin joint between the first turnover panel and the second turnover panel be formed by following track order or backward linking:
Centered by the top board fulcrum being positioned at low level the track of unidirectional swing, centered by the top of movable side wall the track of unidirectional swing, centered by the top board fulcrum being positioned at a high position track of unidirectional swing;
Wherein, the unidirectional swing centered by the top board fulcrum being positioned at low level of the pin joint between the first turnover panel and the second turnover panel causes movable side wall to translate.
Alternatively, the pin joint between the first turnover panel and the second turnover panel is the process of unidirectional swing centered by the top board fulcrum being positioned at a high position, makes the first turnover panel and the second turnover panel in crossing indent, parallel splicing, intersects order or backward switching between the attitude arched upward;Further, between the first turnover panel with the second turnover panel, the attitude of parallel splicing makes movable side wall tilt.
Alternatively, the first skeleton is positional support first turnover panel of parallel docking with first connecting rod and second connecting rod and the second turnover panel intersects and arches upward.
Alternatively, this deformable Sojourn house car farther includes:
Parked mechanism, this parked mechanism is telescopically installed in the lower section of fixed floor, and, parked mechanism has deployed condition and the release contraction state to the spacing constraint of wheel mechanism that wheel mechanism can be formed spacing constraint.
Alternatively, this deformable Sojourn house car farther includes:
Telescoping bracket, this telescoping bracket is telescopically installed in the lower section of fixed floor, and, telescoping bracket has the deployed condition that can support the expansion floor formation stretched and the contraction state of the lower section that can be retracted to fixed floor.
Alternatively, expansion floor is included between the first side and the bottom of movable side wall of fixed floor and cascades hinged at least two piece jigsaw, with the translation with movable side wall realize in the first side of fixed floor flexible.
Alternatively, elevating mechanism includes:
Column, this column has cylindrical cavities and the outer wall of cincture cylindrical cavities of hollow;
Strut, this strut is located in the cylindrical cavities of column, and, strut has lifting degree of freedom flexible above column;
First sliding sleeve, this first sliding sleeve is set in the outer wall of column, and, the first sliding sleeve has the lifting degree of freedom slided in the altitude range of column;
Wherein, aforesaid top board fulcrum is formed at the top of strut, and aforesaid first skeleton fulcrum is formed at the outer wall of the first sliding sleeve.
Alternatively, the bottom of elevating mechanism has the second skeleton fulcrum that back and forth can lift in the lower section of aforementioned low level further, and, this deformable Sojourn house car farther includes:
Fixing side wall, this fixing side wall is installed in second side contrary with the first side of fixed floor;
Sliding top board, this sliding top board includes the 3rd turnover panel, the 4th turnover panel and the 5th turnover panel, 3rd turnover panel, the 4th turnover panel and the 5th turnover panel cascade hinged from the top board fulcrum of elevating mechanism, and, the 5th turnover panel being positioned at cascade end is slide hinged with the top of fixing side wall;
Second skeleton, this second skeleton includes third connecting rod and fourth link, and, third connecting rod and fourth link cascade, from the second skeleton fulcrum of elevating mechanism, the pin joint being hinged between the 3rd turnover panel and the 4th turnover panel;
Actuating unit drives the second skeleton and elevating mechanism coordinated further, changed by the attitudes vibration of the second skeleton and the position of top board fulcrum and the second skeleton fulcrum, be constrained to the motion path of the pin joint between the 3rd turnover panel and the 4th turnover panel be formed by following track order or backward linking:
By the track of swing unidirectional centered by the top board fulcrum of low level, centered by the sliding hinge contact between the 5th turnover panel and fixing side wall the track of reciprocating swing, centered by the top board fulcrum being positioned at a high position track of unidirectional swing.
Wherein, the pin joint between the 3rd turnover panel and the 4th turnover panel causes the sliding hinge contact between the 5th turnover panel and fixing side wall to move along the 5th turnover panel by the unidirectional swing centered by the top board fulcrum of low level;And, pin joint between the 3rd turnover panel and the 4th turnover panel reciprocating swing and centered by the top board fulcrum being positioned at a high position during unidirectional swing centered by the sliding hinge contact between the 5th turnover panel and fixing side wall, the sliding hinge contact between the 5th turnover panel and fixing side wall is constrained on the position away from the 4th turnover panel and the 5th turnover panel and the 4th turnover panel is confined to parallel docking.
Alternatively, pin joint between the 3rd turnover panel and the 4th turnover panel reciprocating swing and centered by the top board fulcrum being positioned at a high position during unidirectional swing centered by the sliding hinge contact between the 5th turnover panel and fixing side wall, the 3rd turnover panel and the 4th turnover panel are confined to crossing arching upward;Further, when the sliding hinge contact between the 5th turnover panel and fixing side wall moves to the pin joint between the 5th turnover panel and the 4th turnover panel, the 3rd turnover panel and the 4th turnover panel parallel docking.
Alternatively, the second skeleton is positional support the 3rd turnover panel of parallel docking with third connecting rod and fourth link and the 4th turnover panel intersects and arches upward.
Alternatively, when the sliding hinge contact between the 5th turnover panel and fixing side wall moves to the pin joint between the 5th turnover panel and the 4th turnover panel, between the 4th turnover panel and the 5th turnover panel, the constraint of parallel docking is released.
Alternatively, elevating mechanism includes:
Column, this column has cylindrical cavities and the outer wall of cincture cylindrical cavities of hollow;
Strut, this strut is located in the cylindrical cavities of column, and, strut has lifting degree of freedom flexible above column;
First sliding sleeve, this first sliding sleeve is set in the outer wall of column, and, the first sliding sleeve has the lifting degree of freedom slided in the altitude range of column;
Second sliding sleeve, this second sliding sleeve is set in the outer wall of column, and, the second sliding sleeve has the lifting degree of freedom slided that interlocks in the altitude range of column with the first sliding sleeve;
Wherein, aforesaid top board fulcrum is formed at the top of strut, and aforesaid first skeleton fulcrum is formed at the outer wall of the first sliding sleeve, and aforesaid second skeletal support point is formed at the outer wall of the second sliding sleeve.
The most visible, based on the above embodiments, deformable Sojourn house car can either move with vehicle form, it is also possible to provides living space with house form.Specifically, this deformable Sojourn house car has the natural width space being positioned at above fixed floor, and, by elevating mechanism, movable side wall, expansion floor and the turnover top board coordinated in the first side of fixed floor, deformable Sojourn house car also has telescopic extension width space in first side in natural width space.Thus, deformable Sojourn house car can be in the smaller size smaller being easy to movement when extension width space contraction, and makes inner space to be extended by natural width space with superposing of extension width space when extending space stretches.Additionally, natural width space can be formed with fixed floor encirclement by fixing side wall and sliding top board, and, sliding top board can with formed the elevating mechanism in extension width space, movable side wall, expansion floor and turnover top board coordinated so that when deformable Sojourn house car extend in inner space external form structure coordination, attractive in appearance.
Accompanying drawing explanation
Fig. 1 a and Fig. 1 b is the structural representation under two states of the deformable Sojourn house car in an embodiment;
Fig. 2 a to Fig. 2 e is Fig. 1 a and handoff procedure schematic diagram between the two states shown in Fig. 1 b;
Fig. 3 a and Fig. 3 b is the structural representation under two states of the deformable Sojourn house car in another embodiment;
Fig. 4 a to Fig. 4 f is Fig. 3 a and handoff procedure schematic diagram between the two states shown in Fig. 3 b;
Fig. 5 a to Fig. 5 d is the schematic diagram of the contraction state of the telescoping bracket using a kind of preferred structure;
Fig. 6 a to Fig. 6 d is the schematic diagram of the deployed condition of the telescoping bracket using a kind of preferred structure;
Fig. 7 a to Fig. 7 c is the schematic diagram that the telescoping bracket of contraction state is installed in deformable Sojourn house car;
Fig. 8 a to Fig. 8 c is the schematic diagram that the telescoping bracket of deployed condition is installed in deformable Sojourn house car.
Detailed description of the invention
For making the purpose of this utility model, technical scheme and advantage clearer, develop simultaneously embodiment referring to the drawings, further describes this utility model.
Referring to Fig. 1 a and Fig. 1 b, in one embodiment, deformable Sojourn house car includes: wheel mechanism 11, fixed floor 12, elevating mechanism 20, movable side wall 30, turnover top board the 40, first skeleton 50, expansion floor 60.
Fixed floor 12 is positioned at the top of wheel mechanism 11.
Elevating mechanism 20 is installed in the first side of fixed floor 12, and, the top of this elevating mechanism 20 has the top board fulcrum 200 that back and forth can lift between default low level H1 and high-order H2, and the bottom of this elevating mechanism 20 has the first skeleton fulcrum 201 that back and forth can lift in the lower section of aforementioned low level H1.
Such as, elevating mechanism 20 can include column 21, strut the 22, first sliding sleeve 23.Column has cylindrical cavities and the outer wall of cincture cylindrical cavities of hollow.Strut 22, this strut 22 is located in the cylindrical cavities of column 21, and, strut 22 has lifting degree of freedom flexible above column.First sliding sleeve 23 is set in the outer wall of column 21, and, the first sliding sleeve 23 has the lifting degree of freedom slided in the altitude range of column 21.
Correspondingly, top board fulcrum 200 can be formed at the top of strut 22, and the first skeleton fulcrum 201 is formed at the outer wall of the first sliding sleeve 23.
Movable side wall 30 has the degree of freedom of the first side alternating translational relative to fixed floor 12.
Turnover top board 40 includes the first turnover panel 41 and the second turnover panel 42, and, the first turnover panel 41 and the second turnover panel 42 cascade the top 300 being hinged to movable side wall 30 from the top board fulcrum 200 of elevating mechanism 20.
First skeleton 50 includes first connecting rod 51 and second connecting rod 52, and, first connecting rod 51 and second connecting rod 52 cascade, from the first skeleton fulcrum 201 of elevating mechanism 20, the pin joint 400 being hinged between the first turnover panel 41 and the second turnover panel 42.
Expansion floor 60 is installed in the first side of fixed floor 12 having can follow the degree of freedom that the translation position of movable side wall 30 is flexible.Such as, expansion floor 60 can be included between the first side of fixed floor 12 and the bottom of movable side wall 30 and cascade hinged two piece jigsaw 61 and 62, realizes stretching in the first side of fixed floor 12 with the translation with movable side wall 30.That is, expansion floor 60 can be to use the form of turnover board, it is achieved the jigsaw quantity of turnover splicing can be not limited to two pieces, but can be more than two pieces.It addition, expansion floor 60 can also use flat runner or other forms.
Visible by comparison diagram 1a and Fig. 1 b, the state of fixed floor 12 does not change, and the state of elevating mechanism 20, movable side wall 30, turnover top board the 40, first skeleton 50 and expansion floor 60 all can change.Wherein, the first skeleton 50 and elevating mechanism 20 can be as the driving links of change, and movable side wall 30, turnover top board 40 and expansion floor 60 then can be as the driven members of change.
Correspondingly, this deformable Sojourn house car can also include: actuating unit (illustrates) the most in the various figures, this actuating unit can drive the first skeleton 50 and elevating mechanism 20 coordinated, changed by the attitudes vibration of the first skeleton 50 and the position of top board fulcrum 200 and the first skeleton fulcrum 201, be constrained to the motion path of the pin joint 400 between the first turnover panel 41 with the second turnover panel 42 be connected by following track order or backward form:
The track A1-A2 of unidirectional swing centered by the top board fulcrum 200 being positioned at low level H1;
The track A2-A3 of unidirectional swing centered by the top 300 of movable side wall 30;
The track A3-A4 of unidirectional swing centered by the top board fulcrum 200 being positioned at high-order H2.
And, the pin joint 400 between first turnover panel 41 and the second turnover panel 42 unidirectional swing A 1-A2 centered by the top board fulcrum 200 being positioned at low level H1, the movable side wall 30 as driven member can be caused to translate along track B1-B2, and then, expansion floor 60 can stretch along with the translation of movable side wall 30.
Thus, the fixed floor 12 that state does not changes can provide natural width space 10 for deformable Sojourn house car above it, and, elevating mechanism 20, movable side wall 30, turnover top board the 40, first skeleton 50 and expansion floor 60 are changed by above-mentioned state, can provide telescopic extension width space in first side in natural width space 10 for deformable Sojourn house car.
Namely, when deformable Sojourn house car is in the state shown in Fig. 1 a, this deformable Sojourn house car only includes natural width space 10 so that moving (such as towing) to have the vehicle form of smaller size smaller, correspondingly, it is believed that the state of the deformable Sojourn house car shown in Fig. 1 a is transition state.And, when deformable Sojourn house car is in the state shown in Fig. 1 b, this deformable Sojourn house car includes natural width space 10 and extension width space simultaneously, so that inner space is extended, correspondingly, it is believed that the state of the deformable Sojourn house car shown in Fig. 1 b is parked state.
When actually used, the structure shrinking the first side being stacked in fixed floor 12 can cause the center of gravity of deformable Sojourn house car to offset to the first side, therefore, in second side (relative with the first side) of fixed floor 12, deformable Sojourn house car can be carried out suitable counterweight, make the position of centre of gravity of the deformable Sojourn house car under migration model be positioned at or the centre position of both sides wheel generally within wheel mechanism 11.Such as, natural width space 10 can be configured to the space equipped with fixation means such as such as kitchen, toilet etc., and these fixation means are disposed adjacent to the second side of fixed floor 12, and extension width space is then configurable to horizontal or equipped with light weight facilities such as air mattings living room.
It can also be seen that this deformable Sojourn house car can also include from Fig. 1 b:
Parked mechanism 13; this parked mechanism 13 is telescopically installed in the lower section of fixed floor 12; further, this parked mechanism 13 has deployed condition (when deformable Sojourn house car is in the parked pattern shown in Fig. 1 b) and the release contraction state (when deformable Sojourn house car is in the migration model shown in Fig. 1 a) to the spacing constraint of wheel mechanism 11 that wheel mechanism 11 can be formed spacing constraint;
Telescoping bracket 14, this telescoping bracket 14 is telescopically installed in the lower section of fixed floor 12, further, this telescoping bracket 14 has and the expansion floor 60 stretched can be formed the deployed condition (when deformable Sojourn house car is in the parked pattern shown in Fig. 1 b) supported and can be retracted to the contraction state (when deformable Sojourn house car is in the migration model shown in Fig. 1 a and not shown in Fig. 1 a this telescoping bracket 14 of contraction state) of lower section of fixed floor 12.
In order to make the first side in natural width space 10 provide telescopic extension width space more aesthetically pleasing for deformable Sojourn house car, when deformable Sojourn house car is in parked pattern, the first turnover panel 41 and the second turnover panel 42 can intersect and arch upward.Therefore, pin joint 400 between first turnover panel 41 and the second turnover panel 42 is the process of unidirectional swing centered by the top board fulcrum 200 being positioned at high-order H2, the first turnover panel 41 and the second turnover panel 42 can be made in crossing indent, parallel splicing, intersect order or backward switching between the attitude arched upward;Further, between the first turnover panel 41 with the second turnover panel 42, the attitude of parallel splicing makes movable side wall 30 tilt.
And in order to the crossing state that arches upward enabling the first turnover panel 41 and the second turnover panel 42 is the most firm, the first skeleton 50 arches upward with positional support the first turnover panel 41 in parallel docking of first connecting rod 51 and second connecting rod 52 and the second the crossing of turnover panel 42.
It is understood that on the paper direction being parallel to Fig. 1 a and Fig. 1 b, deformable Sojourn house car can also have the flexible exterior wall of the variable condition coordinating movable side wall 30, turnover top board 40 and expansion floor 60, to form the extension width space closed.Further, deformable Sojourn house car can also have outer gateway mechanism, in order to user enters deformable Sojourn house car from extension width space.
In order to be more fully understood that the principle that above-mentioned deformable Sojourn house car switches between migration model and parked pattern, while seeing Fig. 1 a and Fig. 1 b, please combine Fig. 2 a to Fig. 2 e.
(1) the expansion process switched to parked pattern from migration model, change according to the order of Fig. 1 a, Fig. 2 a, Fig. 2 b, Fig. 2 c, Fig. 2 d, Fig. 2 e and Fig. 1 b, the motion path of the pin joint 400 between the first turnover panel 41 with the second turnover panel 42 is connected by track A1-A2, track A2-A3, track A3-A4 order, that is, A1-A2-A3-A4.
Step11, is changed to Fig. 2 b from Fig. 1 a through Fig. 2 a:
The top board fulcrum 200 of elevating mechanism 20 is positioned at low level H1, the height of the first skeleton fulcrum 201 also keeps constant, and, the first connecting rod 51 of the first skeleton 50 and second connecting rod 52 form linkage under the driving of power part, order about the pin joint 400 between the first turnover panel 41 and the second turnover panel 42 centered by the top board fulcrum 200 being positioned at low level H1 along the unidirectional swing of track A1-A2, that is, this swing process is with the first turnover panel 41 as radius;
Correspondingly, movable side wall 30 translates up in the side away from elevating mechanism 20, i.e. the summit of movable side wall 30 translates along track B1-B2;Further, two pieces of jigsaw 61 and 62 of expansion floor 60 launch, i.e. the pin joint 600 of jigsaw 61 and 62 is along the unidirectional swing of track C1-C2.
It addition, parked mechanism 13 can switch to the deployed condition shown in Fig. 2 a and Fig. 2 b from the contraction state shown in Fig. 1 a, so that wheel mechanism 11 is formed spacing constraint;Further, telescoping bracket 14 can switch to the deployed condition shown in Fig. 2 a and Fig. 2 b from contraction state, to support the expansion floor 60 launched.
Step12, is changed to Fig. 2 d from Fig. 2 b through Fig. 2 c:
The top board fulcrum 200 of elevating mechanism 20 rises to high-order H2 from low level H1 under the driving of power part, first skeleton fulcrum 201 also raises under the driving of power part, and, the first connecting rod 51 of the first skeleton 50 and second connecting rod 52 form linkage under the driving of power part, order about the pin joint 400 between the first turnover panel 41 and the second turnover panel 42 centered by the top 300 of movable side wall 30 along the unidirectional swing of track A2-A3, that is, this swing process is with the second turnover panel 42 as radius;
In the process, movable side wall 30 keeps current location, i.e. the summit 300 of movable side wall 30 is maintained at B2 position;Further, two pieces of jigsaw 61 and 62 of expansion floor 60 still keep deployed condition.
It addition, parked mechanism 13 and telescoping bracket 14 still keep deployed condition.
Step13, is changed to Fig. 1 b from Fig. 2 d change through Fig. 2 e:
The top board fulcrum 200 of elevating mechanism 20 is maintained at high-order H2, the height of the first skeleton fulcrum 201 also keeps constant, and, the first connecting rod 51 of the first skeleton 50 and second connecting rod 52 form linkage under the driving of power part, order about the pin joint 400 between the first turnover panel 41 and the second turnover panel 42 centered by the top board fulcrum 200 being positioned at high-order H2 along the unidirectional swing of track A3-A4, i.e., this swing process is with the first turnover panel 41 as radius, further, the first turnover panel 41 is intersecting indent, parallel splicing with the second turnover panel 42, is intersecting order switching between the attitude arched upward;
Correspondingly, state by the first turnover panel 41 shown in experience Fig. 2 e with the second parallel splicing of turnover panel 42, the top 300 of movable side wall 30 is return after the direction away from elevating mechanism 20 tilts, i.e., the first tailing edge track B2-B3 in the top 300 of movable side wall 30 and B3-B4 reciprocally swinging, this swing process centered by the pin joint between movable side wall 30 and expandable bottom plate 60 and with this side wall 30 from as radius, and, the position of B4 and the location overlap of B2.
In the process, two pieces of jigsaw 61 and 62 of expansion floor 60 still keep deployed condition.
It addition, parked mechanism 13 and telescoping bracket 14 still keep deployed condition.
(2) the expansion process switched to migration model from parked pattern, change according to the order of Fig. 1 b, Fig. 2 e, Fig. 2 d, Fig. 2 c, Fig. 2 b, Fig. 2 a and Fig. 1 a, the motion path of the pin joint 400 between the first turnover panel 41 with the second turnover panel 42 is connected by track A1-A2, track A2-A3, track A3-A4 backward, that is, A4-A3-A2-A1.
Step21, is changed to Fig. 2 d from Fig. 1 b change through Fig. 2 e:
The top board fulcrum 200 of elevating mechanism 20 is positioned at low level H1, the height of the first skeleton fulcrum 201 keeps constant, and, the first connecting rod 51 of the first skeleton 50 and second connecting rod 52 form linkage under the driving of power part, order about the pin joint 400 between the first turnover panel 41 and the second turnover panel 42 centered by the top board fulcrum 200 being positioned at high-order H2 along the unidirectional swing of track A4-A3, i.e., this swing process is with the first turnover panel 41 as radius, further, the first turnover panel 41 and the second turnover panel 42 arch upward, parallel splicing, intersect order switching between the attitude of indent intersecting;
Correspondingly, state by the first turnover panel 41 shown in experience Fig. 2 e with the second parallel splicing of turnover panel 42, the top 300 of movable side wall 30 is return after the direction away from elevating mechanism 20 tilts, i.e., the first tailing edge track B4-B3 in the top 300 of movable side wall 30 and B3-B2 reciprocally swinging, this swing process centered by the pin joint between movable side wall 30 and expandable bottom plate 60 and with this side wall 30 from as radius.
In the process, two pieces of jigsaw 61 and 62 of expansion floor 60 keep deployed condition.
It addition, parked mechanism 13 and telescoping bracket 14 are in and hold deployed condition.
Step22, is changed to Fig. 2 b from Fig. 2 d through Fig. 2 c:
The top board fulcrum 200 of elevating mechanism 20 is down to low level H1 from high-order H2 under the driving of power part, first skeleton fulcrum 201 also reduces under the driving of power part, and, the first connecting rod 51 of the first skeleton 50 and second connecting rod 52 form linkage under the driving of power part, order about the pin joint 400 between the first turnover panel 41 and the second turnover panel 42 centered by the top 300 of movable side wall 30 along the unidirectional swing of track A3-A2, that is, this swing process is with the second turnover panel 42 as radius;
In the process, movable side wall 30 keeps current location, i.e. the summit 300 of movable side wall 30 is maintained at B2 position;Further, expansion floor 60 keeps deployed condition.
It addition, parked mechanism 13 and telescoping bracket 14 are still in holding deployed condition.
Step23, is changed to Fig. 1 a from Fig. 2 b through Fig. 2 a:
The top board fulcrum 200 of elevating mechanism 20 is positioned at low level H1, the height of the first skeleton fulcrum 201 also keeps constant, and, the first connecting rod 51 of the first skeleton 50 and second connecting rod 52 form linkage under the driving of power part, order about the pin joint 400 between the first turnover panel 41 and the second turnover panel 42 centered by the top board fulcrum 200 being positioned at low level H1 along the unidirectional swing of track A2-A1, that is, this swing process is with the first turnover panel 41 as radius;
Correspondingly, movable side wall 30 translates up in the side near elevating mechanism 20, i.e. the summit of movable side wall 30 translates along track B2-B1;Further, two pieces of jigsaw 61 and 62 of expansion floor 60 are drawn close, i.e. the pin joint 600 of jigsaw 61 and 62 is along the unidirectional swing of track C2-C1.
It addition, parked mechanism 13 can switch to the contraction state shown in Fig. 1 a from the deployed condition shown in Fig. 2 a and Fig. 2 b, to release the spacing constraint to wheel mechanism 11;Further, telescoping bracket 14 can switch to contraction state from the deployed condition shown in Fig. 2 a and Fig. 2 b.
Above explanation, is directed to the dependency structure with extension width space in deformable Sojourn house car.And for the natural width space 10 of deformable Sojourn house car, can use and the structure of extension width interference fit, it would however also be possible to employ independent of the structure in extension width space.
In another embodiment, the natural width space 10 of deformable Sojourn house car have employed and the structure of extension width interference fit.
Refer to Fig. 3 a and Fig. 3 b, the migration model of Fig. 3 a corresponding diagram 1a, the parked pattern of Fig. 3 b corresponding diagram 1b.As shown in Figure 3 a and Figure 3 b shows, deformable Sojourn house car includes the wheel mechanism 11 identical or essentially identical with Fig. 1 a and Fig. 1 b, fixed floor 12, parked mechanism 13, telescoping bracket 14, elevating mechanism 20, movable side wall 30, turnover top board the 40, first skeleton 50, expansion floor 60.Further, as shown in Figure 3 a and Figure 3 b shows, this deformable Sojourn house car still further comprises fixing side wall 70, sliding top board 80 and the second skeleton 90.
Fixing side wall 70 is installed in second side (contrary with the first side) of fixed floor 12.
Sliding top board 80 includes the 3rd turnover panel the 81, the 4th turnover panel 82 and the 5th turnover panel 83,3rd turnover panel the 81, the 4th turnover panel 82 and the 5th turnover panel 83 cascade hinged from the top board fulcrum 200 of elevating mechanism 20, further, the 5th turnover panel 83 being positioned at cascade end is slide hinged with the top 700 of fixing side wall 70.
Second skeleton 90 includes third connecting rod 91 and fourth link 92, and, the second skeleton fulcrum 202 that third connecting rod 91 and fourth link 92 farther include from elevating mechanism 20 cascades the pin joint 801 being hinged between the 3rd turnover panel 81 and the 4th turnover panel 82.
Wherein, elevating mechanism 20 may further include the second sliding sleeve 24, and this second sliding sleeve 24 is set in the outer wall of column 21, and, the second sliding sleeve 24 has the lifting degree of freedom sliding and dodging the first sliding sleeve 23 in the altitude range of column 21.Correspondingly, human skeleton fulcrum 202 is formed at the outer wall of the second sliding sleeve 24.
Actuating unit drives the second skeleton 90 and elevating mechanism 20 coordinated further, changed by the attitudes vibration of the second skeleton 90 and the position of top board fulcrum 200 and the second skeleton fulcrum 202, be constrained to the motion path of the pin joint 801 between the 3rd turnover panel 81 and the 4th turnover panel 82 be connected by following track order or backward form:
The track D1-D2 of unidirectional swing centered by the top board fulcrum 200 being positioned at low level H1;
The track D2-D3-D4 of reciprocating swing centered by the sliding hinge contact 700 between the 5th turnover panel 83 and fixing side wall 70;
The track D4-D5 of unidirectional swing centered by the top board fulcrum 200 being positioned at high-order H2.
Pin joint 801 between 3rd turnover panel 81 and the 4th turnover panel 82 along the unidirectional swing of track D1-D2, can cause the sliding hinge contact 700 between the 5th turnover panel 83 and fixing side wall 70 to move along the 5th turnover panel 83 centered by the top board fulcrum 200 being positioned at low level H1;
Pin joint 801 between the 3rd turnover panel 81 and the 4th turnover panel 82 centered by the sliding hinge contact 700 between the 5th turnover panel 83 and fixing side wall 70 along track D2-D3-D4 reciprocating swing, and along during the unidirectional swing of track D4-D5 centered by the top board fulcrum 200 being positioned at high-order H2, sliding hinge contact 700 between 5th turnover panel 83 and fixing side wall 70 is constrained on the position away from the 4th turnover panel 82, and the 5th turnover panel 83 and the 4th turnover panel 82 are confined to parallel docking, make pin joint 801 with the effective radius of the 5th turnover panel 83 and the 4th turnover panel 82 parallel docking formation along track D2-D3-D4 reciprocating swing.
Thus, natural width space 10 can be formed with fixed floor 12 encirclement by fixing side wall 70 and sliding top board 80, further, in the case of natural width space 10 width is constant, the change of sliding top board 80 can make intrinsic space 10 mate the shape in extension width space.
It can also be seen that from Fig. 3 a and Fig. 3 b, pin joint 801 between the 3rd turnover panel 81 and the 4th turnover panel 82 centered by the sliding hinge contact 700 between the 5th turnover panel 83 and fixing side wall 70 along track D2-D3-D4 reciprocating swing, and along during the unidirectional swing of track D1-D2 centered by the top board fulcrum 200 being positioned at high-order H2, 3rd turnover panel 81 is confined to intersect with the 4th turnover panel 82 and arches upward, so that the top in natural width space is mated turnover top board 40 and is utilized the first turnover panel 41 and the second turnover panel 42 to intersect the shape formed that arches upward when deformable Sojourn house car is in parked pattern.
Correspondingly, in order to the crossing state that arches upward enabling the 3rd turnover panel 91 and the 4th turnover panel 92 is the most firm, the second skeleton 90 arches upward with positional support the 3rd turnover panel 81 in parallel docking of third connecting rod 91 and fourth link 92 and the 4th the crossing of turnover panel 92.Thus, pin joint 801 between 3rd turnover panel 81 and the 4th turnover panel 84 along the process of the unidirectional swing of D4-D5, can make the third connecting rod 91 of the second skeleton 90 and fourth link 92 intersect switching between the attitude of parallel docking centered by the top board fulcrum 200 being positioned at high-order H2.
And, when sliding hinge contact 700 between the 5th turnover panel 83 and fixing side wall 70 moves to the pin joint 802 between the 5th turnover panel 83 and the 4th turnover panel 82,3rd turnover panel 81 and the 4th turnover panel 82 parallel docking and between the 4th turnover panel 82 and the 5th turnover panel 83 constraint of parallel docking be released, so that natural width space forms smooth shape when deformable Sojourn house car is in migration model, in order to the migration of deformable Sojourn house car.
It is understandable that, on the paper direction being parallel to Fig. 3 a and Fig. 3 b, deformable Sojourn house car can also have the flexible outer wall portion of the variable condition coordinating movable side wall 30, turnover top board 40 and expansion floor 60, and there is the flexible outer wall portion of variable condition coordinating sliding top board 80, to form the extension width space and natural width space closed.Further, deformable Sojourn house car can also have outer gateway mechanism, in order to user enters deformable Sojourn house car from extension width space or natural width space.
In order to be more fully understood that the principle that above-mentioned deformable Sojourn house car coordinates extension width space to switch with natural width space 10, while seeing Fig. 3 a and Fig. 3 b, please combine Fig. 4 a to Fig. 4 f.
(1) the expansion process switched to parked pattern from migration model, changes according to the order of Fig. 3 a, Fig. 4 a, Fig. 4 b, Fig. 4 c, Fig. 4 d, Fig. 4 e, Fig. 4 f and Fig. 3 b.In the process, the motion path of the pin joint 400 between the first turnover panel 41 with the second turnover panel 42 is connected by track A1-A2, track A2-A3, track A3-A4 order, i.e. A1-A2-A3-A4;The motion path of the pin joint 801 between the 3rd turnover panel 81 and the 4th turnover panel 82 is connected by track D1-D2, track D2-D3-D4 and track D4-D5 order, i.e. D1-D2-D3-D4-D5;And the motion path of the pin joint 802 between the 4th turnover panel 82 and the 5th turnover panel 83 is connected by track E1-E2, track E2-E3-E4 and track E4-E5 order, i.e. E1-E2-E3-E4-E5.
Step31, is changed to Fig. 4 a from Fig. 3 a:
The top board fulcrum 200 of elevating mechanism 20 is positioned at low level H1, and first skeleton fulcrum the 201, first skeleton 50, turnover top board 40, movable side wall 30 and expansion floor 60 do not move.
The third connecting rod 91 of the second skeleton 90 and fourth link 92 form linkage under the driving of power part, order about the pin joint 801 between the 3rd turnover panel 81 and the 4th turnover panel 82 centered by the top board fulcrum 200 being positioned at low level H1 along the unidirectional swing of track D1-D2, that is, this swing process is with the 3rd turnover panel 81 as radius.
In above process, switch to intersect from the state of parallel docking between 3rd turnover panel 81 and the 4th turnover panel 82 and arch upward, 4th turnover panel 82 and the 5th turnover panel 83 become parallel docking from intersecting, and, the sliding hinge contact 700 between the 5th turnover panel 83 and fixing side wall 70 is made to move along the 5th turnover panel 83, i.e., sliding hinge contact 700 moves to the position away from the 4th turnover panel 82 at the pin joint 802 of the 5th turnover panel 83 and the 4th turnover panel 82, correspondingly, the pin joint 802 between the 4th turnover panel 82 and the 5th turnover panel 83 moves along track E1-E2.
It addition, parked mechanism 13 can switch to the deployed condition shown in Fig. 4 a from the contraction state shown in Fig. 3 a, so that wheel mechanism 11 is formed spacing constraint;Further, telescoping bracket 14 is in contraction state.
Step32, is changed to Fig. 4 c from Fig. 4 a through Fig. 4 b:
The top board fulcrum 200 of elevating mechanism 20 is maintained at low level H1, and first skeleton fulcrum the 201, second skeleton fulcrum the 202, second skeleton 90 and sliding top board 80 do not move.
The first connecting rod 51 of the first skeleton 50 and second connecting rod 52 form linkage under the driving of power part, order about the pin joint 400 between the first turnover panel 41 and the second turnover panel 42 centered by the top board fulcrum 200 being positioned at low level H1 along the unidirectional swing of track A1-A2, that is, this swing process is with the first turnover panel 41 as radius;
Correspondingly, movable side wall 30 translates up in the side away from elevating mechanism 20, i.e. the summit of movable side wall 30 translates along track B1-B2;Further, two pieces of jigsaw 61 and 62 of expansion floor 60 launch, i.e. the pin joint 600 of jigsaw 61 and 62 is along the unidirectional swing of track C1-C2.
It addition, parked mechanism 13 keeps deployed condition;Further, telescoping bracket 14 can switch to the deployed condition shown in Fig. 4 b and Fig. 4 c from contraction state, to support the expansion floor 60 launched.
Step33, is changed to Fig. 4 e from Fig. 4 c through Fig. 4 d:
The top board fulcrum 200 of elevating mechanism 20 rises to high-order H2 from low level H1 under the driving of power part.
First skeleton fulcrum 201 raises under the driving of power part, and, the first connecting rod 51 of the first skeleton 50 and second connecting rod 52 form linkage under the driving of power part, order about the pin joint 400 between the first turnover panel 41 and the second turnover panel 42 centered by the top 300 of movable side wall 30 along the unidirectional swing of track A2-A3, that is, this swing process is with the second turnover panel 42 as radius;
In the process, movable side wall 30 keeps current location, i.e. the summit 300 of movable side wall 30 is maintained at B2 position;Further, two pieces of jigsaw 61 and 62 of expansion floor 60 still keep deployed condition.
Second skeleton fulcrum 202 also raises under the driving of power part, and, the third connecting rod 91 of the second skeleton 90 and fourth link 92 form linkage under the driving of power part, order about the pin joint 801 between the 3rd turnover panel 81 and the 4th turnover panel 82 centered by the sliding hinge contact 700 between the 5th turnover panel 83 and fixing side wall 70 along track D2-D3-D4 reciprocating swing, i.e., the effective length that this swing process is formed with the 4th turnover panel 82 and the 5th turnover panel 83 of parallel docking between pin joint 801 and sliding hinge contact 700 is as radius, and D4 is between D2 and D3.
In the process, the sliding hinge contact 700 between the 5th turnover panel 83 and fixing side wall 70 is relative to the invariant position of the 5th turnover panel 83, so that the pin joint 802 between the 5th turnover panel 83 and the 4th turnover panel 82 moves along track E2-E3-E4, E4 is between E2 and E3.
It addition, parked mechanism 13 and telescoping bracket 14 still keep deployed condition.
Step34, is changed to Fig. 3 b from Fig. 4 e change through Fig. 4 f:
The top board fulcrum 200 of elevating mechanism 20 is maintained at high-order H2.
The height of the first skeleton fulcrum 201 keeps constant, and, the first connecting rod 51 of the first skeleton 50 and second connecting rod 52 form linkage under the driving of power part, order about the pin joint 400 between the first turnover panel 41 and the second turnover panel 42 centered by the top board fulcrum 200 being positioned at high-order H2 along the unidirectional swing of track A3-A4, i.e., this swing process with the first turnover panel 41 as radius, and, the first turnover panel 41 and the second turnover panel 42 are intersecting indent, parallel splicing, are intersecting order switching between the attitude arched upward;
Correspondingly, state by the first turnover panel 41 shown in experience Fig. 2 e with the second parallel splicing of turnover panel 42, the top 300 of movable side wall 30 is return after the direction away from elevating mechanism 20 tilts, i.e., the first tailing edge track B2-B3 in the top 300 of movable side wall 30 and B3-B4 reciprocally swinging, this swing process centered by the pin joint between movable side wall 30 and expandable bottom plate 60 and with this side wall 30 from as radius, and, the position of B4 and the location overlap of B2.
In the process, two pieces of jigsaw 61 and 62 of expansion floor 60 still keep deployed condition.
The height of the second skeleton fulcrum 202 also keeps constant, and, the third connecting rod 91 of the second skeleton 90 and fourth link 92 form linkage under the driving of power part, pin joint 801 between 3rd turnover panel 81 and the 4th turnover panel 82 orders about centered by the top board fulcrum 200 to be positioned at high-order H2 along the unidirectional swing of track D4-D5, that is, this swing is with the 3rd turnover panel 81 as radius.
In the process, the sliding hinge contact 700 between the 5th turnover panel 83 and fixing side wall 70 is relative to the invariant position of the 5th turnover panel 83, so that the pin joint 802 between the 5th turnover panel 83 and the 4th turnover panel 82 moves along track E4-E5.
It addition, parked mechanism 13 and telescoping bracket 14 still keep deployed condition.
(2) the expansion process switched to migration model from parked pattern, change according to the order of Fig. 3 b, Fig. 4 f, Fig. 4 e, Fig. 4 d, Fig. 4 c, Fig. 4 b, Fig. 4 a and Fig. 3 a, the motion path of the pin joint 400 between the first turnover panel 41 with the second turnover panel 42 is connected by track A1-A2, track A2-A3, track A3-A4 backward, that is, A4-A3-A2-A1;The motion path of the pin joint 801 between the 3rd turnover panel 81 and the 4th turnover panel 82 is connected by track D1-D2, track D2-D3-D4 and track D4-D5 backward, i.e. D5-D4-D3-D2-D1;And the motion path of the pin joint 802 between the 4th turnover panel 82 and the 5th turnover panel 83 is connected by track E1-E2, track E2-E3-E4 and track E4-E5 backward, i.e. E5-E4-E3-E2-E1.
Step41, is changed to Fig. 4 e from Fig. 3 b change through Fig. 4 f:
The top board fulcrum 200 of elevating mechanism 20 is maintained at high-order H2.
The first connecting rod 51 of the first skeleton 50 and second connecting rod 52 form linkage under the driving of power part, order about the pin joint 400 between the first turnover panel 41 and the second turnover panel 42 centered by the top board fulcrum 200 being positioned at high-order H2 along the unidirectional swing of track A4-A3, i.e., this swing process is with the first turnover panel 41 as radius, further, the first turnover panel 41 and the second turnover panel 42 arch upward, parallel splicing, intersect order switching between the attitude of indent intersecting;
Correspondingly, state by the first turnover panel 41 shown in experience Fig. 2 e with the second parallel splicing of turnover panel 42, the top 300 of movable side wall 30 is return after the direction away from elevating mechanism 20 tilts, i.e., the first tailing edge track B4-B3 in the top 300 of movable side wall 30 and B3-B2 reciprocally swinging, this swing process centered by the pin joint between movable side wall 30 and expandable bottom plate 60 and with this side wall 30 from as radius.
In the process, two pieces of jigsaw 61 and 62 of expansion floor 60 keep deployed condition.
The height of the second skeleton fulcrum 202 also keeps constant, and, the third connecting rod 91 of the second skeleton 90 and fourth link 92 form linkage under the driving of power part, pin joint 801 between 3rd turnover panel 81 and the 4th turnover panel 82 orders about centered by the top board fulcrum 200 to be positioned at high-order H2 along the unidirectional swing of track D5-D4, that is, this swing is with the 3rd turnover panel 81 as radius.
In the process, the sliding hinge contact 700 between the 5th turnover panel 83 and fixing side wall 70 is relative to the invariant position of the 5th turnover panel 83, so that the pin joint 802 between the 5th turnover panel 83 and the 4th turnover panel 82 moves along track E5-E4.
It addition, parked mechanism 13 and telescoping bracket 14 still keep deployed condition.
Step42, is changed to Fig. 4 c from Fig. 4 e through Fig. 4 d:
The top board fulcrum 200 of elevating mechanism 20 is down to low level H1 from high-order H2 under the driving of power part.
First skeleton fulcrum 201 also reduces under the driving of power part, and, the first connecting rod 51 of the first skeleton 50 and second connecting rod 52 form linkage under the driving of power part, order about the pin joint 400 between the first turnover panel 41 and the second turnover panel 42 centered by the top 300 of movable side wall 30 along the unidirectional swing of track A3-A2, that is, this swing process is with the second turnover panel 42 as radius;
In the process, movable side wall 30 keeps current location, i.e. the summit 300 of movable side wall 30 is maintained at B2 position;Further, expansion floor 60 keeps deployed condition.
Second skeleton fulcrum 202 also reduces under the driving of power part, and, the third connecting rod 91 of the second skeleton 90 and fourth link 92 form linkage under the driving of power part, order about the pin joint 801 between the 3rd turnover panel 81 and the 4th turnover panel 82 centered by the sliding hinge contact 700 between the 5th turnover panel 83 and fixing side wall 70 along track D4-D3-D2 reciprocating swing, i.e., the effective length that this swing process is formed with the 4th turnover panel 82 and the 5th turnover panel 83 of parallel docking between pin joint 801 and sliding hinge contact 700 is as radius, and D4 is between D2 and D3.
In the process, the sliding hinge contact 700 between the 5th turnover panel 83 and fixing side wall 70 is relative to the invariant position of the 5th turnover panel 83, so that the pin joint 802 between the 5th turnover panel 83 and the 4th turnover panel 82 moves along track E4-E3-E2, E4 is between E2 and E3.
It addition, parked mechanism 13 and telescoping bracket 14 still keep deployed condition.
Step43, is changed to Fig. 4 a from Fig. 4 c through Fig. 4 b:
The top board fulcrum 200 of elevating mechanism 20 is maintained at low level H1, and first skeleton fulcrum the 201, second skeleton fulcrum the 202, second skeleton 90 and sliding top board 80 do not move.
The first connecting rod 51 of the first skeleton 50 and second connecting rod 52 form linkage under the driving of power part, order about the pin joint 400 between the first turnover panel 41 and the second turnover panel 42 centered by the top board fulcrum 200 being positioned at low level H1 along the unidirectional swing of track A2-A1, that is, this swing process is with the first turnover panel 41 as radius;
Correspondingly, movable side wall 30 translates up in the side near elevating mechanism 20, i.e. the summit of movable side wall 30 translates along track B2-B1;Further, two pieces of jigsaw 61 and 62 of expansion floor 60 are drawn close, i.e. the pin joint 600 of jigsaw 61 and 62 is along the unidirectional swing of track C2-C1.
It addition, parked mechanism 13 keeps deployed condition;Further, telescoping bracket 14 can switch to contraction state from the deployed condition shown in Fig. 4 b and Fig. 4 c.
Step44, is changed to Fig. 3 a from Fig. 4 a:
The top board fulcrum 200 of elevating mechanism 20 is maintained at low level H1, and first skeleton fulcrum the 201, first skeleton 50, turnover top board 40, movable side wall 30 and expansion floor 60 do not move.
The third connecting rod 91 of the second skeleton 90 and fourth link 92 form linkage under the driving of power part, order about the pin joint 801 between the 3rd turnover panel 81 and the 4th turnover panel 82 centered by the top board fulcrum 200 being positioned at low level H1 along the unidirectional swing of track D2-D1, that is, this swing process is with the 3rd turnover panel 81 as radius.
In above process, parallel docking is switched to from intersecting the state arched upward between 3rd turnover panel 81 and the 4th turnover panel 82,4th turnover panel 82 becomes intersecting from parallel docking with the 5th turnover panel 83, i.e. make the constraint that between the 4th turnover panel 82 and the 5th turnover panel 83, keeping parallelism docks now be released;And, sliding hinge contact 700 between 5th turnover panel 83 and fixing side wall 70 moves along the 5th turnover panel 83, i.e., sliding hinge contact 700 moves to the pin joint 802 of the 5th turnover panel 83 and the 4th turnover panel 82 from the position away from the 4th turnover panel 82, correspondingly, the pin joint 802 between the 4th turnover panel 82 and the 5th turnover panel 83 moves along track E2-E1.
It addition, parked mechanism 13 can switch to the contraction state shown in Fig. 3 a from the deployed condition shown in Fig. 4 a, to release the spacing constraint to wheel mechanism 11;Further, telescoping bracket 14 keeps three contraction states.
In the above-described embodiment, emphasis describes the structure being positioned at above fixed floor 12 and expansion floor 60, these structures can be understood as upper deformable supporting construction, it is positioned at the telescoping bracket 14 below fixed floor 12 and expansion floor 60 and then can be understood as lower deformable supporting construction, and, it is omitted in corresponding accompanying drawing as the concrete structure of the telescoping bracket 14 of lower deformable supporting construction and illustrates, this is because telescoping bracket 14 can use various structures to realize.In order to the performance making telescoping bracket 14 is more excellent, in following embodiment, provide a kind of preferably structure for telescoping bracket 14.
Refer to Fig. 5 a to Fig. 5 d and Fig. 6 a to Fig. 6 d, wherein, Fig. 5 a is the telescope support 14 of contraction state projection view in the short transverse of deformable Sojourn house car, Fig. 5 b and telescope support 14 that Fig. 5 c the is contraction state projection view on the width of deformable Sojourn house car, Fig. 5 d is the telescope support 14 of contraction state projection view on the length direction of deformable Sojourn house car, Fig. 6 a is the telescope support 14 of deployed condition projection view in the short transverse of deformable Sojourn house car, Fig. 6 b and telescope support 14 that Fig. 6 c the is deployed condition projection view on the width of deformable Sojourn house car, Fig. 6 d is the telescope support 14 of deployed condition projection view on the length direction of deformable Sojourn house car.
It can be seen that telescope support 14 includes from Fig. 5 a to Fig. 5 d and Fig. 6 a to Fig. 6 d: a pair slipping block 140a and 140b, medial flap 141, outside flap 142 and lower support flap 143.
Medial flap 141, outside flap 142 and lower support flap 143 are the shape being similar to C-shaped cross section a pair slipping block 140a and 140b arrangement, and pass through the C-shaped cross section flexible switching realized between contraction state and deployed condition three dimensions.I.e., medial flap 141 stretches towards the first horizontal dimensions of fixed floor 12 side on the width of deformable Sojourn house car, outside flap 142 on the width of deformable Sojourn house car dorsad fixed floor 12 side the second horizontal dimensions stretch, and, the vertical dimension of lower support flap 143 is stretched.Dotted line four-headed arrow in Fig. 6 d shows above-mentioned these three dimension.Further, along with cross section the stretching three dimensions of c-type, a pair slipping block 140a and 140b also can move on the length direction of deformable Sojourn house car.Below the structure of telescope support 14 is described in detail.
A pair slipping block 140a and 140b arranges on the length direction of deformable Sojourn house car relative to one another.Slipping block 140a and 140b of arranged relative may be considered the central axis O defining telescope support 14.
Medial flap 141 is connected between slipping block 140a and 140b near the side (i.e. with central axis O for boundary near the side of fixed floor 12) of fixed floor 12 at telescope support 14, the middle part of medial flap 141 is fixed on the lower section of fixed floor 12, to form the fixed base point of telescope support 14, and, this medial flap 141 forms constraint by bending to the distance on the length direction of deformable Sojourn house car between slipping block 140a and 140b, the distance made between slipping block 140a and 140b on the length direction of deformable Sojourn house car and slipping block 140a and 140b are contrary variation tendency relative to the distance of fixed base point on the width of deformable Sojourn house car.
In Fig. 5 a to Fig. 5 d and Fig. 6 a to Fig. 6 d, side-sway section 141a that medial flap 141 includes and slipping block 140a is hinged in first and slipping block 140b hinged second in side-sway section 141b and the canned paragraph 141c that is hinged in first in side-sway section 141a and second between side-sway section 141b.Wherein, canned paragraph 141c is fixed on the lower section of fixed floor 12, to form the above-mentioned fixed base point of telescope support 14 at the middle part of medial flap 141, and side-sway section 141b and slipping block 140a and 140b and canned paragraph 141c hinged in side-sway section 141a and second in first, the bending of medial flap 141 can be supported.
Further, visible by comparison chart 5a and Fig. 6 a:
When telescope support 14 is in contraction state, telescope support 14 keeps previously described C-shaped cross section, and, as shown in Figure 5 a, slipping block 140a and 140b is in its minima relative to the distance of fixed base point on the width of deformable Sojourn house car, may be considered 0 or level off to 0, i.e., telescope support 14 abuts in a side-lower of fixed floor 12 with the attitude of holding C-shaped cross section, now, between slipping block 140a and 140b, the distance on the length direction of deformable Sojourn house car reaches its maximum;
When telescope support 14 is in deployed condition, the C-shaped cross section of telescope support 14 is launched in previously described three dimensions, and, as shown in Figure 6 a, slipping block 140a and 140b distance on the width of deformable Sojourn house car is in its maximum, i.e. expansion floor 60 is provided face to support with the attitude after keeping C-shaped cross section to launch by telescope support 14, now, between slipping block 140a and 140b, the distance on the length direction of deformable Sojourn house car reaches its minima.
Outside flap 142 is connected between slipping block 140a and 140b away from the side (i.e. the side away from fixed floor 12 with central axis O for boundary) of fixed floor 12 at telescope support 14, the middle part of outside flap 142 forms the telescoping end of telescope support 14, this telescoping end has degree of freedom on the width of deformable Sojourn house car, and, outside this, flap 142 drives telescoping end to move according to the change of the distance on the length direction of deformable Sojourn house car bending between slipping block 140a and 140b, making telescoping end is contrary variation tendency relative to the distance on the length direction of deformable Sojourn house car between the distance of fixed base point with slipping block 140a and 140b on the width of deformable Sojourn house car.
In Fig. 5 a to Fig. 5 d and Fig. 6 a to Fig. 6 d, outside flap 142 includes outer side-sway section 142a of first hinged with slipping block 140a and the hinged with slipping block 140b second outer side-sway section 142b, and, first outer side-sway section 142a and the second outer side-sway section 142b are hinged, the first outer side-sway section 142a and the second outer side-sway section 142b be hinged constitute pin joint 140c the middle part of outside flap 142 formed telescope support 14 telescoping end.
Further, visible by comparison chart 5a and Fig. 6 a:
When telescope support 14 is in contraction state, as shown in Figure 5 a, between slipping block 140a and 140b, the distance on the length direction of deformable Sojourn house car is in its maximum, now, the telescoping end formed in the middle part of outside flap 142 reaches its minima relative to the distance of fixed base point on the width of deformable Sojourn house car;
When telescope support 14 is in deployed condition, as shown in Figure 6 a, between slipping block 140a and 140b, the distance on the length direction of deformable Sojourn house car is in its minima, now, the telescoping end of the telescope support 14 formed in the middle part of outside flap 142 reaches its maximum relative to the distance of fixed base point on the width of deformable Sojourn house car.
nullLower support flap 143 is connected between slipping block 140a and 140b towards the side on ground at telescope support 14,The middle part of lower support flap 143 forms the lower support tip of telescope support 14,This lower support tip has degree of freedom on the width of deformable Sojourn house car,And,Lower support flap 143 is according to support tip under the change of the distance on the length direction of deformable Sojourn house car bending drives between slipping block 140a and 140b,The distance made between the fall of lower support tip and slipping block 140a and 140b on the length direction of deformable Sojourn house car is contrary variation tendency,I.e.,The fall of lower support tip and slipping block 140a and 140b are identical variation tendency relative to the distance of fixed base point on the width of deformable Sojourn house car.
In Fig. 5 a to Fig. 5 d and Fig. 6 a to Fig. 6 d, lower support flap 143 include fixing with slipping block 140a the first bottom section 143a being connected fix, with slipping block 140b, the second bottom section 143b being connected, the dropping section 143c that is hinged between the first bottom section 143a and the second bottom section 143b and be fixed on the bearing 144 below lift side 143c.Wherein, bearing 144 forms the lower support tip of telescope support 14 at the middle part of lower support flap 143.
Further, by Fig. 5 b to Fig. 5 d is compared visible with Fig. 6 b to Fig. 6 d respectively:
When telescope support 14 is in contraction state, as shown in Fig. 5 b to Fig. 5 d, the distance that slipping block 140a and 140b is between its minima, slipping block 140a and 140b on the length direction of deformable Sojourn house car relative to the distance of fixed base point on the width of deformable Sojourn house car is in its maximum, now, the fall of the lower support tip formed in the middle part of lower support flap 143 is minimum, that is, its highest order it is in;
When telescope support 14 is in deployed condition, as shown in Fig. 6 b to Fig. 6 d, the distance that slipping block 140a and 140b is between its maximum, slipping block 140a and 140b on the length direction of deformable Sojourn house car relative to the distance of fixed base point on the width of deformable Sojourn house car is in its minima, now, the fall of the lower support tip formed in the middle part of lower support flap 143 is maximum, that is, its lowest order it is in.
In order to be more fully understood that the operation principle in deformable Sojourn house car of the telescope support 14 with above structure, referring again to Fig. 7 a to Fig. 7 c and Fig. 8 a to Fig. 8 c.
In figure 7 a, telescope support 14 is positioned at the lower section of fixed floor 12 with the form shown in Fig. 5 d;In Fig. 8 a, telescope support 14 extends laterally with the form shown in Fig. 6 d from the lower section of fixed floor 12 and is supported on the lower section of expansion floor 60.
And, can be seen that from Fig. 7 b and Fig. 8 b, deformable Sojourn house car is provided with two telescope supports 14, and two telescope supports 14 arrange on the length direction of deformable Sojourn house car, so can provide enough supports for expansion floor 60 in the length range of deformable Sojourn house car.A pair slipping block 140a and 140b of the two telescope support 14 can be installed in synchronizing bar 145, and synchronizing bar 145 can be understood as along the central axis O of the telescope support 14 shown in Fig. 5 a and Fig. 6 a through the two telescope support 14.Further, synchronizing bar 145 can translate, to drive slipping block 140a and 140b of telescope support 14 to move relative to fixed base point on the width of deformable Sojourn house car under the telescopic drive of telescopic drive bar 146 on the width of deformable Sojourn house car.
Additionally, be can be seen that by comparison chart 7b and Fig. 8 b, two telescope supports 14 relative position on the length direction of deformable Sojourn house car is different under contraction state and deployed condition, and, the length of synchronizing bar 145 is also to change along with the switching between contraction state and deployed condition.
Specifically, two telescope supports 14 are installed in the lower section of fixed floor 12 respectively by mounting seat 147.The mounting seat 147 position on the width of deformable Sojourn house car is fixed, and mounting seat 147 has translation freedoms on the length direction of deformable Sojourn house car.Wherein, drive mechanism (not shown in figures) can be passed through between mounting seat 147 with telescopic drive bar 146 be connected, make flexible on the width of deformable Sojourn house car of telescopic drive bar 146 can be converted on the length direction of deformable Sojourn house car the driving force to mounting seat 147.
Correspondingly, the fixed base point (i.e. the canned paragraph 143 of medial flap 141) of each telescope support 14 position on the width of deformable Sojourn house car is fixed, further, the fixed base point of each telescope support 14 can move on the length direction of deformable Sojourn house car.
Refer to Fig. 7 c and Fig. 8 c, in order to the fixed base point of adaptive telescope support 14 moves under the drive of mounting seat 147 on the length direction of deformable Sojourn house car, synchronizing bar 145 uses tube-in-tube structure, that is, synchronizing bar 145 includes base shaft 145a rigidly connected with telescopic drive bar 146 and two ends being sheathed on base shaft 145a the sleeve pipe 145b being located in respectively in telescope support 14.In order to simplify view, Fig. 7 c and Fig. 8 c the most only uses the sheathed sleeve pipe 145b in base shaft 145a one end and this sleeve pipe 145b has been located in one of them telescope support 14.
From Fig. 7 c and Fig. 8 c it can be seen that pass through the sleeve pipe 145b slip relative to base shaft 145a, the fixed base point of telescope support 14 can be along with the switching between contraction state and deployed condition along with mounting seat 147 moves on the length direction of deformable Sojourn house car.Further, Fig. 7 c and Fig. 8 c shows the translation on the length direction of deformable Sojourn house car of the telescopic drive bar 146 mounting seat 147 stretched and be converted to by it on the width of deformable Sojourn house car with dotted line four-headed arrow.
Wherein, when telescope support 14 is in contraction state, relatively large sized on the length direction of deformable Sojourn house car of telescope support 14, now, two telescope supports 14 move to the position being located remotely from each other on the length direction of deformable Sojourn house car along with mounting seat 147, as shown in Figure 7 c, so that two telescope supports 14 can abut in a side-lower of fixed floor 12 simultaneously;When telescope support 14 is in deployed condition, telescope support 14 being relatively small in size on the length direction of deformable Sojourn house car, now, two telescope supports 14 are along with mounting seat 147 mobile position the most close to each other on the length direction of deformable Sojourn house car, as shown in Figure 8 c, so that two telescope supports 14 the most intensively can provide support force for expansion floor 60.
The foregoing is only preferred embodiment of the present utility model; not in order to limit this utility model; all within spirit of the present utility model and principle, any modification, equivalent substitution and improvement etc. done, should be included within the scope of this utility model protection.

Claims (12)

1. a deformable Sojourn house car, it is characterised in that this deformable Sojourn house car includes:
Wheel mechanism;
Fixed floor, this fixed floor is positioned at the top of wheel mechanism;
Elevating mechanism, this elevating mechanism is installed in the first side of fixed floor, further, the top of this elevating mechanism has the top board fulcrum that back and forth can lift between default low level and a high position, and the bottom of this elevating mechanism has the first skeleton fulcrum that back and forth can lift in the lower section of aforementioned low level;
Movable side wall, this movable side wall has the degree of freedom of the first side alternating translational relative to fixed floor;
Expansion floor, this expansion floor is installed in the first side of fixed floor having can follow the degree of freedom that the translation position of movable side wall is flexible;
Turnover top board, this turnover top board includes the first turnover panel and the second turnover panel, and, the first turnover panel and the second turnover panel cascade the top being hinged to movable side wall from the top board fulcrum of elevating mechanism;
First skeleton, this first skeleton includes first connecting rod and second connecting rod, and, first connecting rod and second connecting rod cascade, from the first skeleton fulcrum of elevating mechanism, the pin joint being hinged between the first turnover panel and the second turnover panel;
Actuating unit, this actuating unit drives the first skeleton and elevating mechanism coordinated, changed by the attitudes vibration of the first skeleton and the position of top board fulcrum and the first skeleton fulcrum, be constrained to be formed by following track order or backward linking with the motion path by the pin joint between the first turnover panel and the second turnover panel:
Centered by the top board fulcrum being positioned at low level the track of unidirectional swing, centered by the top of movable side wall the track of unidirectional swing, centered by the top board fulcrum being positioned at a high position track of unidirectional swing;
Wherein, the unidirectional swing centered by the top board fulcrum being positioned at low level of the pin joint between the first turnover panel and the second turnover panel causes movable side wall to translate.
Deformable Sojourn house car the most according to claim 1, it is characterized in that, pin joint between first turnover panel and the second turnover panel is the process of unidirectional swing centered by the top board fulcrum being positioned at a high position, makes the first turnover panel and the second turnover panel in crossing indent, parallel splicing, intersects order or backward switching between the attitude arched upward;Further, between the first turnover panel with the second turnover panel, the attitude of parallel splicing makes movable side wall tilt.
Deformable Sojourn house car the most according to claim 2, it is characterised in that the first skeleton is positional support first turnover panel of parallel docking with first connecting rod and second connecting rod and the second turnover panel intersects and arches upward.
Deformable Sojourn house car the most according to claim 1, it is characterised in that this deformable Sojourn house car farther includes:
Parked mechanism, this parked mechanism is telescopically installed in the lower section of fixed floor, and, parked mechanism has deployed condition and the release contraction state to the spacing constraint of wheel mechanism that wheel mechanism can be formed spacing constraint.
Deformable Sojourn house car the most according to claim 1, it is characterised in that this deformable Sojourn house car farther includes:
Telescoping bracket, this telescoping bracket is telescopically installed in the lower section of fixed floor, and, telescoping bracket has the deployed condition that can support the expansion floor formation stretched and the contraction state of the lower section that can be retracted to fixed floor.
Deformable Sojourn house car the most according to claim 1, it is characterized in that, expansion floor is included between the first side and the bottom of movable side wall of fixed floor and cascades hinged at least two piece jigsaw, with the translation with movable side wall realize in the first side of fixed floor flexible.
Deformable Sojourn house car the most according to claim 1, it is characterised in that elevating mechanism includes:
Column, this column has cylindrical cavities and the outer wall of cincture cylindrical cavities of hollow;
Strut, this strut is located in the cylindrical cavities of column, and, strut has lifting degree of freedom flexible above column;
First sliding sleeve, this first sliding sleeve is set in the outer wall of column, and, the first sliding sleeve has the lifting degree of freedom slided in the altitude range of column;
Wherein, aforesaid top board fulcrum is formed at the top of strut, and aforesaid first skeleton fulcrum is formed at the outer wall of the first sliding sleeve.
Deformable Sojourn house car the most according to claim 1, it is characterised in that the bottom of elevating mechanism has the second skeleton fulcrum that back and forth can lift in the lower section of aforementioned low level further, and, this deformable Sojourn house car farther includes:
Fixing side wall, this fixing side wall is installed in second side contrary with the first side of fixed floor;
Sliding top board, this sliding top board includes the 3rd turnover panel, the 4th turnover panel and the 5th turnover panel, 3rd turnover panel, the 4th turnover panel and the 5th turnover panel cascade hinged from the top board fulcrum of elevating mechanism, and, the 5th turnover panel being positioned at cascade end is slide hinged with the top of fixing side wall;
Second skeleton, this second skeleton includes third connecting rod and fourth link, and, third connecting rod and fourth link cascade, from the second skeleton fulcrum of elevating mechanism, the pin joint being hinged between the 3rd turnover panel and the 4th turnover panel;
Actuating unit drives the second skeleton and elevating mechanism coordinated further, changed by the attitudes vibration of the second skeleton and the position of top board fulcrum and the second skeleton fulcrum, be constrained to the motion path of the pin joint between the 3rd turnover panel and the 4th turnover panel be formed by following track order or backward linking:
By the track of swing unidirectional centered by the top board fulcrum of low level, centered by the sliding hinge contact between the 5th turnover panel and fixing side wall the track of reciprocating swing, centered by the top board fulcrum being positioned at a high position track of unidirectional swing;
Wherein, the pin joint between the 3rd turnover panel and the 4th turnover panel causes the sliding hinge contact between the 5th turnover panel and fixing side wall to move along the 5th turnover panel by the unidirectional swing centered by the top board fulcrum of low level;And, pin joint between the 3rd turnover panel and the 4th turnover panel reciprocating swing and centered by the top board fulcrum being positioned at a high position during unidirectional swing centered by the sliding hinge contact between the 5th turnover panel and fixing side wall, the sliding hinge contact between the 5th turnover panel and fixing side wall is constrained on the position away from the 4th turnover panel and the 5th turnover panel and the 4th turnover panel is confined to parallel docking.
Deformable Sojourn house car the most according to claim 8, it is characterized in that, pin joint between the 3rd turnover panel and the 4th turnover panel reciprocating swing and centered by the top board fulcrum being positioned at a high position during unidirectional swing centered by the sliding hinge contact between the 5th turnover panel and fixing side wall, the 3rd turnover panel and the 4th turnover panel are confined to crossing arching upward;Further, when the sliding hinge contact between the 5th turnover panel and fixing side wall moves to the pin joint between the 5th turnover panel and the 4th turnover panel, the 3rd turnover panel and the 4th turnover panel parallel docking.
Deformable Sojourn house car the most according to claim 9, it is characterised in that the second skeleton is positional support the 3rd turnover panel of parallel docking with third connecting rod and fourth link and the 4th turnover panel intersects and arches upward.
11. deformable Sojourn house cars according to claim 8, it is characterized in that, when sliding hinge contact between the 5th turnover panel and fixing side wall moves to the pin joint between the 5th turnover panel and the 4th turnover panel, between the 4th turnover panel and the 5th turnover panel, the constraint of parallel docking is released.
12. deformable Sojourn house cars according to claim 8, it is characterised in that elevating mechanism includes:
Column, this column has cylindrical cavities and the outer wall of cincture cylindrical cavities of hollow;
Strut, this strut is located in the cylindrical cavities of column, and, strut has lifting degree of freedom flexible above column;
First sliding sleeve, this first sliding sleeve is set in the outer wall of column, and, the first sliding sleeve has the lifting degree of freedom slided in the altitude range of column;
Second sliding sleeve, this second sliding sleeve is set in the outer wall of column, and, the second sliding sleeve has the lifting degree of freedom slided that interlocks in the altitude range of column with the first sliding sleeve;
Wherein, aforesaid top board fulcrum is formed at the top of strut, and aforesaid first skeleton fulcrum is formed at the outer wall of the first sliding sleeve, and aforesaid second skeletal support point is formed at the outer wall of the second sliding sleeve.
CN201620181674.0U 2016-03-10 2016-03-10 Car as a house is sojourned in to flexible Withdrawn - After Issue CN205417327U (en)

Priority Applications (1)

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Application Number Priority Date Filing Date Title
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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN105774630A (en) * 2016-03-10 2016-07-20 北京驻友邦房车投资股份有限公司 Deformable traveling-residential motor home

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN105774630A (en) * 2016-03-10 2016-07-20 北京驻友邦房车投资股份有限公司 Deformable traveling-residential motor home
CN105774630B (en) * 2016-03-10 2017-12-05 北京驻友邦房车投资股份有限公司 Deformable Sojourn house car

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