Feeding mechanism
A feeding mechanism. The feeding mechanism includes a shaft, an arm and a resilient element. The arm rotates on the shaft and has a second contact surface. The resilient element has a first contact surface contacting the second contact surface at a first contact point and exerts a first torque on the shaft when the arm is in a first position, and the first contact surface contacts the second contact surface at a second contact point, exerting a second torque on the shaft when the arm is in a second position, the first torque being substantially equal to the second torque.
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1. Field of the Invention
The present invention relates in general to a feeding mechanism, and more particularly, to a feeding mechanism capable of feeding media sheets of various thickness precisely.
2. Description of the Related Art
Referring to
The included angle between the arm 18 and the tray 22 dominates the deformation of resilient element 26. As shown in
If the roller 12 provides a normal driving force between 10˜30 g with respect to loading a number of the sheets 202 as shown by the hatched region R in
As mentioned above, due to the excessively broad range of normal driving force, only sheets 204, 206, 208 can be assumed of precise delivery by the conventional feeding mechanism 10. It is therefore not convenient to apply media sheets of various thicknesses.
SUMMARY OF THE INVENTIONAccordingly, an object of the present invention is to provide a feeding mechanism applicable with sheets of various thickness. The feeding mechanism includes a shaft, an arm and a resilient element. The arm rotates on the shaft and has a second contact surface. The resilient element has a first contact surface contacting the second contact surface at a first contact point and exerts a first torque on the shaft when the arm is in a first position, and the first contact surface contacts the second contact surface at a second contact point, exerting a second torque on the shaft when the arm is in a second position, the first torque being substantially equal to the second torque.
DESCRIPTION OF THE DRAWINGSThe present invention will become more fully understood from the detailed description given hereinbelow and the accompanying drawings, given by way of illustration only and thus not intended to be limitative of the present invention.
An object of the present invention is to provide a feeding mechanism preventing misfeed and multiple feed. The feeding mechanism is applied to business machines, such as printers or scanners. Referring to
In this embodiment, the resilient element 26 exerts a contacting force F at the contact point C and applies a torque T to the shaft 33. The torque T is determined by the contacting force F and the distance from the shaft 33 to the contact point C. To exert a constant normal driving force P on the sheets, the contact surfaces Ca and Cb are predetermined such that the resilient element 26 can apply a constant torque T to the shaft 33. As the distance from the shaft 33 to the roller 12 is fixed, a constant driving force P can be therefore applied to the sheets.
Referring to
In
When thicker or more sheets are loaded, as shown in
In
With respect to the three states and diagrams mentioned, the resilient element 26 undergoes different compressing forces and has the deforming angles α1, α2 and α3 respectively, wherein α1>α2>α3. Moreover, the corresponding contacting forces F1, F2 and F3 are exerted on the contact points C1, C2 and C3 between the resilient element 26 and the contact portion 66, wherein F1<F2<F3. As the angles α1, α2, α3 and the forces F1, F2 and F3 can be detected, the first contact surface Ca and the second contact surface Cb are practically designed with respect to the corresponding distances d1, d2 and d3 to meet the condition of T=T1=F1 d1=T2=F2 d2=T3=F3 d3=Tn, wherein Tn is a constant.
Referring to
Regardless of the contact point between the contact portion 66 and the resilient element 26, the feeding mechanism of the present invention can always apply a constant and stable torque to the arm 18 to feed smoothly without misfeed and multiple feed. It is therefore more suitable for use with sheets of various thicknesses.
FIG, 7 illustrates sheets 302, 304, 306, 308, 310 of various thicknesses applied to the feeding mechanism of the present invention. With respect to the thickest sheet 302 according to
Referring to
Referring to
In summary, the present invention provides a feeding mechanism exerting a stable and constant driving force on media sheets to prevent misfeed and multiple feed. The profiles of the resilient element 26 and the arm 18 are appropriately designed to compensate for variations in spring force, and constant torque minimizes instability of the driving force applied to the sheets. That is, considering the variation of spring force from the resilient element 26, the first contact surface Ca and second contact surface Cb are therefore calculated and predetermined to exert a constant torque on the shaft 33. For arrangement in a restricted space, one contact surface (such as the first contact surface Ca) can be determined first, and the other corresponding contact surface (such as the second contact surface Cb) is determined according to the constant torque conditions mentioned, wherein the first contact surface Ca or the second contact surface Cb can be flat or curved.
While the invention has been described by way of example and in terms of the preferred embodiments, it is to be understood that the invention is not limited to the disclosed embodiments. To the contrary, it is intended to cover various modifications and similar arrangements (as would be apparent to those skilled in the art). Therefore, the scope of the appended claims should be accorded the broadest interpretation to encompass all such modifications and similar arrangements.
Claims
1. A feeding mechanism, comprising:
- a shaft;
- an arm rotating on the shaft, having a second contact surface; and
- a resilient element having a first contact surface, wherein the first contact surface contacts the second contact surface at a first contact point and exerts a first torque on the shaft when the arm is in a first position, contacting the second contact surface at a second contact point, and exerts a second torque on the shaft when the arm is in a second position, the first torque being substantially equal to the second torque.
2. The feeding mechanism as claimed in claim 1 further comprising a roller connected to the arm, contacting a media sheet and exerting the first torque thereon.
3. The feeding mechanism as claimed in claim 1 further comprising a tray with at least one media sheet disposed therein.
4. The feeding mechanism as claimed in claim 3, wherein the resilient element is fixed to the tray.
5. The feeding mechanism as claimed in claim 1, wherein the resilient element is a torsion spring.
6. The feeding mechanism as claimed in claim 5, wherein the torsion spring has an extended portion with the second contact surface disposed thereon.
7. The feeding mechanism as claimed in claim 6, wherein the torsion spring has a fixed end and a pivot, both fixed to the tray, and the extended portion rotates on the pivot.
8. The feeding mechanism as claimed in claim 1, wherein the first contact surface is a flat surface.
9. The feeding mechanism as claimed in claim 1, wherein the second contact surface is a flat surface.
10. A feeding mechanism, comprising:
- a shaft;
- an arm rotating on the shaft, having a second contact surface;
- a resilient element; and
- a contacting member connecting the resilient element and having a first contact surface, wherein the first contact surface contacts the second contact surface at a first contact point and exerts a first torque on the shaft when the arm is in a first position, contacting the second contact surface at a second contact point, and exerts a second torque on the shaft when the arm is in a second position, the first torque being substantially equal to the second torque.
11. The feeding mechanism as claimed in claim 10 further comprising a roller connected to the arm, wherein the roller contacts a media sheet and exerts the first torque thereon.
12. The feeding mechanism as claimed in claim 10 further comprising a tray with at least one media sheet disposed therein.
13. The feeding mechanism as claimed in claim 10, wherein the resilient element is a torsion spring.
14. The feeding mechanism as claimed in claim 13, wherein the torsion spring is fixed to the tray.
15. The feeding mechanism as claimed in claim 14, wherein the torsion spring has a fixed end and a pivot both fixed to the tray, and the extended portion rotates on the pivot.
16. The feeding mechanism as claimed in claim 12, wherein the resilient element is a tension spring connecting the tray and the contacting member.
17. The feeding mechanism as claimed in claim 10, wherein the first contact surface is a flat surface.
18. The feeding mechanism as claimed in claim 10, wherein the second contact surface is a flat surface.
Type: Application
Filed: Nov 17, 2004
Publication Date: May 26, 2005
Applicant: BENQ CORPORATION (TAOYUAN)
Inventor: Yen-Sung Hsieh (Taipei)
Application Number: 10/990,978