The present invention relates to a hinge assembly for a door, and particularly to a hinge assembly for a dust shroud door in an angle grinder.
Angle grinding tools are commonly used for grinding and sanding applications. Angle grinders include a rotary shaft such as a wheel spindle for driving a grinding wheel mounted thereon. The present disclosure describes an improved shroud for guarding the grinding wheel. The present disclosure also describes a hinge assembly used in the angle grinder shroud.
According to an aspect of the invention a hinge assembly for attaching a door member to a main structure is provided. The hinge assembly, in an embodiment, includes a first hinge member securely attached to one of the door member or the main structure; a second hinge member securely attached to the other of the door member or the main structure and rotatably engaging the first hinge member; and a cam/spring assembly configured to bias the door member into an open or a closed position with respect to the main structure.
In an embodiment, the cam/spring assembly includes a first cam surface defined by a surface of the first hinge member and a second cam surface defined by a surface of the second hinge member and correspondingly engaging the first cam surface. In an embodiment, the first and second cam surfaces cause the second hinge member to move axially with respect to the first hinge member as the door member is rotated with respect to the main structure.
In an embodiment, the cam/spring assembly includes a compression spring having two ends respectively engaging the first and the second hinge members. In an embodiment, the compression spring biases the first and second cam surfaces to engage one another in an open or closed position of the door member with respect to the main structure.
In an embodiment, the first cam surface included a recessed surface and the second cam surface includes a projected surface engaging the recessed surface in the open and closed position of the door member with respect to the main structure.
In an embodiment, the first hinge member engages a first end of the spring and includes a cylindrical portion disposed inside the spring and the second hinge member engages a second end of the spring and includes a channel formed around the spring. In an embodiment, the second hinge member includes two hinge pieces mated together to form the channel around the spring. In an embodiment, the two hinge pieces include alignment features for mating the two hinge pieces together. In an embodiment, the first hinge member includes a second cylindrical portion and the second hinge member includes a second channel formed around the second cylindrical portion, the second cylindrical portion and the second channel not engaging the spring.
According to another aspect of the invention, a hinge assembly for attaching a door member to a main structure is provided. In an embodiment, the hinge assembly includes a first hinge member securely attached to one of the door member or the main structure, the first hinge member defining a first cam surface; a second hinge member securely attached to the other of the door member or the main structure and rotatably engaging the first hinge member, the second hinge member defining a second cam surface corresponding to the first cam surface; and a compression spring having two ends respectively engaging the first and the second hinge members, wherein the compression spring biases the first and second cam surfaces to engage one another in an open or closed position of the door member with respect to the main structure.
In an embodiment, the cam surfaces cause the second hinge member to move axially with respect to the first hinge members as the door member is rotated with respect to the main structure.
In an embodiment, the first cam surface included a recessed surface and the second cam surface includes a projected surface engaging the recessed surface in the open and closed position of the door member with respect to the main structure.
In an embodiment, the first hinge member engages a first end of the spring and includes a cylindrical portion disposed inside the spring and the second hinge member engages a second end of the spring and includes a channel formed around the spring. In an embodiment, the second hinge member includes two hinge pieces mated together to form the channel around the spring.
According to another aspect of the invention, a shroud assembly for an angle grinder having a grinding disc is provided. In an embodiment, the shroud assembly is configured to enclose the grinding disc and includes a shroud body; a shroud door rotatably attached to the shroud body to expose a portion of the grinding disc; and a hinge assembly disposed between the shroud body and the shroud door. In an embodiment, the hinge assembly includes a first hinge member securely attached to the shroud body; a second hinge member securely attached to the shroud door and rotatably engaging the first hinge member; and a cam/spring assembly configured to bias the shroud door into an open or a closed position with respect to the shroud body.
In an embodiment, the cam/spring assembly includes a first cam surface defined by a surface of the first hinge member and a second cam surface defined by a surface of the second hinge member and correspondingly engaging the first cam surface. In an embodiment, the first and second cam surfaces cause the second hinge member to move axially with respect to the first hinge member as the shroud door is rotated with respect to the shroud body. In an embodiment, the cam/spring assembly includes a compression spring having two ends respectively engaging the first and the second hinge members. In an embodiment, the compression spring biases the first and second cam surfaces to engage one another in an open or closed position of the door member with respect to the main structure.
Reference is made to U.S. Pat. No. 8,388,417, issued Mar. 5, 2013, which is incorporated herein by reference in its entirety, for a detailed description of an angle grinder construction. The present disclosure describes a shroud for protecting and guarding the grinding wheel. It is noted that the shroud described herein may be used with any type of grinder regardless of size.
Dust shrouds are used in a variety of power tools to keep dust and debris away from the user. Dust shrouds also protect the user from inadvertent contact with the grinding wheel. Some conventional guards only partially cover an arcural portion of the grinding wheel, leaving a portion of the grinding wheel edge exposed.
The shroud of the present invention, according to an embodiment, fully encloses an upper surface and circumferential edges of the grinding wheel. In an embodiment, the shroud includes a side door to partially expose an edge of the grinding wheel. In an embodiment, the shroud door includes a hinge that allows the user to optionally open or close the door. The door extends from the shroud body to fully enclose the grinding wheel in the closed position. When the door is opened, it lifts above a portion of the grinding wheel to partially expose an edge and upper surface of the grinding wheel. In an embodiment, the hinge utilizes a cam/spring mechanism to bias the shroud in the open or closed position.
The construction of the hinge is discussed herein with reference to
Shroud-side hinge member 102, in an embodiment, includes an elongated member 104 and two shroud attachment members 106a and 106b disposed at two ends of the elongated member 104. First and second shroud attachment members 106a and 106b include holes 108 used to secure the shroud-side hinge 102 to the shroud body 202 via pins and/or screws. Between attachment members 106a and 106b, and parallel to elongated member 104, first and second cylindrical members 110 and 111 extend towards each other from first and second shroud attachment members 106a and 106b. First shroud attachment member 106a includes two recessed cam surfaces 116 around the periphery of the first cylindrical member 110. The second cylindrical member 111 includes a stepped cylindrical member (also referred to as pin-shaped member) 112 having a smaller diameter that the second cylindrical member 111. The pin-shaped member 112 extends from the second cylindrical member 111 towards and substantially close to the first cylindrical member 110.
In an embodiment, the first and second door-side hinge members 122 and 132 mate together around cylindrical members 110 and 111 of shroud-side hinge member 102. The door-side hinge members 122 and 132 include matching holes 123 and 133 for attachment to the shroud door 204 via pins and/or screws.
In an embodiment, the door-side hinge members 122 and 132 include first channels 128 and 138, respectively, which mate together around first cylindrical portion 110 of the shroud-side hinge member 102. An upper portion of each of the first channels 128 and 138 includes outwardly-projecting cam surfaces 130 and 140 that engage two corresponding recessed cam surfaces 116 of the shroud attachment member 106a. Cam surfaces 130 and 140 have the same profile as recessed cam surfaces 116, allowing the door-side hinge members 122 and 132 to move up and down as the shroud door 204 is turned about the hinge.
In an embodiment, the door-side hinge members 122 and 132 also include second channels 124 and 134, respectively, which mate together around second cylindrical portion 111 and spring 114 of shroud-side hinge member 102. The door-side hinge members 122 and 132 further each include narrower third channels 126 and 136, respectively, which are indented with respect to the second channels 124 and 134. Third channels 126 and 136 mate together around the pin-shaped member 112 of the shroud-side hinge member 102. In an embodiment, projections 152 and recesses 154 are provided around the third channels 126 and 136, respectively. Projections 152 fit into recesses 154 for proper alignment of the first and second door-side hinge members 122 and 132, yet together form a circular channel around the pin-shaped member 112.
According to an embodiment, an axial compression spring 114 is arranged around the pin-shaped member 112. A first end of the spring 114 rests against a wall of the second cylindrical member 111 of the shroud-side hinge member 102. A second end of the spring 114 engages a wall formed by the third channels 126 and 136 of the door-side hinge members 122 and 132. The spring 144 biases the door-side hinge members 122 and 132 towards the first shroud attachment member 106a, forcing projecting cam surfaces 130 and 140 into the corresponding recessed cam surfaces 116 in the open and closed positions of the shroud door 204.
As previously discussed,
The above description is for a hinge assembly used for a shroud door in an angle grinder, according to an exemplary embodiment of the invention. It is noted that hinge assembly of the present application may be used in various type of application or devices, such as home appliances, storage sheds, etc., where it is desired to attach a door to a main body or a support structure biasedly in an open or closed position. It is further noted that while the door-side hinge members 122 and 132 are illustratively depicted as two separate members mated together, the door-side hinge member may be made of a single piece. It is further noted that the shroud-side hinge member and the door-side hinge member may be switched, so that the door-side hinge member includes cylindrical portions for accommodating the spring, and the shroud-side hinge member includes the cylindrical members to house around the spring. Moreover, it is noted that the shroud-side hinge member may be provided with a projected cam surface and the door-side hinge member with a corresponding recessed cam surface.
This application claims the benefit of U.S. Provisional Patent Application No. 61/818,612 filed May 2, 2013, content of which is incorporated herein by reference in its entirety.
Number | Name | Date | Kind |
---|---|---|---|
496160 | Keller | Apr 1893 | A |
57113 | Hoffman | Nov 1896 | A |
1186294 | Diener | Jun 1916 | A |
1270430 | Martin | Jun 1918 | A |
2384243 | Flohr et al. | Sep 1945 | A |
2735144 | Anderson et al. | Feb 1956 | A |
2801654 | Utz | Aug 1957 | A |
2968830 | Urtis | Jan 1961 | A |
3335454 | Danster, Jr. | Aug 1967 | A |
3550186 | Swartz | Dec 1970 | A |
3568241 | Uffner | Mar 1971 | A |
3673744 | Oimoen | Jul 1972 | A |
3837043 | Coe | Sep 1974 | A |
3919890 | Workman | Nov 1975 | A |
3955241 | Little | May 1976 | A |
3975794 | Kaiser et al. | Aug 1976 | A |
4069568 | Sakamoto et al. | Jan 1978 | A |
4215449 | Loikitz | Aug 1980 | A |
4607760 | Roche | Aug 1986 | A |
4622782 | Roestenber | Nov 1986 | A |
4819298 | Lautenschlager | Apr 1989 | A |
4921024 | Wiemeri et al. | May 1990 | A |
4991259 | Finkelstein et al. | Feb 1991 | A |
5109571 | Ohshima et al. | May 1992 | A |
5383253 | Lin | Jan 1995 | A |
5546633 | Liu | Aug 1996 | A |
5709597 | Sarantitis | Jan 1998 | A |
6108912 | Radigan | Aug 2000 | A |
6471574 | Rupprecht et al. | Oct 2002 | B1 |
6699114 | Booeshaghi et al | Mar 2004 | B1 |
7000289 | Cedrone | Feb 2006 | B2 |
7596872 | Clarke et al. | Oct 2009 | B2 |
8133094 | Loveless et al. | Mar 2012 | B2 |
8137165 | Loveless et al. | Mar 2012 | B2 |
8438703 | Tagtow et al. | May 2013 | B2 |
8732906 | Van Gennep | May 2014 | B1 |
8800109 | Mitchell et al. | Aug 2014 | B1 |
20010004776 | Fujita | Jun 2001 | A1 |
20080168667 | Spinato | Jul 2008 | A1 |
20090186559 | Loveless et al. | Jul 2009 | A1 |
20100275413 | Kim | Nov 2010 | A1 |
20110021121 | Loveless et al. | Jan 2011 | A1 |
Number | Date | Country |
---|---|---|
1068145 | Apr 1960 | DE |
2539762 | May 1978 | DE |
102006041671 | Mar 2008 | DE |
1074341 | Mar 2005 | EP |
2163344 | Mar 2010 | EP |
2163356 | Feb 2011 | EP |
2269771 | Jul 2012 | EP |
2882949 | Sep 2006 | FR |
2882949 | Sep 2006 | FR |
Entry |
---|
European Search Report, The Hague Aug. 2014. |
Number | Date | Country | |
---|---|---|---|
20140329447 A1 | Nov 2014 | US |
Number | Date | Country | |
---|---|---|---|
61818612 | May 2013 | US |