AU706458B2 - Spring clutch - Google Patents

Spring clutch Download PDF

Info

Publication number
AU706458B2
AU706458B2 AU15371/97A AU1537197A AU706458B2 AU 706458 B2 AU706458 B2 AU 706458B2 AU 15371/97 A AU15371/97 A AU 15371/97A AU 1537197 A AU1537197 A AU 1537197A AU 706458 B2 AU706458 B2 AU 706458B2
Authority
AU
Australia
Prior art keywords
spring
hand wound
helical spring
shaft
tabs
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
AU15371/97A
Other versions
AU1537197A (en
AU706458C (en
Inventor
Carmelo Joseph Licciardi Di Stefano
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Acmeda Pty Ltd
Original Assignee
LICCIARDI CARMELO JOSEPH DI ST
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Family has litigation
First worldwide family litigation filed litigation Critical https://patents.darts-ip.com/?family=25615964&utm_source=google_patent&utm_medium=platform_link&utm_campaign=public_patent_search&patent=AU706458(B2) "Global patent litigation dataset” by Darts-ip is licensed under a Creative Commons Attribution 4.0 International License.
Priority claimed from AUPN7835A external-priority patent/AUPN783596A0/en
Application filed by LICCIARDI CARMELO JOSEPH DI ST filed Critical LICCIARDI CARMELO JOSEPH DI ST
Priority to AU15371/97A priority Critical patent/AU706458C/en
Publication of AU1537197A publication Critical patent/AU1537197A/en
Application granted granted Critical
Publication of AU706458B2 publication Critical patent/AU706458B2/en
Publication of AU706458C publication Critical patent/AU706458C/en
Assigned to ACMEDA PTY LTD reassignment ACMEDA PTY LTD Alteration of Name(s) in Register under S187 Assignors: LICCIARDI DI STEFANO, CARMELO JOSEPH
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

Links

Classifications

    • EFIXED CONSTRUCTIONS
    • E05LOCKS; KEYS; WINDOW OR DOOR FITTINGS; SAFES
    • E05YINDEXING SCHEME ASSOCIATED WITH SUBCLASSES E05D AND E05F, RELATING TO CONSTRUCTION ELEMENTS, ELECTRIC CONTROL, POWER SUPPLY, POWER SIGNAL OR TRANSMISSION, USER INTERFACES, MOUNTING OR COUPLING, DETAILS, ACCESSORIES, AUXILIARY OPERATIONS NOT OTHERWISE PROVIDED FOR, APPLICATION THEREOF
    • E05Y2800/00Details, accessories and auxiliary operations not otherwise provided for
    • E05Y2800/20Combinations of elements
    • E05Y2800/205Combinations of elements forming a unit

Landscapes

  • Mechanical Operated Clutches (AREA)

Description

WO 97/28384 PCT/AU97/00054 Spring Clutch Field of the invention The invention relates to a spring for a spring clutch and, more particularly, for a spring clutch for use with rollers for blinds and the like.
Background to the invention Whilst the following description discusses springs and spring clutches by illustration to their use with blinds, it should be understood that the invention is not so limited.
Many designs of spring clutches have been manufactured in the past and, in particular will be well known to persons skilled in the blind industry. Spring clutches are destined to provide a smooth translation of rotational movement of one shaft to another coaxial shaft. In the absence of such types of clutches, a direct translation is provided which can make the rotation difficult to initiate and control.
One known type of spring clutch has a first shaft, a helical spring and a second shaft.
The helical spring has an internal diameter which is slightly smaller than the outer diameter of the first shaft. To install the spring, it is slightly expanded and slid onto the first shaft to grip the first shaft by frictional engagement. The second shaft is tubular and surrounds the first shaft with the helical spring interposed in between the shafts. The second shaft engages one end of the helical spring.
In use, the spring clutch may be mounted at one end of a blind roller so one of the shafts is fixed relative to the other. For example the first shaft is fixed and the second shaft is rotated by a pullcord engaging a pulley mounted upon one end of the first shaft. The second shaft is connected to the blind roller. Rotating the second shaft causes the helical spring to also rotate. Any resistance to rotation of the second shaft is first absorbed by rotational contraction of the helical spring and if the resistance exceeds a predetermined level the helical spring will slip about the first shaft. This ensures that excessive rotational torque in not applied to the roller blind and the blind will be smoothly rotated. Damage of the spring clutch can also be avoided.
WO 97/28384 PCT/AU97/00054 2 Another type of spring clutch is disclosed in Australian Patent No. 557825. In this specification the problems of stairstepping and excessive torsional loading of spring clutches is discussed. A spring clutch is described which permits torque to be transmitted to the load (eg. a blind) in graduated steps to allow for a slower acceleration of the load than is the case when the maximum rated torque is applied suddenly to the load.
The spring clutch disclosed in that patent is characterised by having at least two helical springs frictionally engaging a first shaft. Each of the helical springs have tabs affixed to their ends which engage in openings in the surrounding coaxial second shaft. The openings have a configuration such that upon rotation of the first shaft, and consequently the helical springs, the tabs are sequentially engaged. This arrangement allows the first helical spring to contract to transmit torque to the second shaft prior to a second helical spring doing likewise. Further, the frictional engagement between the first helical spring and the first shaft is such that the second helical spring will not engage the second shaft unless the first helical spring is caused to slip about the first shaft. This will occur if the torque applied to the first helical spring exceeds a predetermined limit. The second helical spring operates in a similar way as does a third helical spring and so on. Accordingly, a number of helical springs are sequentially used to transmit torque loads from the first shaft to the second shaft.
This patent also discloses a bi-directional spring clutch. To achieve this, both ends of each helical spring are provided with upstanding tabs. All the helical springs are provided with a common winding direction. Different ends are engaged depending upon the direction of rotation of the first shaft. A complex configuration of openings and barriers is necessary in the second shaft to achieve this functionality. Consequently such a bi-directional spring clutch is expensive to manufacture and assemble.
Object of the invention It is an object of the invention to provide a bi-directional clutch which avoids the need for a plurality of helical springs and complex configuration of the second shaft.
Summary of the invention According, to one aspect of the invention, there is provided a helical spring for a spring clutch comprising: at least one right hand wound section; (ii) at least one left hand wound section; and (iii) tabs projecting from both the right hand wound section and the left hand wound section.
It has been surprisingly found that the use of a single spring of this configuration facilitates smooth transmission of rotational forces between the input and output shafts of a spring clutch. A skilled person will understand that for the spring to operate in a spring clutch, the tabs of such a spring merely need to project from the respective sections so they can be contacted by the input and/or the output shafts. However, preferably the tabs project outwardly from those sections. Likewise, preferably the tabs are directed substantially radially. At least two of the tabs may be axially offset from each other where sequential and/or bi-directional operation of a spring clutch is required. Similarly, at least two of the tabs may be axially substantially aligned to distribute the application of any force to the spring more evenly.
Preferably, the right hand wound sections and the left hand wound sections are positioned so that the spring has alternate left and right hand wound sections.
Preferably, at least one right hand wound section and at least one left hand wound section abut each other. In this arrangement, one of the tabs connects each abutting right hand wound section and left hand wound section.
In another aspect of the invention, a spring clutch is provided which uses the helical spring of the type described above. Typically, the spring clutch comprises: a first shaft; (ii) the helical spring of the type described above, frictionally engaging the first shaft; and 4 (iii) a control means adapted to cause engagement or disengagement of the helical spring to or from the first shaft.
Preferably, the control means selectively moves one or more of the tabs to tighten or loosen the helical spring about the shaft. One example of the control means comprises: a second shaft rotatable to loosen the helical spring on the shaft; and (ii) a third shaft rotatable to tighten the helical spring on the shaft.
It has been surprisingly found that by using a helical spring having sections of opposing windings, that smooth transmission of rotational movement in either direction can be achieved in a spring clutch without adopting complex shapes for the tubular second shaft. More particularly, the helical spring will slip if the amount of load applied by the.: first shaft exceeds predetermined limits. Under these conditions the spring sections have unwound sufficiently from the first shaft to permit slippage. Of course, the sections can be designed to have engaging surfaces which permit sequential engagement with the second shaft.
It is also possible to increase or decrease the frictional engagement of the spring on the first shaft by shortening or lengthening the number of sections in the spring. Preferably, the spring has four sections which will occupy the substantial length of the first shaft.
The frictional engagement may be lessening in either or both directions by removing sections. In this way the feel of the blind rolling movement may be stiffened or softened as desired.
Description of the drawings The invention will now be further illustrated by reference to the accompanying drawings in which: Figure 1 is a perspective view of a spring according to one form of the invention; Figure 2 is a perspective view of a spring of indefinite length according to another form of the invention; Figure 3 is an end view of the spring of figure 2; 7, t/ Figure 4 is a view of the spring of figure 2 along A-A; L-a) WO 97/28384 PCT/AU97/00054 Figure 5 is a view of the spring of figure 2 along B-B; Figure 6 is an assembly view of a spring clutch incorporating the spring of figure 1; Figure 7 is a partial assembled view of the spring clutch of figure 6; Figure 8 is a further partial assembled view of the spring clutch of figure 6; Figure 9 is a fully assembled view of the spring clutch of figure 6; and Figures 10 and 11 are cross-sectional views of the spring clutch of figure 9 through the line A-A in varying positions.
In the figures, like numbers refer to like features.
Description of the spring Figure 1 depicts a helical spring 1 having three sections A, B and C. Each section shown is substantially identical and has seven windings, though any number of desired windings or coils may be selected depending upon the application of the spring clutch.
At the lower end of the helical spring 1 is a tab 2 which extends radially from the helical spring 1. The upper end of the helical spring 1 also has a tab 3 which extends radially from the helical spring 1.
Section A, B and C are connected by radially extending U shaped tabs 4 and 5. These tabs 4 and 5 are formed by reversing the direction of rotation of the helical spring 1 during its formation. Consequently the direction of the winding in section B is the opposite to the direction of winding of sections A and C.
Figures 2 to 5 show a similar helical spring to figure 1 except the spring is shown with broken lines in section D to depict that the spring can be of indefinite length. The number of winding sections may varying depending upon the application required for the helical spring 1. The winding sections are connected by radially extending U shaped tabs 40 and 41. These tabs 40 and 41 are formed by reversing the direction of rotation of the helical spring 1 during its formation and are axially aligned respectively with tabs 42 and 43 (as more clearly shown in figure The direction of winding of the sections of indefinite length will alternate. Whilst in figure 3 the tabs are aligned, the person skilled in the art will appreciate that the tabs need not be in alignment.
WO 97/28384 PCT/AU97/00054 6 The skilled addressee will also appreciate that an end view of the spring of figure 1 would be the same as that depicted in figure 3.
The helical spring is typically manufactured from spring steel. The spring is formed by machinery which is programmed to form (for example) the left hand wound section A in the spring material. It then reverses the winding adjacent one end of the left hand wound section A to form the tab 5 and then forms the right hand wound section
B.
Thereafter, tab 4 is formed followed by a left hand section C. A final tab 2 is formed at the end of the left hand would section C. As depicted in figures 2 to 5, the formation of the tabs and the windings can be repeated for a predetermined number of times depending on the length of the hub on which the spring will be mounted and the load of the blind.
Description of the spring clutch In figures 6 to 9, a spring clutch 6 is depicted at various stages of assembly.
Spring clutch 6 includes a housing 7, the helical spring 1, a pulley cover 8, a pull cord 9, a pulley base 10, a roller cover 11, a washer 12 and a fixing screw 13.
More particularly, housing 7 has a central hub 14 with a shoulder 15 at one end, and a recessed area 16. The central hub 14 is destined to receive the pulley cover 8, the pull cord 9 and pulley base 10. An opening 17 is formed in the base of the housing 7, through which the pull cord 9 passes as clearly shown in figure 6.
Helical spring 1 has an inner diameter which is smaller than the outer diameter of the central hub 14. By increasing the difference between these diameters, it is possible to increase the frictional engagement between the helical spring 1 and the hub 14 to a predetermined level. The spring 1 is expanded and slides onto hub 14 so that it does not still extend past shoulder 15 as shown in figure 7.
The pulley cover 8 and pulley base 10 have engaging bosses 18 and 19 to form a circumferential groove 20. The groove 20 has a number of radial flutes 21. The distance between the radial flutes corresponds approximately to the distance between the balls 22 on the pull cord 9. As shown in figure 7, the balls 22 sit in between the flutes 21 and cause the pulley cover 8 and pulley base 10 to rotate when one end of the pull cord 9 is placed under tension.
N
WO 97/28384 PCT/AU97/00054 7 Pulley base 10 also has a tubular extension 23 with a portion of the circumferential wall removed to form an opening. As shown in figure 8, the tabs 2, 3, 4 and 5 of the helical spring 1 extend into the opening. Tabs 2 and 5 are axially aligned. Tabs 3 and 4 are also axially aligned. The circumferential distance between the sets of aligned tabs is less than the circumferential distance of the opening in the tubular extension 23.
Although in the embodiment of the invention depicted in figures 6 to 9 the tabs are shown in alignment, it is again to be understood by the skilled person that such alignment is only preferred.
Roller cover 11 has an outer configuration to receive the inner roll of a blind (not shown) and includes a number of radial fins 24. As more clearly shown in figure 9, the roller cover 11 also has an inwardly extending keyway 25. When the roller cover 11 is encircles tubular extension 23, keyway 25 is located in the opening in tubular extension 23 and is positioned in between the sets of aligned tabs 2, 5 and 3, 4. In this position the end 26 of central hub 14 enters the opening 27 of roller cover 11. Fixing screw 13 passes through washer 12 and enters the end 26 of hub 14 to fix the spring clutch 6 together.
Description of the operation of the spring clutch Figures 10 and 11 show a cross-section of the assembled spring clutch of figures 6 to 9.
Figure 10 demonstrates the blind 44 whilst it is going up and in the completely wound up position, while figure 11 is included to show the blind whilst it is going down and in the wound down position.
Completely wound down position of the blind (Figure 11) In the wound down position of figure 11, the force exerted upon the clutch is principally provided by the weight of the suspended blind 44. Keyway 25 of the roller cover 11 is urged by this weight against tabs 2 and 5 of spring 1 to expand and tighten spring 1 about the stationary hub 14 which causes the clutch to resist further rotation of the roller cover 11. In this position tubular extension 23 does not exert a force on either tabs 2 and 5 or tab 3 and 4 and does not play a role in maintaining the blind 44 in the position shown in figure 11.
WO 97/28384 PCT/AU97/00054 8 (ii) Winding up of the blind (Figure In this motion, a rotational force is exerted on keyway 25 of roller cover 11 by tubular extension 23 via tabs 2 and 5 to wind the blind up. This is initiated by pulling pull cord 9 (not shown). A counter-rotational force is exerted by the weight of the suspended blind 44 on tabs 3 and 5 via keyway 25. When the rotational force exceeds the counter-rotational force, tabs 3 and 5 of spring 1 expand spring 1 to disengage the stationary hub 14 permitting the roller cover 11 to roll up blind 44.
(iii) Completely wound up position of the blind (Figure In this position, a rotational force exerted on keyway 25 of roller cover 11 by the tubular extension 23 has ceased. However, the counter-rotational force is still exerted by the weight of the remaining portion of the suspended blind 44 via keyway 25 onto the tabs 2 and 5. Accordingly, the keyway 25 moves tabs 2 and of spring 1 counter-clockwise to tighten spring I about the stationary hub 1 which causes the clutch to resist further rotation of the roller cover 11. The blind 44 is therefore held in position.
(iv) Winding down the blind (Figure 11) In this position, the force exerted upon the clutch is twofold. The first is due to the weight of the lengthening mass of the suspended blind 44. Keyway 25 of the roller cover 11 is urged by this force against tabs 2 and 5 of spring I which tends to tighten the spring 1 about the hub 14. However, a second rotational force is applied to roller cover 11 by tubular extension 23 against tabs 3 and 4. This rotation tends to release spring 1 by reducing the effect of the keyway 25 on tab 3 and 4 and permits the blind to be lowered.
Consequently, the spring clutch of the invention is bi-directional and provides smooth rotation of the roller cover and consequently the blind.
Whilst the invention has been described with reference to particular embodiments, it is to be understood that the invention is not so limited. It is also to be understood by those skilled in the technology that many variations or modifications in details of design or construction may be made without departing from the essence of the present invention.
Therefore, the invention should be understood to include all such variations and modifications within its scope.
The word 'comprising' and forms of the word 'comprising' as used in this description and in the claims does not limit the invention claimed to exclude any variants or additions which are obvious to the person skilled in the art and which do not have a material effect upon the invention.
p~ r*LIA /V X 1: i x i:,

Claims (15)

1. A helical spring for a spring clutch comprising: at least one right hand wound section; (ii) at least one left hand wound section; and (iii) tabs projecting from both the right hand wound section and the left hand wound section.
2 The helical spring of claim 1, wherein the tabs project outwardly.
3. The helical spring of claim 1 comprising at least two of the right hand wound sections, wherein at least one of the left hand wound sections is positioned between the right hand wound sections.
4. The helical spring of claim 1 comprising at least two of the left hand wound sections, wherein at least one of the right hand wound sections is positioned between the left hand wound sections.
The helical spring of claim 1 comprising two of the right hand wound sections, 00 wherein at least one of the left hand wound sections is positioned between the right hand wound sections. 000 •o
6. The helical spring of claim 1 comprising two of the left hand wound sections, :*Poo* wherein at least one of the right hand wound sections is positioned between the left hand wound sections.
7. The helical spring of claim 1 comprising two of the left hand wound sections and two of the right hand wound sections, wherein the right hand wound sections and the left hand wound sections are positioned so that the spring has alternate left and right hand wound sections.
8. The helical spring of claim 1, wherein at least one right hand wound section abuts at least one left hand wound section.
9. The helical spring of claim 1, wherein at least one right hand wound section abuts at least one left hand wound section and one of the tabs connect each abutting it right hand wound section and left hand wound section.
P: 11 The helical spring of claim 1 to 9, wherein the tabs are substantially radial projections.
11. The helical spring of any one of claims 1 to 9, wherein at least two of the tabs are axially offset from each other.
12. The helical spring of claim 1 to 9, wherein at least two of the tabs are axially substantially aligned.
13. A spring clutch comprising: a first shaft; (ii) a helical spring according to any one of claims 1 to 12, frictionally engaging the first shaft; and (iii) a control means adapted to cause engagement or disengagement of the helical spring to or from the first shaft.
14. The spring clutch of claim 13, wherein the control means selectively moves one or more of the tabs to tighten or loosen the helical spring about the shaft.
15. The spring clutch of claim 14, wherein the control means comprises: a second shaft rotatable to loosen the helical spring on the shaft; and a thisecond shaft rotatable to tighloosen the helical spring on the shaft; and (ii) a third shaft rotatable to tighten the helical spring on the shaft. "<0 Sv
AU15371/97A 1996-02-02 1997-01-31 Spring clutch Ceased AU706458C (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
AU15371/97A AU706458C (en) 1996-02-02 1997-01-31 Spring clutch

Applications Claiming Priority (4)

Application Number Priority Date Filing Date Title
AUPN7835 1996-02-02
AUPN7835A AUPN783596A0 (en) 1996-02-02 1996-02-02 Spring clutch
AU15371/97A AU706458C (en) 1996-02-02 1997-01-31 Spring clutch
PCT/AU1997/000054 WO1997028384A1 (en) 1996-02-02 1997-01-31 Spring clutch

Publications (3)

Publication Number Publication Date
AU1537197A AU1537197A (en) 1997-08-22
AU706458B2 true AU706458B2 (en) 1999-06-17
AU706458C AU706458C (en) 2007-05-03

Family

ID=25615964

Family Applications (1)

Application Number Title Priority Date Filing Date
AU15371/97A Ceased AU706458C (en) 1996-02-02 1997-01-31 Spring clutch

Country Status (1)

Country Link
AU (1) AU706458C (en)

Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE1093239B (en) * 1956-04-18 1960-11-17 Omnia Plastik Protective cover for vehicles, in particular motor vehicles
US4763764A (en) * 1987-06-12 1988-08-16 General Motors Corporation Wrapped spring, overrunning clutch assembly
SU1439311A1 (en) * 1987-04-27 1988-11-23 Вильнюсский Инженерно-Строительный Институт Safety elastic coupling

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE1093239B (en) * 1956-04-18 1960-11-17 Omnia Plastik Protective cover for vehicles, in particular motor vehicles
SU1439311A1 (en) * 1987-04-27 1988-11-23 Вильнюсский Инженерно-Строительный Институт Safety elastic coupling
US4763764A (en) * 1987-06-12 1988-08-16 General Motors Corporation Wrapped spring, overrunning clutch assembly

Also Published As

Publication number Publication date
AU1537197A (en) 1997-08-22
AU706458C (en) 2007-05-03

Similar Documents

Publication Publication Date Title
US5909791A (en) Spring clutch
AU680486B2 (en) Roll screen apparatus
US6685592B2 (en) Roller shade clutch with internal gearing
AU667615B2 (en) A spring clutch assembly with reduced radial bearing forces
US6149540A (en) Continuously variable transmission system with engine braking
CA2139296C (en) Shade with variable load braking and lift assistance
KR101562999B1 (en) Adjustable drive coupling for adjacent architectural coverings
CA2277603C (en) A winding and unwinding mechanism for blinds and or shades
GB2049004A (en) Louvered venetian blind with vertical louvers
EP0118555A1 (en) Improvements in spring clutches.
US5507376A (en) Synchronizer with self-energizing
US4012923A (en) Vibration damping coupling
US5029689A (en) Spring clutch assembly for use in a transmission
GB2028456A (en) Helical spring coupling with control collar
AU706458B2 (en) Spring clutch
WO2018215027A1 (en) Belt pulley decoupler
SK119897A3 (en) An operating device for a screening arrangement
CN102562860A (en) Space-wedged-type pressurizing mechanism and combined-type friction transmission wheel with same
US4403976A (en) Clutch for belt drive
EP0678685A1 (en) Overrunning wrap spring clutch
CA2137948C (en) Synchronizer with self-energizing
CN1077665C (en) Synchronizer
JPH0450521A (en) One-way clutch
US5957257A (en) Self-energizing synchronizer including force limiting
DE3501466C2 (en) Torsional vibration damper with a speed-dependent friction device that is effective in the torsion angle range of the idling system