DEVICE FOR PROVIDING MULTIPLE SURFACE TREATMENTS TO THREE-DIMENSIONAL OBJECTS PRIOR TO PRINTING AND SYSTEM USING THE DEVICE
20190224992 ยท 2019-07-25
Inventors
- Jack T. LeStrange (Macedon, NY)
- Anthony S. Condello (Webster, NY, US)
- Mandakini Kanungo (Penfield, NY)
- Peter J. Knausdorf (Henrietta, NY, US)
Cpc classification
B41J11/0015
PERFORMING OPERATIONS; TRANSPORTING
B41J3/4073
PERFORMING OPERATIONS; TRANSPORTING
B23K7/06
PERFORMING OPERATIONS; TRANSPORTING
B23K28/02
PERFORMING OPERATIONS; TRANSPORTING
International classification
B41J11/00
PERFORMING OPERATIONS; TRANSPORTING
B41J3/407
PERFORMING OPERATIONS; TRANSPORTING
B23K28/02
PERFORMING OPERATIONS; TRANSPORTING
B23K7/06
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A surface treatment system includes a holder configured to secure an object within the holder and a surface treatment device that is configured to treat a surface of the object within the holder with two types of surface treatments. The device is capable of producing a plasma or a flame at its nozzle for surface treatment. By controlling the materials supplied to the device and the way in which is operated, either a flame or plasma is produced. Thus, the surface treatment system is capable of treating a wide range of materials for printing by a direct-to-object printer.
Claims
1. An object surface treatment system comprising: a holder configured to secure an object within the holder; and an object surface treatment device configured to produce both a plasma and a flame, but not both simultaneously; a plurality of sources configured to supply a plurality of substances to the object surface treatment device; and a controller operatively connected to the plurality of sources for the object surface treatment device, the controller being configured to pneumatically couple each source to the object surface treatment device independently of the other sources in the plurality of sources to operate the object surface treatment device for treatment of the surface of the object with the plasma alone, the flame alone, or both the plasma and the flame independently of each other.
2. The object surface treatment system of claim 1 further comprising: a support member to which the holder is mounted; an actuator operatively connected to the holder; and the controller being operatively connected to the actuator, the controller being further configured to operate the actuator to move the holder along the support member to a position opposite the surface treatment device to enable the surface treatment device to treat the surface of the object with the plasma alone, the flame alone, or both the plasma and the flame.
3. The object surface treatment system of claim 2 wherein the controller is further configured to operate the actuator to rotate the holder about the support member.
4. The object surface treatment system of claim 3 further comprising: a support member to which the object surface treatment device is mounted; an actuator operatively connected to the object surface treatment device; and the controller being operatively connected to the actuator, the controller being further configured to operate the actuator to move the object surface treatment device along the support member to a position opposite the object in the holder to enable the object surface treatment device to treat the surface of the object with the plasma alone, the flame alone, or both the plasma and the flame independently of each other.
5. The object surface treatment system of claim 4 further comprising: a data input device operatively connected to the controller; and the controller being further configured to receive data from the data input device and to operate the actuator and to operate the object surface treatment device with reference to the data received from the data input device.
6. The object surface treatment system of claim 5, the object surface treatment device further comprising: a housing with at least one wall forming an internal chamber, a portion of the wall forming a nozzle that fluidly communicates with the internal chamber; an electrode that extends into the internal chamber of the housing; an igniter positioned adjacent the nozzle; a source of combustible substance operatively connected to the internal chamber of the housing; a first valve operatively connected between the housing and the source of combustible substance; a source of at least one plasma gas being operatively connected to the internal chamber of the housing; a second valve operatively connected between the source of the at least one plasma gas and the internal chamber of the housing, the valve being configured to pneumatically couple the source of the at least one plasma gas to the internal chamber of the housing independently; a high voltage source operatively connected to the electrode; an electrical switch operatively connected between the electrode and the high voltage source; and the controller being operatively connected to the first valve, the second valve, and the electrical switch, the controller being further configured to operate the first valve to pneumatically connect the surface treatment device to the source of combustible substance selectively, to operate the second valve to pneumatically couple the surface treatment device to the source of the at least one plasma gas plasma gasses independently of the combustible substance source, to operate the electrical switch to connect the high voltage source to the electrode to produce a plasma at the nozzle, and to operate the igniter to produce a flame at the nozzle.
7. The object surface treatment system of claim 6 wherein the second valve is a multi-input valve and the source of the at least one plasma gas further comprises: a plurality of plasma gas sources operatively connected to the multi-input valve; and the controller is operatively connected to the multi-input valve, the controller being further configured to operate the multi-input valve to couple one of the plasma gas sources to the internal chamber of the housing independently of the other plasma gas sources in the plurality of plasma gas sources.
8. The object surface treatment system of claim 7 wherein the electrical switch is further configured to connect electrical ground to the electrode; and the controller is further configured to operate the electrical switch to connect the electrode to electrical ground in response to the source of combustible substance being connected to the internal chamber of the housing.
9. An object surface treatment system comprising: a holder configured to secure an object within the holder; a surface treatment device configured to produce both a plasma and a flame, but not both simultaneously, to treat a surface of the object within the holder with a flame alone, a plasma alone, or both a plasma and a flame independently of each other; a support member to which the surface treatment device is mounted; an actuator operatively connected to the surface treatment device; a plurality of sources configured for connection to the surface treatment device; a controller operatively connected to the actuator and the plurality of sources, the controller being configured to operate the actuator to move the object surface treatment device along the support member to a position opposite the object in the holder, to pneumatically couple each source in the plurality of sources to the object surface treatment device independently of the other sources in the plurality of sources, and to operate the object surface treatment device for treatment of the surface of the object with the plasma alone, the flame alone, or both the plasma and the flame independently of each other.
10. The object surface treatment system of claim 9 further comprising: a support member to which the holder is mounted; an actuator operatively connected to the holder; and the controller being operatively connected to the actuator, the controller being further configured to operate the actuator to move the holder along the support member to a position opposite the object surface treatment device to enable the object surface treatment device to treat the surface of the object with the plasma alone, the flame alone, or both the plasma and the flame independently of each other.
11. The object surface treatment system of claim 10 wherein the controller is further configured to operate the actuator to rotate the holder about the support member.
12. The object surface treatment system of claim 11 further comprising: a data input device operatively connected to the controller; and the controller being further configured to receive data from the data input device and to operate the actuator and to operate the object surface treatment device with reference to the data received from the data input device.
13. The object surface treatment system of claim 12, the object surface treatment device further comprising: a housing with at least one wall forming an internal chamber, a portion of the wall forming a nozzle that fluidly communicates with the internal chamber; an electrode that extends into the internal chamber of the housing; an igniter positioned adjacent the nozzle; a source of combustible substance operatively connected to the internal chamber of the housing; a first valve operatively connected between the housing and the source of combustible substance; a source of at least one plasma gas being operatively connected to the internal chamber of the housing; a second valve operatively connected between the source of the at least one plasma gas and the internal chamber of the housing, the valve being configured to pneumatically couple the source of the at least one plasma gas to the internal chamber of the housing independently; a high voltage source operatively connected to the electrode; an electrical switch operatively connected between the electrode and the high voltage source; and the controller being operatively connected to the first valve, the second valve, and the electrical switch, the controller being further configured to operate the first valve to pneumatically connect the surface treatment device to the source of combustible substance selectively, to operate the second valve to pneumatically couple the object surface treatment device to the source of the at least one plasma gas plasma gasses independently of the combustible substance source, to operate the electrical switch to connect the high voltage source to the electrode to produce a plasma at the nozzle, and to operate the igniter to produce a flame at the nozzle.
14. The object surface treatment system of claim 13 wherein the second valve is a multi-input valve and the source of the at least one plasma gas further comprises: a plurality of plasma gas sources operatively connected to the multi-input valve; and the controller is operatively connected to the multi-input valve, the controller being further configured to operate the multi-input valve to couple one of the plasma gas sources to the internal chamber of the housing independently of the other plasma gas sources in the plurality of plasma gas sources.
15. The object surface treatment system of claim 14 wherein the electrical switch is further configured to connect electrical ground to the electrode; and the controller is further configured to operate the electrical switch to connect the electrode to electrical ground in response to the source of combustible substance being connected to the internal chamber of the housing.
16. An object surface treatment device comprising: a housing with at least one wall forming an internal chamber, a portion of the wall forming a nozzle that fluidly communicates with the internal chamber; an electrode that extends into the internal chamber of the housing; an igniter positioned adjacent the nozzle; a first input in the housing to enable a source of combustible substance to be operatively connected to the internal chamber of the housing; a second input in the housing to enable a source of a plasma gas to be operatively connected to the internal chamber of the housing; and a third input in the housing that enables a high voltage source to be operatively connected to the electrode.
17. The object surface treatment device of claim 16 further comprising: a metering plate positioned in the internal housing between the second input and the nozzle, the metering plate being configured to rotate a flow of plasma gas entering the internal chamber through the second input.
18. The object surface treatment device of claim 17 further comprising: an electrically insulating material mounted to the at least one wall of the housing within the internal chamber.
19. The object surface treatment device of claim 18 further comprising: a wire grid positioned in the nozzle between the internal chamber and an exit orifice of the nozzle.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0011] The foregoing aspects and other features of an object surface treatment system that provides a plurality of surface treatments to raise the surface energies of objects to improve the printing of the objects with DTO printers are explained in the following description, taken in connection with the accompanying drawings.
[0012]
[0013]
[0014]
[0015]
DETAILED DESCRIPTION
[0016] For a general understanding of the environment for the object surface treatment device disclosed herein as well as the details for the device, reference is made to the drawings. In the drawings, like reference numerals designate like elements.
[0017] As used herein, the word printer encompasses any apparatus that produces images with one or more marking materials on media or objects. As used herein, the term process direction (P) refers to a direction of movement of an object through a printer having at least one printhead or through a surface treatment system having a plurality of surface treatment devices. As used herein, the term cross-process direction (CP) refers to an axis that is perpendicular to the process direction. As used in this document, the word surface treatment means any process that raises the surface energy of a material to improve the wettability and durability of ink on the surface.
[0018]
[0019] The device 100 includes three inputs for the chamber 112. One input is for connecting combustible source 140 to the surface treatment device 100 by the controller 140 operating the valve 144 in line 128 to open. When the valve is open, a combustible fluid or gas from the source 140 flows to the surface treatment device 100 so the gas fills the chamber 112 and begins to exhaust through the nozzle 116. After expiration of a predetermined time period that commences when the valve 144 was opened, the controller operates the igniter 172 of the device 100 to form a flame at the nozzle 116 for treatment of an object surface. When the flame surface treatment is complete, the controller 148 closes the valve 144 to terminate the flow of the combustible substance to the device 156. As used in this document, the term combustible substance means a gas or fluid that flows under pressure and that ignites to form a flame. Such materials include propane and natural gas, for example.
[0020] The second input for the device 100 is form line 124 to enable chamber 112 to receive a plasma gas through valve 136. Valve 136 can be a multi-input valve that is pneumatically connected to a plurality of sources of plasma gases that are useful to produce plasma for surface treatment of objects as described below with reference to
[0021]
[0022] With continued reference to
[0023] The controller 148 can be configured with programmed instructions stored in a memory operatively connected to the controller to enable the controller to perform different types of surface treatments on one or more objects. A controller so configured can perform the process 300 shown in
[0024] With reference to
[0025]
[0026] It will be appreciated that variants of the above-disclosed and other features and functions, or alternatives thereof, may be desirably combined into many other different systems, applications or methods. Various presently unforeseen or unanticipated alternatives, modifications, variations or improvements may be subsequently made by those skilled in the art that are also intended to be encompassed by the following claims.