SURFACE TREATMENT APPARATUS WITH SELECTIVE LOADING
A surface treatment system using motors that drive abrasive pads to treat a surface has structure that applies a force on the abrasive pad that provides a non-uniform contact pressure between the abrasive pad and the treated surface. This allows the system to treat the surface more quickly. Several structures are disclosed for applying the necessary force to the abrasive pad. In preferred embodiments, the non-uniform contact pressure results from application of torque to a motor that drives the abrasive pad.
This invention relates to the art of machines used for surface treatment, such as sanding and polishing machines.
BACKGROUND ARTKnown machines for treating larger surfaces such as floors and exterior surfaces of aircraft and ships typically provide a movable element, commonly referred to as a backup pad, to which an abrasive pad is attached. The movable element is driven by a source of power that moves the element and abrasive pad in a rotational and/or orbital motion. These machines typically present the movable element such that it can be moved across the surface to be treated and apply a contact pressure through the pad to the surface that is uniformly distributed across the pad.
It is often desirable, however, to apply a greater pressure to the pad, for example, to remove a coating from the surface more quickly. One example of this is where one or more coatings of paint are to be removed from the surface. It is often impractical to simply increase the force applied to the pad because the area of the pad may require application of a force to the pad that is too great for the structure of the overall machine or may stall the power source.
While it is known to apply greater pressure to a particular portion of an abrasive pad when the surface is being treated manually, as by pressing harder on a part of the pad or by tilting an element holding the pad, such an operation tends to apply uneven and erratic pressures that result in uneven removal of the surface coating.
SUMMARY OF THE INVENTIONIn accordance with the invention apparatus is provided that can be attached to a surface-treatment machine to apply a force that creates a non-uniform contact pressure between the pad and the surface being abraded. This increases the localized pressure in a given area to achieve a greater rate of abrasion. Because the force can be controlled and is consistent, the surface is treated uniformly. In certain cases (e.g., treatment of an uneven surface), the force may be actively (but inconsistently) controlled to produce a uniform surface treatment.
The invention allows paint to be removed from the surface faster than treating without the increased pressure applied by use of the invention.
In preferred embodiments, the backup pad, to which the abrasive pad is attached is driven rotationally about a motor axis by a pneumatic motor. The motor is mounted to one end of an end effector frame that allows the motor to pitch about a bearing axis. The frame itself is mounted for rotation about an axis transverse to the bearing axis to permit angular adjustment of the orientation of the backup pad and abrasive to match that of the surface being treated. An opposite end of the end effector frame is mounted to a module that controls the motion of the end effector frame to direct it in a selected pattern across the surface to be treated. The module can include an arm whose position is controlled, for example, by cables that are in turn controlled by a plurality of pneumatic cylinders. The module can be that manufactured by Temple Allen Industries under the trademark EMMA or other systems, such as those used in the art of robotics, or systems that control movement over a surface to be treated.
In disclosed embodiments, a torque is applied to the end effector frame to provide a uniform increase in the pressure applied to selected areas of the backup pad. Embodiments disclosed include apparatus having a single backup pad and apparatus having two backup pads.
With reference to
With reference to
In the usual operation of the surface treatment machine, the end effector frame 6 is attached to the extension 4 by securing the post 18 to the back plate 16 at a central location of the back plate. This ensures that the force applied to the end effector frame by the extension is evenly distributed across the backup pad in the direction of the bearing 10. In the embodiment of
Another embodiment of the invention is shown in
In this embodiment, the torque-applying mechanism 28 comprises a pair of pneumatic cylinders 30 and 32. A cylinder mounting plate 34 is attached to the extension bearing plate 36 of the extension 4. An end of each cylinder 30, 32 is attached to the cylinder mounting plate 34, and a respective opposite end of each cylinder is attached to the back plate 16 of the end effector. The cylinders can be attached directly to the back plate or to a supplemental cylinder attachment plate for varying the geometric qualities of the assembly. Cylinder 32 is shown connected to a cylinder attachment plate 40 to provide that cylinder with additional leverage. Each of the cylinders has a pneumatic inlet 38 that is connected to a regulator (not shown) to control the supply of air to the cylinders. Torque is applied to the back plate 16 by providing greater air pressure to one of the cylinders.
When both cylinders apply equal torque about the post axis, the end effector will be stationary, and the pressures in the cylinders will damp changes in the orientation of the end effector. A net torque can be applied to the end effector by applying a greater pressure to one of the cylinders. This torque is controlled to provide uniform abrasion.
It will be appreciated that the torque applied by the cylinders 30, 32 is resisted by the extension 4 with the result being that a greater force can be applied to a portion of the pad 14, depending on the geometry of the back plate 16 and the cylinder attachment plate 40.
In the embodiment of
It will be appreciated that the torque applied to the frame and thereby to the effector motor essentially applies a force to the effector motor in a direction at an angle to a direction perpendicular to the backup pad. If the backup pad is flat, the force applied by the frame would also be at an angle to the axis of rotation of the effector motor. In those instances where the backup pad is not flat, however, the force should be at an angle to a line perpendicular to the portion of the backup pad that is intended to contact the surface. It is within the concept of the invention that such a force can be applied by other structures, such as a robotic arm that controls the motion of the effector. A robotic arm could be controlled so as to apply a force at an angle directly to an effector that results in application of a non-uniform contact pressure between a backup pad and the surface being treated.
Modifications within the scope of the appended claims will be apparent to those of skill in the art.
Claims
1. Apparatus for treating the surface of an article comprising a motor, a backup pad attached to the motor and driven by the motor, and means for applying a non-uniform contact pressure to the backup pad.
2. Apparatus for treatment of a surface comprising a frame for holding an effector for treating said surface and a connector configured to attach said frame to an extension that controls contact between said effector and said surface, wherein said connector applies a force to said frame that results in application of a non-uniform contact pressure between said effector and said surface.
3. Apparatus according to claim 2 wherein said frame comprises a first bearing for mounting said effector to said frame for rotation about a first axis and said connector applies a torque to said frame about a second axis transverse to said first axis.
4. Apparatus according to claim 3 wherein said connector comprises a plate connected to said frame, a second bearing, and a post rotationally received in said second bearing for rotation about said second axis, wherein said post applies said torque to said frame.
5. Apparatus according to claim 4 further comprising said effector, wherein said effector comprises a motor and a backup pad, the motor rotating said backup pad about a motor axis, and wherein said torque is generated by a force applied to said post by said extension, said force being displaced from said motor axis in the direction of said first axis.
6. Apparatus according to claim 3 wherein said connector comprises at least one device connected to said frame for applying a linear force between said extension and said frame, said linear force generating said torque.
7. Apparatus according to claim 6 wherein said device comprises one or more pneumatic cylinders.
8. Apparatus according to claim 4 wherein said connector further comprises at least one device connected to said frame for applying a linear force between said extension and said frame, said linear force generating said torque.
9. Apparatus according to claim 3 wherein said connector comprises a rotary actuator.
10. Apparatus according to claim 4 wherein said connector further comprises a rotary actuator.
11. Apparatus according to claim 2 comprising said extension, an adaptor plate connected to said extension and having said frame attached thereto, and a second frame for holding a second effector for treating said surface and a second connector attaching said second frame to said adaptor plate, wherein said second connector applies a force to said second frame that results in application of a non-uniform contact pressure between said second effector and said surface.
12. A method of treating a surface comprising moving an extension having mounted thereon an apparatus for treatment of said surface said apparatus comprising a frame holding an effector for treating said surface and a connector attaching said frame to said extension, operating said extension to provide contact between said effector and said surface, wherein said connector applies a force to said frame that results in application of a non-uniform contact pressure between said effector and said surface.
Type: Application
Filed: Feb 22, 2019
Publication Date: Aug 29, 2019
Inventors: James H. Bittorf (Rockville, MD), Shane Brewer (Washington, DC), John Wentz (Rockville, MD)
Application Number: 16/283,096