Printing system assembly and method
The gas enclosure system addresses the challenge of expanding OLED display production by maintaining an inert, low-particle environment within the OLED printing system, enabling efficient processing across various substrate sizes with high yields.
Patent Information
- Application Number
- JP2023063105
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2014-12-16
- Filing Date
- 2023-04-07
- Publication Date
- 2025-05-07
- Estimated Expiration
- 2035-06-12
AI Technical Summary
The challenge lies in expanding the mass production of OLED display technology across various substrate sizes with high yields, particularly in maintaining large equipment under an inert atmosphere with low particle and reactive species levels.
A gas enclosure system that houses an OLED printing system, maintaining an inert, substantially low-particle environment. This system includes a printhead assembly, substrate support, motion systems, and integrated gas circulation, filtration, and purification systems to control particle levels and reactive species.
The system enables efficient processing of OLED panels on various substrate sizes by maintaining a controlled, low-particle environment, reducing exposure to reactive species, and ensuring high yields in mass production.
Smart Images

Figure 0007672003000003 
Figure 0007672003000004 
Figure 0007672003000005
Abstract
Description
[Technical field]
[0001] The present teachings relate to various embodiments of a printing system that can be maintained within a gas enclosure system that defines an interior having an inert, substantially low-particle environment.
[0002] (CROSS-REFERENCE TO RELATED APPLICATIONS) This application claims priority to each of the following: (1) U.S. Provisional Application No. 62 / 013,433', filed June 17, 2014; (2) U.S. Provisional Application No. 62 / 021,390', filed July 7, 2014; (3) U.S. Provisional Application No. 62 / 037,494', filed August 14, 2014; (4) U.S. Provisional Application No. 62 / 013,440', filed June 17, 2014; (5) U.S. Provisional Application No. 62 / 021,563', filed July 7, 2014; (6) U.S. Provisional Application No. 62 / 044,165', filed August 29, 2014; (7) U.S. Provisional Application No. 62 / 092,721', filed December 16, 2014. Each of the above applications is incorporated herein by reference in its entirety. [Background technology]
[0003] Interest in the potential of organic light-emitting diode (OLED) display technology has been driven by OLED display technology attributes, including the demonstration of display panels that have highly saturated colors, are high contrast, extremely thin, fast responsive, and energy efficient. In addition, a variety of substrate materials, including flexible polymeric materials, can be used in the fabrication of OLED display technology. Demonstrations of displays for small screen applications, primarily mobile phones, have served to highlight the potential of the technology, but challenges remain in scaling up mass production across a range of substrate formats with high yields.
[0004] With regard to format expansion, a Gen 5.5 substrate has dimensions of approximately 130 cm by 150 cm and can yield approximately eight 26-inch flat panel displays. In comparison, larger format substrates can include using Gen 7.5 and Gen 8.5 mother glass substrate sizes. Gen 7.5 mother glass has dimensions of approximately 195 cm by 225 cm and can be cut into eight 42-inch or six 47-inch flat panel displays per substrate. Mother glass used in Gen 8.5 is approximately 220 cm by 250 cm and can be cut into six 55-inch or eight 46-inch flat panel displays per substrate. As one indication of the challenges remaining in expanding OLED display manufacturing to larger formats, mass production of OLED displays at high yields on substrates larger than Gen 5.5 substrates has proven to be substantially difficult.
[0005] In principle, OLED devices may be fabricated by printing various organic thin films and other materials on a substrate using an OLED printing system. Such organic materials may be susceptible to damage from oxidation and other chemical processes. Housing an OLED printing system in a manner that can be scaled for various substrate sizes and performed within an inert, substantially low-particle printing environment may present various technical challenges. For example, manufacturing tools for high-throughput large-format substrate printing, such as printing Gen 7.5 and Gen 8.5 substrates, require substantially large equipment. Thus, maintaining large equipment under an inert atmosphere, requiring gas purification to remove reactive atmospheric species such as water vapor and oxygen, as well as organic solvent vapors, as well as maintaining a substantially low-particle printing environment, are difficult. presents significant challenges. Summary of the Invention [Means for solving the problem]
[0006] Thus, there remains a challenge in scaling up mass production of OLED display technology across a range of substrate formats with high yields.Therefore, for various embodiments, there is a need for a gas enclosure system of the present teachings that can house an OLED printing system in an inert, substantially low-particle environment and can be easily scaled to provide for the fabrication of OLED panels on various substrate sizes and substrate materials.In addition, the various gas enclosure systems of the present teachings can provide immediate access to the OLED printing system from the outside during processing and immediate access to the inside for maintenance with minimal downtime. The present invention provides, for example, the following: (Item 1) a gas enclosure defining an interior; a printing system housed within the interior of the gas enclosure assembly; Equipped with The printing system includes: a printhead assembly including at least one printhead; a substrate support device for supporting a substrate; a motion system for positioning the substrate relative to the printhead assembly; and Equipped with The exercise system comprises: a Y-axis linear air bearing motion system configured with a substrate gripper assembly for gripping the substrate and a gripper motion control system for maintaining a substrate orientation parallel to the Y-axis of travel; X-axis linear air bearing motion system A printing system comprising: (Item 2) Item 2. The printing system of item 1, wherein the gripper motion system is capable of maintaining the orientation of the substrate parallel to the Y axis of travel within + / - 4300 microradians. (Item 3) Item 2. The printing system of item 1, wherein the substrate support apparatus is a floating table. (Item 4) Item 4. The printing system of item 3, wherein the floating table has a print zone, and the floating table is configured to hold the substrate within the print zone at a flight height of about 30 micrometers to about 50 micrometers above the floating table. (Item 5) 4. The printing system of claim 3, wherein the floating table comprises a porous plate. (Item 6) Item 2. The printing system of item 1, wherein the substrate support apparatus is configured to support substrates ranging in size from about 3.5 generations to about 10 generations. (Item 7) Item 2. The printing system of item 1, wherein the X-axis linear air bearing motion system is configured with a Z-axis moving plate assembly. (Item 8) Item 8. The printing system of item 7, wherein the Z-axis moving plate assembly is configured with a pneumatic counterbalance system to balance forces against loads on the Z-axis moving plate assembly. (Item 9) Item 10. The printing system of item 1, further comprising a gas circulation and filtration system. (Item 10) Item 10. The printing system of item 9, wherein the filtration system is configured to provide a low particle environment with a substrate deposition rate specification of about 100 particles per square meter of substrate per minute or less for particles 2 mm or larger in size. (Item 11) Item 10. The printing system of item 1, further comprising a gas purification system. (Item 12) Item 12. The printing system of item 11, wherein the gas purification system maintains the gas at less than 100 ppm of each of the reactive species. (Item 13) Item 13. The printing system of item 12, wherein the reactive species is selected from water vapor and oxygen. (Item 14) 2. The printing system of claim 1, wherein the gas contained within the interior of the gas enclosure is an inert gas. (Item 15) Item 15. The printing system of item 14, wherein the inert gas is selected from nitrogen, any of the noble gases, and combinations thereof. [Brief description of the drawings]
[0007] A further understanding of the features and advantages of the present disclosure may be obtained by reference to the accompanying drawings, which are intended to illustrate, not limit, the present teachings. In the drawings, which are not necessarily drawn to scale, like numerals may describe like components in different figures. Like numerals with different letter suffixes may represent different instances of like components. [Figure 1A] FIG. 1A is a front perspective view of a gas enclosure assembly according to various embodiments of the present teachings. [Figure 1B] FIG. 1B depicts an exploded view of various embodiments of the gas enclosure assembly as depicted in FIG. 1A. [Figure 1C] FIG. 1C depicts an exploded isometric perspective view of the printing system depicted in FIG. 1B. [Figure 1D] FIG. 1D is an exploded perspective view of an auxiliary enclosure of a gas enclosure system in accordance with various embodiments of the present teachings. [Figure 2A] FIG. 2A is a front perspective view of a gas enclosure assembly according to various embodiments of the present teachings. [Figure 2B] FIG. 2B is a partially exploded perspective view of an auxiliary enclosure of a gas enclosure system in accordance with various embodiments of the present teachings. [Figure 2C] FIG. 2C is a partially exploded top perspective view of an auxiliary enclosure of a gas enclosure system in accordance with various embodiments of the present teachings. [Diagram 3] FIG. 3 is an exploded isometric view of a printing system in accordance with the present teachings showing the Y-axis motion system. [Figure 4A]FIG. 4A is a top view of a Y-axis motion system in accordance with various embodiments of the systems and methods of the present teachings. [Figure 4B] FIG. 4B is an exploded partial top view of FIG. 4A. [Figure 5A] FIG. 5A is an isometric view of a Y-axis motion system in accordance with various embodiments of the systems and methods of the present teachings. [Figure 5B] FIG. 5B is a vertical cross-sectional view of FIG. 5A. [Figure 6] FIG. 6 is a side view of the carrier assembly side frame with the gripper motion control assembly mounted thereon. [Figure 7A] FIG. 7A is an isometric view of a voice coil assembly according to various embodiments of the systems and methods of the present teachings. [Figure 7B] FIG. 7B is a side view of the voice coil assembly. [Figure 8] FIG. 8 is a top view of a Y-axis motion system according to various embodiments of the systems and methods of the present teachings, showing two cross-sectional views. [Figure 9] FIG. 9 is a cross-sectional view of the voice coil assembly as shown in FIG. [Figure 10] FIG. 10 is a cross-sectional view of the center pivot assembly as shown in FIG. [Figure 11] FIG. 11 is a schematic diagram of a closed-loop control circuit that provides pneumatic counterbalance to the Z-axis motor in accordance with various embodiments of the systems and methods of the present teachings. [Figure 12A] FIG. 12A is an isometric perspective view of a Z-axis moving plate with pneumatic lift elements; [Figure 12B] FIG. 12B is a front perspective view of a Z-axis moving plate with pneumatic lifting elements in accordance with various embodiments of the present teachings. [Figure 13] FIG. 13 is a schematic diagram of an encapsulated printing system that can utilize various embodiments of an ink delivery system in accordance with the present teachings. [Figure 14] FIG. 14 is a schematic diagram of a bulk ink delivery system according to various embodiments of the present teachings. [Figure 15] FIG. 15 is a schematic diagram of a bulk ink delivery system according to various embodiments of the present teachings. [Figure 16] FIG. 16 is a schematic diagram of a local ink delivery system for an encapsulated printing system in accordance with various embodiments of the present teachings. [Figure 17] FIG. 17 is a schematic diagram of a local ink delivery system in fluid communication with a printhead ink delivery system for an encapsulated printing system in accordance with various embodiments of the present teachings. [Figure 18A] FIG. 18A is a bottom perspective view of the printhead assembly mounted on the X-axis bridge. [Figure 18B] FIG. 18B is an enlarged view of FIG. 18A. [Figure 19A] FIG. 19A is a front top perspective view of a printhead device according to various embodiments of the present teachings, while [Figure 19B] FIG. 19B is a front bottom perspective view of the printhead device. [Figure 19C] FIG. 19C is a front top perspective view of a mounting plate for a printhead device in accordance with various embodiments of the present teachings; [Figure 19D] FIG. 19D is a front-bottom perspective view of the printhead device mounted in the mounting assembly. [Figure 20] FIG. 20 is a schematic diagram of various embodiments of a gas enclosure assembly and associated system components of the present teachings. [Figure 21A] 21A and 21B are schematic diagrams of various embodiments of an encapsulated printing system and components for integrating and controlling gas sources such as may be used to establish a controlled gas environment within a gas enclosure, which may include a supply of pressurized gas for use with a floating table. [Figure 21B]21A and 21B are schematic diagrams of various embodiments of an encapsulated printing system and components for integrating and controlling gas sources such as may be used to establish a controlled gas environment within a gas enclosure, which may include a supply of pressurized gas for use with a floating table. [Figure 22A] 22A-22C are schematic diagrams of various embodiments of an encapsulated printing system and components for integrating and controlling gas sources that may be used to establish a controlled gas environment within a gas enclosure, which may include, for example, a blower loop that provides pressurized gas, as well as a vacuum source for use with a floating table. [Figure 22B] 22A-22C are schematic diagrams of various embodiments of an encapsulated printing system and components for integrating and controlling gas sources that may be used to establish a controlled gas environment within a gas enclosure, which may include, for example, a blower loop that provides pressurized gas, as well as a vacuum source for use with a floating table. [Figure 22C] 22A-22C are schematic diagrams of various embodiments of an encapsulated printing system and components for integrating and controlling gas sources that may be used to establish a controlled gas environment within a gas enclosure, which may include, for example, a blower loop that provides pressurized gas, as well as a vacuum source for use with a floating table. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0008] The present teachings disclose various embodiments of a printing system for printing a substrate, where the printing system can be housed in a gas enclosure and the environment within the enclosure can be maintained as a controlled printing environment. The controlled environment of the present teachings can include control of the type of gas environment within the gas enclosure, the size and level of particulate matter within the enclosure, control of the temperature within the enclosure, and control of lighting. Various embodiments of the printing system of the present teachings can include a Y-axis motion system and a Z-axis moving plate assembly configured to substantially reduce excessive heat load within the enclosure, for example, by eliminating or substantially minimizing the use of conventional electric motors. In addition, various embodiments of the Y-axis motion system of the present teachings can include a gripper motion control assembly of the Y-axis motion system configured to provide dynamic rotation of the orientation of the substrate about the theta-Z (θ-Z) axis during Y-axis travel and maintain a high degree of precision for substrate orientation parallel to the travel axis.
[0009] Various embodiments of the gas enclosure assembly can be hermetically constructed and integrated with various components that provide gas circulation and filtration systems, particle control systems, gas purification systems, and thermal regulation systems, and the like, to form various embodiments of gas enclosure systems that can sustain a substantially low-particulate inert gas environment for processes that require such an environment. Various embodiments of the gas enclosure can have a printing system enclosure and an auxiliary enclosure constructed as a section of the gas enclosure assembly that can be hermetically isolated from the printing system enclosure of the gas enclosure. Various embodiments of the printing system of the present teachings can have a printhead management system enclosed in the auxiliary enclosure. Embodiments of the printhead management system of the present teachings can include various devices and apparatus for maintenance and calibration of the printhead, each mounted on a motion system platform for fine positioning of the various devices and apparatus relative to the printhead.
[0010] A printing system, such as the printing system 2000 of FIG. 1B, shown in a close-up view in FIG. 1C, can consist of several devices and apparatus that allow for reliable placement of ink droplets at specific locations on the substrate. Printing requires relative motion between the printhead assembly and the substrate. This can be achieved using a motion system, typically a gantry or split-axis XYZ system. Either the printhead assembly can move over a stationary substrate (gantry type) or, in the case of a split-axis configuration, the printhead and substrate can both move. In another embodiment, the printhead assembly can be substantially stationary, for example in the X and Y axes, and the substrate can move in the X and Y axes relative to the printhead, with the Z-axis motion being provided either by a substrate support apparatus or by a Z-axis motion system associated with the printhead assembly. As the printhead moves relative to the substrate, droplets of ink are released at the correct time to be deposited at the desired location on the substrate. Substrates can be inserted and removed from the printer using a substrate loading and unloading system. Depending on the printer configuration, this can be accomplished using a mechanical conveyor, a substrate floating table with a transport assembly, or a substrate transfer robot with an end effector. For various embodiments of the systems and methods of the present teachings, the Y-axis motion system can be based on an air bearing gripper system.
[0011] For a clearer perspective on the substrate sizes that can be used in the production of various OLED devices, several generations of mother glass substrate sizes have evolved since the early 1990s for flat panel displays fabricated by other than OLED printing. The first generation of mother glass substrates, designated Gen 1, were approximately 30 cm x 40 cm, and thus capable of producing 15-inch panels. Around the mid-1990s, existing technology for producing flat panel displays evolved to the Gen 3.5 mother glass substrate size, with dimensions of approximately 60 cm x 72 cm. In comparison, Gen 5.5 substrates have dimensions of approximately 130 cm x 150 cm.
[0012] As the generations progress, Gen 7.5 and Gen 8.5 mother glass sizes are being produced for conversion processes other than OLED printing. Gen 7.5 mother glass has dimensions of about 195 cm x 225 cm and can be cut into eight 42 inch or six 47 inch flat panels per substrate. The mother glass used in Gen 8.5 is about 220 cm x 250 cm and can be cut into six 55 inch or eight 46 inch flat panels per substrate. The promise of OLED flat panels for qualities such as truer color, higher contrast, thinness, flexibility, transparency, and energy efficiency is being realized at the same time that OLED manufacturing is practically limited to G3.5 and smaller. Currently, OLED printing is believed to be the manufacturing technology of choice to break this limitation and enable OLED panel manufacturing not only for mother glass sizes of G3.5 and smaller, but also at the largest mother glass sizes such as Gen 5.5, Gen 7.5, and Gen 8.5. One of the features of OLED panel display technology includes that a variety of substrate materials can be used, including but not limited to a variety of glass substrate materials, as well as a variety of polymer substrate materials. In that regard, the sizes described in terms resulting from the use of glass-based substrates can be applied to substrates of any material suitable for use in OLED printing.
[0013] In principle, a manufacturing tool that can enable printing of various substrate sizes, including large substrate sizes, may require a substantially large facility to house such an OLED manufacturing tool. Thus, maintaining the entire large facility under an inert atmosphere presents engineering challenges, such as continuous purification of large quantities of inert gas. Various embodiments of the gas enclosure system can have a circulation and filtration system inside the gas enclosure assembly, in conjunction with a gas purification system outside the gas enclosure, which together can provide continuous circulation of substantially low particulate matter inert gas with substantially low levels of reactive species throughout the gas enclosure system. According to the present teachings, an inert gas may be any gas that does not undergo chemical reactions under a defined set of conditions. Some commonly used non-limiting examples of inert gases can include nitrogen, any of the noble gases, and any combination thereof. In addition, providing a large facility that is essentially sealed to prevent contamination of various reactive atmospheric gases, such as water vapor and oxygen, as well as organic solvent vapors generated from various printing processes, presents engineering challenges. According to the present teachings, the OLED printing equipment will maintain various levels of various reactive species, including various reactive atmospheric gases such as water vapor and oxygen, as well as organic solvent vapors, at or below 100 ppm, e.g., at or below 10 ppm, at or below 1.0 ppm, or at or below 0.1 ppm.
[0014] The need to print OLED panels in equipment where the levels of each of the reactive species should be maintained at the target low level can be illustrated in reviewing the information summarized in Table 1. The data summarized in Table 1 resulted from testing of each of the test coupons with organic thin film compositions for each of red, green, and blue, fabricated in a large pixel spin-coated device format. Such test coupons are substantially easier to fabricate and test for the purpose of rapid evaluation of various formulations and processes. Test coupon testing should not be confused with service life testing of printed panels, but can show the effect of various formulations and processes on service life. The results shown in the table below represent the variation of process steps in the processing of the test coupons, where only the spin-coating environment was varied, for test coupons processed in a nitrogen environment, which had less than 1 ppm of reactive species compared to test coupons similarly processed in air instead of a nitrogen environment.
[0015] Through inspection of the data in Table 1 of the test coupons processed under different processing environments, it is clear that printing in an environment that effectively reduces the exposure of organic thin film compositions to reactive species can have a substantial impact on the stability and therefore service life of various ELs, especially in the case of red and blue. Service life specifications are particularly important for OLED panel technology because they directly correlate to display product life, and are product specifications for all panel technologies that OLED panel technology has difficulty meeting. To provide panels that meet the required service life specifications, the respective levels of reactive species such as water vapor, oxygen, and organic solvent vapor can be maintained at 100 ppm or less, for example, 10 ppm or less, 1.0 ppm or less, or 0.1 ppm or less, using various embodiments of the gas enclosure system of the present teachings.
[0016] [Table 1]
[0017] In addition to providing an inert environment, maintaining a substantially low-particle environment for OLED printing is particularly important because even very small particles can lead to visible defects on the OLED panel. Particle control in a gas enclosure system can present significant challenges that are not presented for processes that can be performed at atmospheric conditions, for example, under an open high-flow laminar flow filtered hood. For example, a manufacturing facility may require substantial lengths of various service bundles that can be operatively connected from various systems and assemblies to provide, for example, but not limited to, the optical, electrical, mechanical, and fluidic connections required to operate the printing system. Such service bundles, used in the operation of the printing system and located proximal to the substrate positioned for printing, can be an ongoing source of particulate matter. In addition, components used in the printing system, such as fans or linear motion systems using friction bearings, can be particle generating components. Various embodiments of the gas circulation and filtration system of the present teachings can be used in conjunction with particle control components to contain and exhaust particulate matter. Additionally, a low particle environment can be maintained for various embodiments of the gas enclosure system through the use of various inherently low particle generating pneumatically operated components such as, but not limited to, substrate floating tables, air bearings, pneumatically operated robots, and the like.
[0018] With regard to maintaining a substantially low-particle environment, various embodiments of the gas circulation and filtration system can be designed to provide a low-particle inert gas environment for airborne particulate matter that meets the standards of International Standards Organization Standard (ISO) 14644-1:1999 "Cleanrooms and associated controlled environments-Part 1: Classification of air cleanliness," as defined by Class 1 through Class 5. However, controlling airborne particulate matter alone is not sufficient to provide a low-particle environment proximate to the substrate during a printing process, because, for example, but not limited to, particles generated proximate to the substrate during such a process may accumulate on the substrate surface before they can be swept through the gas circulation and filtration system.
[0019] Thus, in conjunction with the gas circulation and filtration system, various embodiments of the gas enclosure system of the present teachings can have a particle control system, which can include components that can provide a low particle zone proximate to the substrate during processing in a printing step. The particle control system for various embodiments of the gas enclosure system of the present teachings can include a gas circulation and filtration system, a low particle generating X-axis linear bearing system for moving the printhead assembly relative to the substrate, a service bundle housing exhaust system, and a printhead assembly exhaust system. For example, the gas enclosure system can have a gas circulation and filtration system inside the gas enclosure assembly.
[0020] Various embodiments of the systems and methods of the present teachings can maintain a substantially low particle environment that provides an average on-substrate distribution of particles of a particular size range of interest that does not exceed an on-substrate deposition rate specification. The on-substrate particle deposition rate specification can be set for each of the particle size ranges of interest from about 0.1 μm and above to about 10 μm and above. In various embodiments of the systems and methods of the present teachings, the on-substrate particle deposition rate specification can be expressed as a limit on the number of particles deposited per square meter of substrate per minute for each of the target particle size ranges.
[0021] Various embodiments of particle deposition rate specifications on substrates can be easily converted from a limit of the number of particles deposited per square meter of substrate per minute to a limit of the number of particles deposited per substrate per minute for each of the target particle size ranges. Such conversion can be easily made, for example, through the known relationship between substrates of a specific generation size and substrates of corresponding area of that substrate generation. For example, Table 2 below summarizes the aspect ratios and areas of several known generation size substrates. It should be understood that slight variations in aspect ratios, and therefore sizes, may be seen by manufacturers. However, despite such variations, conversion factors and areas in square meters of substrates of a specific generation size can be obtained for any of the various generation size substrates.
[0022] [Table 2]
[0023] In addition, the particle deposition rate specification on the substrate expressed as a limit of the number of particles deposited per square meter of substrate per minute can be easily converted into any of a variety of unit time expressions. It will be readily understood that the particle deposition rate specification on the substrate normalized to minutes can be easily converted into any other time expression, such as, for example, but not limited to, seconds, hours, days, etc., through known time relationships. In addition, a unit of time specifically related to the process can be used. For example, a print cycle can be associated with a unit of time. For various embodiments of the gas enclosure system according to the present teachings, a print cycle can be the period of time during which the substrate is moved into the gas enclosure system for printing and then removed from the gas enclosure system after printing is completed. For various embodiments of the gas enclosure system according to the present teachings, a print cycle can be the period of time from the start of alignment of the substrate to the print head assembly to the delivery of the last ejected drop of ink onto the substrate. In the art of processing, the total average cycle time or TACT can be a unit of time expression for a particular process cycle. According to various embodiments of the systems and methods of the present teachings, the TACT of the print cycle can be about 30 seconds. For various embodiments of the systems and methods of the present teachings, the TACT of the print cycle can be about 60 seconds. For various embodiments of the systems and methods of the present teachings, the TACT of the print cycle can be about 90 seconds. For various embodiments of the systems and methods of the present teachings, the TACT of the print cycle can be about 120 seconds. For various embodiments of the systems and methods of the present teachings, the TACT of the print cycle can be about 300 seconds.
[0024] With respect to airborne particulate matter and particle deposition within a system, a significant number of variables may affect the development of a general model that may adequately calculate an approximation of the particle fall rate value on a surface, such as a substrate, for any particular manufacturing system. Variables such as particle size, distribution of particles of a particular size, surface area of the substrate, and time of exposure of the substrate within the system may vary for different manufacturing systems. For example, particle size and distribution of particles of a particular size may be substantially affected by the source and location of particle generating components within different manufacturing systems. Calculations based on various embodiments of the gas enclosure system of the present teachings indicate that without the various particle control systems of the present teachings, deposition of particulate matter on a substrate per print cycle per square meter of substrate may be approximately 100% for particles in the size range of 0.1 μm and above. Such calculations suggest that, without the various particle control systems of the present teachings, deposition of particulate matter on a substrate per print cycle per square meter of substrate may be from about greater than 1000 to about greater than 10,000 particles for particles in the size range of about 2 μm and above.
[0025] Various embodiments of the low particle gas enclosure system of the present teachings can maintain a low particle environment that provides an average on-substrate particle distribution that meets a substrate deposition rate specification of about 100 particles or less per square meter of substrate per minute for particles greater than or equal to 10 μm in size. Various embodiments of the low particle gas enclosure system of the present teachings can maintain a low particle environment that provides an average on-substrate particle distribution that meets a substrate deposition rate specification of about 100 particles or less per square meter of substrate per minute for particles greater than or equal to 5 μm in size. Various embodiments of the gas enclosure system of the present teachings can maintain a low particle environment that provides an average on-substrate particle distribution that meets a substrate deposition rate specification of about 100 particles or less per square meter of substrate per minute for particles greater than or equal to 2 μm in size. In various embodiments of the gas enclosure system of the present teachings, a low particle environment can be maintained that provides an average on-substrate particle distribution that meets a deposition rate specification on the substrate of about 100 particles or less per square meter of substrate per minute for particles greater than or equal to 1 μm in size. Various embodiments of the low particle gas enclosure system of the present teachings can be maintained that provides an average on-substrate particle distribution that meets a deposition rate specification on the substrate of about 1000 particles or less per square meter of substrate per minute for particles greater than or equal to 0.5 μm in size. Various embodiments of the gas enclosure system of the present teachings can be maintained that provides an average on-substrate particle distribution that meets a deposition rate specification on the substrate of about 1000 particles or less per square meter of substrate per minute for particles greater than or equal to 0.3 μm in size. Various embodiments of the low-particle gas enclosure system of the present teachings can maintain a low-particle environment that provides an average on-substrate particle distribution that meets an on-substrate deposition rate specification of about 1000 particles per square meter of substrate per minute or less for particles greater than or equal to 0.1 μm in size.
[0026] It is contemplated that a wide variety of ink formulations can be printed within the inert, substantially low-particle environment of various embodiments of the gas enclosure system of the present teachings. During the manufacture of an OLED display, an OLED pixel can be formed to include an OLED film stack that can emit light of a specific peak wavelength when a voltage is applied. The OLED film stack structure between the anode and the cathode can include a hole injection layer (HIL), a hole transport layer (HTL), an emissive layer (EL), an electron transport layer (ETL), and an electron injection layer (EIL). In some embodiments of the OLED film stack structure, the electron transport layer (ETL) can be combined with the electron injection layer (EIL) to form an ETL / EIL layer. According to the present teachings, various ink formulations for EL for various color pixel EL films of the OLED film stack can be printed, for example, using inkjet printing. In addition, for example, but not limited to, the HIL, HTL, EML, and ETL / EIL layers can have ink formulations that can be printed using inkjet printing.
[0027] It is further contemplated that the organic encapsulation layer can be printed on the substrate printing. It is contemplated that the organic encapsulation layer can be printed using inkjet printing since inkjet printing can offer several advantages. First, such inkjet-based processing can be performed at atmospheric pressure, thus eliminating a series of vacuum processing operations. In addition, during the inkjet printing process, the organic encapsulation layer can be localized to cover the portion of the OLED substrate proximal to and over the active area, effectively encapsulating the active area including the outer edge of the active area. Target patterning using inkjet printing results in eliminating waste of material as well as eliminating additional processing typically required to achieve patterning of the organic layer. The encapsulation ink can include polymers including, but not limited to, for example, acrylates, methacrylates, urethanes, or other materials, as well as copolymers and mixtures thereof that can be cured using thermal treatments (e.g., baking), ultraviolet light exposure, and combinations thereof. As used herein, polymers and copolymers can include any form of polymeric component that can be formulated into an ink and cured on a substrate to form an organic encapsulation layer. Such polymeric components can include polymers and copolymers, as well as precursors thereof, such as, but not limited to, monomers, oligomers, and resins.
[0028] Various embodiments of the gas enclosure assembly can have various frame members constructed to provide the contour of the gas enclosure assembly. Various embodiments of the gas enclosure assembly of the present teachings can accommodate an OLED printing system while optimizing the working space to minimize inert gas volume and also allowing immediate access to the OLED printing system from outside during processing. In that regard, various gas enclosure assemblies of the present teachings can have contoured topologies and volumes. As discussed in detail later herein, various embodiments of the gas enclosure can be contoured around a printing system base on which a substrate support apparatus can be mounted. Additionally, the gas enclosure can be contoured around a bridge structure of the printing system used for X-axis movement of the carriage assembly. As a non-limiting example, various embodiments of the contoured gas enclosure according to the present teachings can be constructed to accommodate various embodiments of a printing system capable of printing substrate sizes from Gen 3.5 to Gen 10. 3 ~about 95m 3 As a further non-limiting example, various embodiments of a contoured gas enclosure according to the present teachings can have a gas enclosure volume of about 15 m to accommodate various embodiments of a printing system capable of printing, for example, Gen 5.5 to Gen 8.5 substrate sizes. 3 ~about 30m 3 Such embodiments of the contoured gas enclosure may have a volume savings of about 30% to about 70% compared to a non-contoured enclosure having non-contoured dimensions of width, length, and height.
[0029] 1A depicts a perspective view of a gas enclosure assembly 1000 according to various embodiments of the gas enclosure assembly of the present teachings. The gas enclosure assembly 1000 can include a front panel assembly 1200, a center panel assembly 1300, and a rear panel assembly 1400. The front panel assembly 1200 can include a front ceiling panel assembly 1260, a front wall panel assembly 1240 that can have an opening 1242 for receiving a substrate, and a front base panel assembly 1220. The rear panel assembly 1400 can include a rear ceiling panel assembly 1460, a rear wall panel assembly 1440, and a rear base panel assembly 1420. The center panel assembly 1300 can include a first center enclosure panel assembly 1340, a center wall and ceiling panel assembly 1360, a second center enclosure panel assembly 1380, and a center base panel assembly 1320.
[0030] In addition, as depicted in FIG. 1A, the central panel assembly 1300 can include a substantially low-particle environment of the first printhead management system, as well as a second printhead management system auxiliary panel assembly (not shown). Various embodiments of the auxiliary enclosure constructed as a section of the gas enclosure assembly can be sealably isolated from the working volume of the gas enclosure system. For various embodiments of the systems and methods of the present teachings, the auxiliary enclosure can be less than or equal to about 1% of the enclosure volume of the gas enclosure system. In various embodiments of the systems and methods of the present teachings, the auxiliary enclosure can be less than or equal to about 2% of the enclosure volume of the gas enclosure system. For various embodiments of the systems and methods of the present teachings, the auxiliary enclosure can be less than or equal to about 5% of the enclosure volume of the gas enclosure system. In various embodiments of the systems and methods of the present teachings, the auxiliary enclosure can be less than or equal to about 10% of the enclosure volume of the gas enclosure system. In various embodiments of the systems and methods of the present teachings, the auxiliary enclosure may be less than or equal to about 20% of the enclosure volume of the gas enclosure system. Even if opening of the auxiliary enclosure to the ambient environment containing reactive gas is indicated, for example to perform a maintenance procedure, contamination of the entire volume of the gas enclosure can be prevented by isolating the auxiliary enclosure from the working volume of the gas enclosure. Furthermore, given the relatively small volume of the auxiliary enclosure compared to the printing system enclosure portion of the gas enclosure, the recovery time of the auxiliary enclosure may take significantly less time than the recovery time of the entire printing system enclosure.
[0031] As depicted in FIG. 1B, the gas enclosure assembly 1000 can include a front base panel assembly 1220, a center base panel assembly 1320, and a rear base panel assembly 1420 that, when fully constructed, form a contiguous base or pan on which the printing system 2000 can be mounted. Similar to those described for the gas enclosure assembly 100 of FIG. 1A, the various frame members and panels comprising the front panel assembly 1200, center panel assembly 1300, and rear panel assembly 1400 of the gas enclosure assembly 1000 can be joined around the periphery of the printing system 2000 to form a printing system enclosure. The front panel assembly 1200 can be contoured around the periphery of the printing system 2000 to be mounted thereon to form a first tunnel enclosure section of the gas enclosure. Similarly, the rear panel assembly 1400 can be contoured around the periphery of the printing system 2000 to form a second tunnel enclosure section of the gas enclosure. In addition, the center panel assembly 1300 can be contoured around the bridge section of the printing system 2000 to form a bridge enclosure section of the gas enclosure. Together, the first tunnel enclosure section, the second tunnel section, and the bridge enclosure section can form a printing enclosure section. As discussed in more detail herein, in accordance with the present teachings, the auxiliary enclosure can be sealably isolated from the printing system enclosure, for example, during the printing process, to perform various measurement and maintenance tasks with little or no interruption of the printing process.
[0032] Additionally, a fully constructed gas enclosure assembly, such as gas enclosure assembly 1000, when integrated with various environmental control systems can form various embodiments of a gas enclosure system, including various embodiments of an OLED printing system, such as printing system 2000. According to various embodiments of the gas enclosure system of the present teachings, environmental control of the interior volume defined by the gas enclosure assembly can include control of lighting, for example, by the number and placement of lights of specific wavelengths, control of particulate matter using various embodiments of a particle control system, control of reactive gas species using various embodiments of a gas purification system, and temperature control of the gas enclosure assembly using various embodiments of a thermal regulation system.
[0033] A printing system, such as the printing system 2000 of Figure 1B, shown in an expanded view in Figure 1C, can be comprised of a number of devices and apparatus that enable reliable placement of ink droplets at specific locations on a substrate. These devices and apparatus can include, but are not limited to, a printhead assembly, an ink delivery system, a motion system for providing relative motion between the printhead assembly and the substrate, a substrate support apparatus, a substrate loading and unloading system, and a printhead management system.
[0034] The printhead assembly can include at least one inkjet head with at least one orifice capable of ejecting droplets of ink at a controlled rate, velocity, and size. The inkjet head is fed by an ink supply system that provides ink to the inkjet head. As shown in the enlarged view of FIG. 1C, the printing system 2000 can have a substrate, such as a substrate 2050, that can be supported by a substrate support device, such as a chuck, for example, but not limited to, a vacuum chuck, a substrate floating chuck with a pressure port, and a substrate floating chuck with a vacuum and pressure port. In various embodiments of the systems and methods of the present teachings, the substrate support device can be a substrate floating table. As discussed in more detail later herein, the substrate floating table 2200 of FIG. 1C can be used to support the substrate 2050 and can be part of a substrate transport system that, in conjunction with a Y-axis motion system, provides frictionless transport of the substrate 2050. The Y-axis motion system of the present teachings can include a first Y-axis support beam 2351 and a second Y-axis support beam 2352, which can include a gripper system (not shown) for holding the substrate, as discussed in more detail herein. The Y-axis motion can be provided by either a linear air bearing or a linear mechanical system. The substrate floating table 2200 of the printing system 2000 shown in Figures 1B and 1C can define the movement of the substrate 2050 through the gas enclosure assembly 1000 of Figure 1A during the printing process.
[0035] FIG. 1C generally illustrates an example of a substrate floating table 2200 for a printing system 2000 that may include a floating transport of the substrate, which may have a porous medium to provide floating. In the example of FIG. 1C, a handler or other transport may be used to position the substrate 2050 in an input area 2201 of the substrate floating table 2200, such as over a conveyor. The conveyor may position the substrate 2050 at a defined location within the printing system, such as by using mechanical contact (e.g., using an array of pins, trays, or support frame configurations) or by using a gas cushion (e.g., an "air bearing" table configuration) to controllably float the substrate 2050. The print area 2202 of the substrate floating table 2200 may be used to controllably deposit one or more layers on the substrate 2050 during processing. The print area 2202 may also be coupled to an output area 2203 of the substrate floating table 2200. A conveyor can extend along the input region 2201, print region 2202, and output region 2203 of the substrate floating table 2200, and the substrate 2050 can be repositioned as desired for different deposition tasks or during a single deposition operation. The controlled environments near the input region 2201, print region 2202, and output region 2203 can be jointly shared.
[0036] The printing system 2000 of FIG. 1C can include one or more printhead devices 2505, each printhead device having one or more printheads of, for example, nozzle printing, thermal jet, or inkjet type. The one or more printhead devices 2505 can be coupled to or otherwise traverse an overhead carriage, such as the first X-axis carriage assembly 2301. For various embodiments of the printing system 2000 of the present teachings, one or more printheads of the one or more printhead devices 2505 can be configured to deposit one or more patterned organic layers on the substrate 2050 in a "face up" configuration of the substrate 2050. Such layers can include, for example, one or more of an electron injection or transport layer, a hole injection or transport layer, a blocking layer, or an emissive layer. Such materials can provide one or more electrically functional layers.
[0037] According to the floating scheme shown in FIG. 1C, in an embodiment where the substrate 2050 is supported exclusively by a gas cushion, a combination of gas positive pressure and vacuum can be applied through an array of ports or using a distributed porous medium. Such a zone with both pressure and vacuum control can effectively provide a fluid spring between the conveyor and the substrate. The combination of positive pressure and vacuum control can provide a fluid spring with bidirectional stiffness. The gap that exists between the substrate (e.g., substrate 2050) and the surface can be referred to as the "fly height" and such height can be controlled or otherwise established by controlling the positive pressure and vacuum port conditions. In this way, the substrate Z-axis height can be carefully controlled, for example, in the print zone 2202. In some embodiments, mechanical retention techniques such as pins or frames can be used to limit lateral translation of the substrate while it is supported by the gas cushion. Such retention techniques can include using spring-loaded structures, such as to reduce momentary forces on the sides of the substrate while it is being retained. This can be beneficial as high force impacts between the laterally translating substrate and the retention means can cause chipping or even catastrophic failure of the substrate.
[0038] Pressure-only floating zones can be provided at other locations, such as where the fly height does not need to be precisely controlled, such as along the conveyor in the input or output area 2100 or 2300, or elsewhere, as generally illustrated in FIG. 1C. "Transition" zones can be provided, such as where the ratio of pressure to vacuum nozzles gradually increases or decreases. In an illustrative embodiment, there can be an essentially uniform height between the pressure-vacuum zone, the transition zone, and the pressure-only zone, such that, within tolerances, the three zones can essentially lie in one plane. The fly height of the substrate over the pressure-only zone at other locations can be greater than the fly height of the substrate over the pressure-vacuum zone, such as to allow sufficient height so that the substrate does not collide with the floating table in the pressure-only zone. In an illustrative example, the OLED panel substrate can have a fly height of about 150 micrometers (μ) to about 300μ above the pressure-only zone, and then about 30μ to about 50μ above the pressure-vacuum zone. In an illustrative embodiment, one or more portions of the substrate floating table 2200 or other processing equipment may include an “air bearing” assembly provided by NewWay® Air Bearings (Aston, Pennsylvania, United States of America).
[0039] A porous medium can be used to establish a distributed pressurized gas cushion for floating transport or support of the substrate 2050 during one or more of printing, buffering, drying, or thermal treatment. For example, a porous medium "plate" such as coupled to or included as part of a conveyor can provide a "distributed" pressure to support the substrate 2050, similar to the use of individual gas ports. The use of a distributed pressurized gas cushion, without the use of large gas port openings, can further improve uniformity and reduce or minimize the formation of mura or other visible defects in some cases, such as when the use of relatively large gas ports to create the gas cushion leads to non-uniformity despite the use of the gas cushion.
[0040] Such porous media having physical dimensions defined to occupy the entire substrate 2050 or a defined area of the substrate, such as the display area or an area outside the display area, can be obtained from Nano TEM Co., Ltd. (Niigata, Japan). Such porous media can include pore sizes defined to provide a desired flow of pressurized gas over a defined area while reducing or minimizing the formation of mura or other visible defects.
[0041] Printing requires relative motion between the printhead assembly and the substrate. This can be achieved using a motion system, typically a gantry or split-axis XYZ system. Either the printhead assembly can move over a stationary substrate (gantry type) or, in the case of a split-axis configuration, the printhead and substrate can both move. In another embodiment, the printhead assembly can be substantially stationary, for example in the X and Y axes, and the substrate can move in the X and Y axes relative to the printhead, with the Z-axis motion provided either by a substrate support device or by a Z-axis motion system associated with the printhead assembly. As the printhead moves relative to the substrate, droplets of ink are released at the correct time to be deposited at the desired location on the substrate. Substrates can be inserted and removed from the printer using a substrate loading and unloading system. Depending on the printer configuration, this can be achieved using a mechanical conveyor, a substrate floating table with a transport assembly, or a substrate transfer robot with an end effector. The printhead management system can be composed of several subsystems that enable such measurement tasks as checking nozzle firing and measuring drop volume, velocity, and trajectory from all nozzles in a printhead, and maintenance tasks such as wiping or blotting excess ink from inkjet nozzle faces, priming and purging the printhead by expelling ink from an ink supply through the printhead and into a waste container, and replacing the printhead. Given the various components that can comprise an OLED printing system, various embodiments of the OLED printing system can have different footprints and form factors.
[0042] 1C, the printing system base 2100 can include a first riser 2120 and a second riser 2122 on which a bridge 2130 is mounted. For various embodiments of the printing system 2000, the bridge 2130 can support a first X-axis carriage assembly 2301 and a second X-axis carriage assembly 2302 that can control the movement of a first printhead assembly 2501 and a second printhead assembly 2502, respectively, across the bridge 2130. For various embodiments of the printing system 2000, the first X-axis carriage assembly 2301 and the second X-axis carriage assembly 2302 can utilize a linear air bearing motion system that is inherently low particle generating. According to various embodiments of the printing system of the present teachings, the X-axis carriage can have a Z-axis motion plate mounted thereon. In FIG. 1C, a first X-axis carriage assembly 2301 is depicted with a first Z-axis moving plate 2310, while a second X-axis carriage assembly 2302 is depicted with a second Z-axis moving plate 2312. Although FIG. 1C depicts two carriage assemblies and two printhead assemblies, for various embodiments of printing system 2000, there can be a single carriage assembly and a single printhead assembly. For example, either the first printhead assembly 2501 or the second printhead assembly 2502 can be mounted on an X, Z-axis carriage assembly, while a camera system for inspecting features of substrate 2050 can be mounted on the second X, Z-axis carriage assembly. Various embodiments of the printing system 2000 can have a single printhead assembly, for example, either the first printhead assembly 2501 or the second printhead assembly 2502 can be mounted on an X, Z axis carriage assembly, while an ultraviolet lamp for curing the encapsulation layer printed on the substrate 2050 can be mounted on the second X, Z axis carriage assembly.For various embodiments of the printing system 2000, there may be a single printhead assembly, e.g., either a first printhead assembly 2501 and a second printhead assembly 2502 mounted on an X, Z axis carriage assembly, while a heat source for curing the encapsulation layer printed on the substrate 2050 can be mounted on the second carriage assembly.
[0043] In FIG. 1C, each printhead assembly, such as first printhead assembly 2501 and second printhead assembly 2502 in FIG. 1C, can have multiple printheads mounted in at least one printhead device, as depicted in the partial view of first printhead assembly 2501 depicting multiple printhead devices 2505. The printhead device can include, for example, but is not limited by, fluid and electronic connections to at least one printhead, each printhead having multiple nozzles or orifices capable of ejecting ink at a controlled rate, velocity, and size. For various embodiments of the printing system 2000, the printhead assembly can include from about 1 to about 60 printhead devices, and each printhead device can have from about 1 to about 30 printheads in each printhead device. The printhead, for example, an industrial inkjet head, can have from about 16 to about 2048 nozzles capable of ejecting droplet volumes of from about 0.1 pL to about 200 pL.
[0044] According to various embodiments of the gas enclosure system of the present teachings, considering the large number of printhead devices and printheads, the first printhead management system 2701 and the second printhead management system 2702 can be housed in an auxiliary enclosure that can be isolated from the print system enclosure during the printing process to perform various measurement and maintenance tasks with little or no interruption to the printing process. As can be seen in FIG. 1C, the first printhead assembly 2501 can be seen positioned relative to the first printhead management system 2701 for immediate performance of various measurement and maintenance procedures that can be performed by the first printhead management system devices 2707, 2709, and 2711. The devices 2707, 2709, and 2011 can be any of various subsystems or modules for performing various printhead management functions. For example, the devices 2707, 2709, and 2011 can be any of a drop measurement module, a printhead replacement module, a purge receptacle module, and a blotter module. 1C , first printhead management system 2701 can have devices 2707, 2709, and 2711 that can be mounted on a linear rail motion system 2705 for positioning relative to first printhead assembly 2501. Similarly, various devices contained within second printhead management system 2702 can be mounted on a linear rail motion system 2706 for positioning relative to first printhead assembly 2502.
[0045] 1B again for various embodiments of a gas enclosure assembly having an auxiliary enclosure that can be closed and sealably isolated from a first working volume, e.g., a printing system enclosure. As depicted in FIG. 1C, there can be four isolators on the printing system 2000, namely, a first set of isolators 2110 (a second not shown on the opposite side) and a second set of isolators 2112 (a second not shown on the opposite side) that support the substrate floating table 2200 of the printing system 2000. For the gas enclosure assembly 1000 of FIG. 1B, the first set of isolators 2110 and the second set of isolators 2112 can be mounted in respective isolator wall panels, such as the first and second isolator wall panels 1325 and 1327 of the central foundation panel assembly 1320. For the gas enclosure assembly 1000 of FIG. 1B, the central base assembly 1320 can include a first printhead management system auxiliary panel assembly 1330, as well as a second printhead management system auxiliary panel assembly 1370. FIG. 1B of the gas enclosure assembly 1000 depicts the first printhead management system auxiliary panel assembly 1330, which can include a first back wall panel assembly 1338. Similarly, a second printhead management system auxiliary panel assembly 1370, which can include a second back wall panel assembly 1378, is also depicted. The first back wall panel assembly 1338 of the first printhead management system auxiliary panel assembly 1330 can be similarly constructed as shown for the second back wall panel assembly 1378. The second back wall panel assembly 1378 of the second printhead management system auxiliary panel assembly 1370 can be constructed from a second back wall frame assembly 1378 having a second seal support panel 1375 sealably mounted to the second back wall frame assembly 1378. The second seal support panel 1375 can have a second passageway 1365 proximal to a second end (not shown) of the base 2100 .The second seal 1367 can be mounted on the second seal support panel 1375 around the second passage 1365. The first seal can be similarly positioned and mounted around the first passage for the first printhead management system auxiliary panel assembly 1330. Each passage in the auxiliary panel assembly 1330 and the auxiliary panel assembly 1370 can accommodate a printhead management system platform such that the first and second printhead management system platforms 2703 and 2704 of FIG. 1C can pass through the passage. In accordance with the present teachings, passages such as the second passage 1365 of FIG. 1B must be sealable to sealably isolate the auxiliary panel assembly 1330 and the auxiliary panel assembly 1370. It is contemplated that various seals such as inflatable seals, bellows seals, and lip seals can be used to seal passages such as the second passage 1365 of FIG. 1B around a printhead management system platform affixed to the printing system base.
[0046] The first printhead management system auxiliary panel assembly 1330 and the second printhead management system auxiliary panel assembly 1370 can each include a first printhead assembly opening 1342 in a first floor panel assembly 1341 and a second printhead assembly opening 1382 in a second floor panel assembly 1381. The first floor panel assembly 1341 is depicted in FIG. 1B as part of the first central enclosure panel assembly 1340 of the central panel assembly 1300. The first floor panel assembly 1341 is a panel assembly that is common to both the first central enclosure panel assembly 1340 and the first printhead management system auxiliary panel assembly 1330. The second floor panel assembly 1381 is depicted in FIG. 1B as part of the second central enclosure panel assembly 1380 of the central panel assembly 1300. The second floor panel assembly 1381 is a common panel assembly with both the second central enclosure panel assembly 1380 and the second printhead management system auxiliary panel assembly 1370 .
[0047] As previously discussed herein, the first printhead assembly 2501 can be housed in a first printhead assembly enclosure 2503, and the second printhead assembly 2502 can be housed in a second printhead assembly enclosure 2504. According to the systems and methods of the present teachings, the first printhead assembly enclosure 2503 and the second printhead assembly enclosure 2504 can have an opening at the bottom, which may have a perimeter (not shown), so that the various printhead assemblies can be positioned for printing during the printing process. In addition, the portions of the first printhead assembly enclosure 2503 and the second printhead assembly enclosure 2504 that form the housing can be constructed as previously described for the various panel assemblies, such that the frame assembly members and the panels can provide a sealed enclosure.
[0048] Additionally, compressible gaskets, which may be used to seal various frame members, can be affixed around each of the first and second printhead assembly openings 1342 and 1382, or alternatively around the peripheries of the first and second printhead assembly enclosures 2503 and 2504.
[0049] According to the present teachings, the compressible gasket material can be selected from, for example, but not limited to, any of a variety of closed cell polymeric materials, also referred to in the art as expanded rubber materials or expanded polymeric materials. Briefly, closed cell polymers are prepared in a manner in which gas is enclosed in discrete cells, with each discrete cell being enclosed by a polymeric material. Qualities of compressible closed cell polymeric gasket materials that are desirable for use in hermetically sealing frame and panel components include, but are not limited to, that they are robust against chemical attack across a wide range of chemical species, possess excellent moisture barrier properties, are elastic over a wide temperature range, and are resistant to permanent compression set. In general, compared to open cell structure polymeric materials, closed cell polymeric materials have higher dimensional stability, lower moisture absorption coefficients, and higher strength. Various types of polymeric materials from which the closed cell polymeric material can be made can include, but are not limited to, for example, silicone, neoprene, ethylene polyethylene diene terpolymer (EPT), polymers and composites made using ethylene polyethylene diene monomer (EPDM), vinyl nitrile, styrene butadiene rubber (SBR), and various copolymers and mixtures thereof.
[0050] In addition to closed cell compressible gasket materials, another example of a type of compressible gasket material having desirable attributes for use in constructing an embodiment of a gas enclosure assembly according to the present teachings includes a type of hollow extruded compressible gasket material. Hollow extruded gasket materials as a type of material have desirable attributes that may include, but are not limited by, that they are robust against chemical attack across a wide range of chemical species, possess excellent moisture barrier properties, are elastic over a wide temperature range, and are resistant to permanent compression set. Such hollow extruded compressible gasket materials can be provided in a wide variety of shape factors, such as, but not limited to, U-cell, D-cell, square cell, rectangular cell, as well as any of a variety of custom shape factor hollow extruded gasket materials. A variety of hollow extruded gasket materials can be fabricated from the polymeric materials used in closed cell compressible gasket fabrication. For example, but not limited to, various embodiments of hollow extrusion gaskets can be fabricated from silicone, neoprene, ethylene polyethylene diene terpolymer (EPT), polymers and composites made using ethylene polyethylene diene monomer (EPDM), vinyl nitrile, styrene butadiene rubber (SBR), and various copolymers and blends thereof. Compression of such hollow cell gasket materials should not exceed about 50% deflection to maintain desired attributes. It is contemplated that various types of inflatable seals can be utilized to seal the printhead assemblies using the first printhead assembly docking gasket 1345 and the second printhead assembly docking gasket 1385. Such inflatable seals provide rapid sealing and unsealing during processing and may be fabricated from low contaminating materials such as low particle generation, low outgassing polymeric materials such as silicone, neoprene, and butyl rubber materials.
[0051] As depicted in FIG. 1B, first printhead assembly docking gasket 1345 and second printhead assembly docking gasket 1385 are provided to accommodate first printhead assembly opening 1342 and second printhead assembly docking gasket 1385, respectively. During various printhead measurement and maintenance procedures, the first printhead assembly 2501 and the second printhead assembly 2502 can be positioned over the first printhead assembly opening 1342 in the first floor panel assembly 1341 and the second printhead assembly opening 1382 in the second floor panel assembly 1381 by the first X,Z-axis carriage assembly 2301 and the second X,Z-axis carriage assembly 2302, respectively. In that regard, for various printhead measurement and maintenance procedures, the first printhead assembly 2501 and the second printhead assembly 2502 can be positioned over the first printhead assembly opening 1342 of the first floor panel assembly 1341 and the second printhead assembly opening 1382 of the second floor panel assembly 1381, respectively, without covering or sealing the first printhead assembly opening 1342 and the second printhead assembly opening 1382. The first X, Z-axis carriage assembly 2301 and the second X, Z-axis carriage assembly 2302 can dock the first printhead assembly enclosure 2503 and the second printhead assembly enclosure 2504, respectively, with the first printhead management system auxiliary panel assembly 1330 and the second printhead management system auxiliary panel assembly 1370, respectively. For various printhead measurement and maintenance procedures, such docking may effectively close first printhead assembly opening 1342 and second printhead assembly opening 1382 without having to hermetically seal first printhead assembly opening 1342 and second printhead assembly opening 1382. For various printhead measurement and maintenance procedures, docking can include forming a gasket seal between each of the printhead assembly enclosures and the printhead management system panel assembly.The composite structure so formed is sealed when the first printhead assembly enclosure 2503 and the second printhead assembly enclosure 2504 are docked with the first printhead management system auxiliary panel assembly 1330 and the second printhead management system auxiliary panel assembly 1370 to sealably close the first printhead assembly opening 1342 and the second printhead assembly opening 1382 in conjunction with sealably closing passages such as the second passage 1365 and the complementary first passage of FIG. 1B .
[0052] In addition, according to the present teachings, the auxiliary enclosure can be isolated from another internal enclosure volume, such as the printing system enclosure, as well as the exterior of the gas enclosure assembly, by using a structural closure to sealably close passages, such as the first printhead assembly opening 1342 and the second printhead assembly opening 1382 in FIG. 1B. According to the present teachings, the structural closure can include various sealable covers for openings or passages, including the non-limiting example of enclosure panel openings or passages. According to the systems and methods of the present teachings, a gate can be any structural closure that can be used to reversibly cover or reversibly sealably close any opening or passage using pneumatic, hydraulic, electrical, or manual actuation. Thus, a gate can be used to reversibly cover or reversibly sealably close the first printhead assembly opening 1342 and the second printhead assembly opening 1382 in FIG. 1B.
[0053] In the close-up view of the printing system 2000 in FIG. 1C, various embodiments of the printing system can include a substrate floating table 2200 supported by a substrate floating table base 2220. The substrate floating table base 2220 can be mounted on the printing system base 2100. The substrate floating table 2200 of the OLED printing system can support the substrate 2050 and define a movement by which the substrate 2050 can be moved through the gas enclosure assembly 1000 during printing of the OLED substrate. The Y-axis motion system of the present teachings can include a first Y-axis support beam 2351 and a second Y-axis support beam 2352, which can include a gripper system (not shown) for holding the substrate, which will be discussed in more detail herein. The Y-axis motion can be provided by either a linear air bearing or a linear mechanical system. In that regard, the substrate floating table 2200 in conjunction with a motion system, ie, a Y-axis motion system as depicted in FIG. 1C, can provide frictionless transport of the substrate 2050 through the printing system.
[0054] FIG. 1D depicts an expanded view of a first printhead management system 2701 housed within a first printhead management system auxiliary panel assembly 1330 according to various embodiments of the gas enclosure assembly and system of the present teachings. As depicted in FIG. 1D, the auxiliary panel assembly 1330 is shown as a cutaway view so that the details of the first printhead management system 2701 are more clearly visible. In various embodiments of printhead management systems according to the present teachings, such as the first printhead management system 2701 of FIG. 1D, the devices 2707, 2709, and 2011 can be various subsystems or modules for performing various functions. For example, the devices 2707, 2709, and 2011 can be a drop measurement module, a printhead purge reservoir module, and a blotter module. As depicted in FIG. 1D, the printhead replacement module 2713 can provide a location for docking at least one printhead device 2505. In various embodiments of the first printhead management system 2701, the first printhead management system auxiliary panel assembly 1330 can be maintained to the same environmental specifications as the gas enclosure assembly 1000 (see FIG. 1A ). The first printhead management system auxiliary panel assembly 1330 can have a handler 2530 positioned to perform tasks associated with various printhead management procedures. For example, each subsystem can have various parts that are consumable in nature and require replacement, such as replacement of blotter, ink, and waste reservoirs. The various consumable parts can be packaged for immediate insertion, for example, in a fully automated mode using the handler. As a non-limiting example, the blotter can be packaged in a cartridge format that can be easily inserted into the blotter module for use. As another non-limiting example, the ink can be packaged in a cartridge format for use with the replaceable reservoir as well as the printing system. Various embodiments of the waste reservoir can be packaged in a cartridge format that can be easily inserted into the purge receptacle module for use.In addition, parts of various components of the printing system undergoing ongoing use may require periodic replacement. During the printing process, expedient management of the printhead assembly, such as, but not limited to, replacement of a printhead device or printhead, may be desirable. The printhead replacement module may have parts such as printhead devices or printheads that can be easily inserted into the printhead assembly for use. The drop measurement module used for checking nozzle firing and optical detection-based measurement of drop volume, velocity, and trajectory from all nozzles may include sources and detectors that may require periodic replacement after use. Various consumable high utilization parts may be packaged for immediate insertion, for example, in a fully automated mode using the handler. The handler 2530 may have an end effector 2536 mounted on an arm 2534. Various embodiments of end effector configurations may be used, for example, blade-type end effectors, clamp-type end effectors, and gripper-type end effectors. Various embodiments of the end effector can include mechanical gripping and crimping, as well as pneumatic or vacuum assisted assemblies to either actuate portions of the end effector or otherwise retain the printhead device or the printhead from the printhead device.
[0055] With regard to replacing a printhead device or printhead, the printhead replacement module 2713 of the printhead management system 2701 of FIG. 1D can include a docking station for a printhead device having at least one printhead, as well as a storage receptacle for the printhead. Since each printhead assembly (see FIG. 1B) can include from about 1 to about 60 printhead devices, and each printhead device can include from about 1 to about 30 printheads, then various embodiments of the printing system of the present teachings can have from about 1 to about 1800 printheads. In various embodiments of the printhead replacement module 2713, while the printhead devices are docked, each printhead mounted on the printhead device can be maintained in an operable state while not in use with the printing system. For example, when placed in the docking station, each printhead on each printhead device can be connected to an ink supply and electrical connections. Power can be provided to each printhead on each printhead device such that periodic firing pulses to each nozzle of each printhead can be applied while docked to ensure that the nozzles remain primed and do not clog. The handler 2530 of FIG. 1D can be positioned proximate to the printhead assembly 2500. The printhead assembly 2500 can be docked over the first printhead management system auxiliary panel assembly 1330 as depicted in FIG. 1D. During a procedure to replace a printhead, the handler 2530 can remove the target part from the printhead assembly 2500, i.e., either a printhead or a printhead device having at least one printhead. The handler 2530 can retrieve a replacement part, such as a printhead device or a printhead, from the printhead replacement module 2713 to complete the replacement process. The removed part can be placed in the printhead replacement module 2713 for retrieval.
[0056] In FIG. 2A , the gas enclosure system 500 can have a first tunnel enclosure section 1200, which can have an entrance gate 1242 for receiving a substrate, a bridge enclosure section 1300, and a second tunnel enclosure section 1400, which together can form a printing system enclosure. In addition, the gas enclosure system 500 can have an auxiliary enclosure 1330. The auxiliary enclosure 1330 can be sealably isolated from the printing system enclosure of the gas enclosure system 500. For example, during the printing process, the auxiliary enclosure 1330 can be sealably isolated from the printing system enclosure of the gas enclosure system 500 to perform various measurement and maintenance tasks with little or no interruption of the printing process. As discussed in more detail later in this specification in the discussion of FIG. 8, purified inert gas from a purification system such as purification system 3130 of FIG. 8 can be circulated into the printing system enclosure of the gas enclosure system 500, as well as into the auxiliary enclosure 1300.
[0057] For various embodiments of the printing system of the present teachings, the printhead assembly can include about 1 to about 60 printhead devices. Recall that the printhead device can include, for example, but is not limited by, fluid and electronic connections to at least one printhead, each printhead having a plurality of nozzles or orifices capable of ejecting ink at a controlled rate, speed, and size, and each printhead device can have about 1 to about 30 printheads within each printhead device. A printhead, for example, an industrial inkjet head, can have about 16 to about 2048 nozzles capable of ejecting droplet volumes of about 0.1 pL to about 200 pL. Considering the large number of printhead devices and printheads, the auxiliary enclosure can house various embodiments of the printhead management system. According to the present teachings, the auxiliary enclosure can be isolated from the printing system enclosure during the printing process to perform various measurement and maintenance tasks, for example, but not limited to, using various devices and apparatus of the printhead management system. Thus, various measurement and maintenance tasks can be performed with little or no interruption to the printing process.
[0058] FIG. 2B depicts a perspective view of an auxiliary enclosure 1330 of a gas enclosure system according to various embodiments of the present teachings. The auxiliary enclosure 1330 can be an embodiment of an auxiliary enclosure that can be utilized with various gas enclosure systems of the present teachings, such as, for example, but not limited to, the gas enclosure system 1000 of FIG. 1A and the gas enclosure system 500 of FIG. 2A. As shown in FIG. 2B, the auxiliary enclosure 1330 can have a printhead management system platform 2703 that can have a linear rail system 2705 to position various devices and apparatus used for various measurement and maintenance procedures relative to various printhead devices of the printhead assembly. For example, in the partially exploded view of FIG. 2B, a printhead assembly 2500 is shown positioned over the printhead assembly opening 1350. The printhead assembly 2500 can have multiple printhead devices, such as 2505A, 2505B, and 2505C, shown in FIG. 2C. The first motion system platform 2800A and the second motion system platform 2800B can be used to position various devices and apparatus used for various measurement and maintenance procedures mounted on the motion system platforms relative to each of the multiple print head devices of the print head assembly 2500.
[0059] The partial exploded view of Figure 2C depicts a top perspective view of printhead management system 2700 in relation to printhead assembly 2500. As depicted in Figure 2C, first motion system platform 2800A and second motion system platform 2800B can be moved along the Y-axis direction on linear rail system 2705. In that manner, linear rail system 2705 can position various devices and apparatus mounted on the motion system platforms relative to each of printhead devices 2505A, 2505B, and 2505C of printhead assembly 2500. First motion system platform 2800A can support first X-axis motion system platform 2810A, which can have first X-axis linear rail system 2820A. The first X-axis linear rail system 2820A can move various devices mounted on the first X-axis motion system platform 2810A in a direction perpendicular to the orientation of the first motion system platform 2800A on the linear rail system 2705. Similarly, the second motion system platform 2800B can support a second X-axis motion system platform 2810B, which can have a second X-axis linear rail system 2820B. The second X-axis linear rail system 2820B can move various devices mounted on the second X-axis motion system platform 2810B in a direction perpendicular to the orientation of the second motion system platform 2800B on the linear rail system 2705. In that regard, the X, Y motion of the first motion system platform 2800A and the first X-axis motion system platform 2810A, and the X, Y motion of the second motion system platform 2800B and the second X-axis motion system platform 2810B can provide precise X, Y positioning of various devices and apparatus relative to the print head devices 2505A, 2505B, and 2505C, respectively.
[0060] As depicted in FIG. 2C, various devices mounted on the first X-axis motion system platform 2810A of the first motion system platform 2800A can include purge reservoirs 2707A, 2707B, and 2707C for each of the print head devices 2505A, 2505B, and 2505C, as well as a blot station 2709. In FIG. 2C, a first drop measurement module 2711A mounted on the first X-axis motion system platform 2810A of the first motion system platform 2800A and a second drop measurement module 2711B mounted on the second X-axis motion system platform 2810B of the second motion system platform 2800B are depicted to provide calibration information. The first drop measurement system 2711A can be based, for example, but not limited to, on printing a drop from each nozzle of each print head of each print head device on a film under defined conditions and then imaging the film. Information such as drop volume, velocity, and trajectory can be obtained through image analysis of the data so obtained. Alternatively, the second drop measurement system 2711B can be based on, for example, but not limited to, an optical measurement system. For example, the drop volume, velocity, and trajectory of each drop from each nozzle of each printhead of each printhead device can be determined using laser light scattering, such as Phase Doppler Analysis (PDA) and Phase Doppler Interferometry (PDI).
[0061] 3 depicts a Y-axis motion system in accordance with the present teachings depicted in FIG. 3 as mounted on Y-axis beam 2350, which may be, for example, a granite beam. As depicted in a coordinate system, a substrate such as 2050 mounted on floating table 2200 can advance in the + / - Y-axis direction. Floating table 2200 provides frictionless, low particle generating substrate support for substrate 2050 at a precise Z-axis flying height, while Y-axis motion system 2600 provides frictionless, low particle Y-axis transport of substrate 2050 relative to a printhead assembly, such as printhead assembly 2501 of FIG. 1C.
[0062] Various embodiments of the low particle generating Y-axis motion system of the present teachings utilized in conjunction with a floating table can be compared, for example, to a chuck mounted on a large turntable. With a chuck mounted on a large turntable, a large motor would be required to operate the large turntable, resulting in significant heat dissipation as well as particle generation due to the movement of the solid part relative to the solid part. With various embodiments of the gripper system of the present teachings, the only inertia in the system is the mass of the substrate and gripper assembly, such that any linear motor required for Y-axis movement is substantially smaller than for a chuck mounted on a turntable.
[0063] The inventors have also discovered that even if the Y-axis beam 2350 is manufactured to provide a surface that is both flat and highly parallel, it may produce deviations in travel that may be unacceptable for the intended application for precision of the orientation of the substrate relative to the theta-Z (θ-Z) axis during Y-axis travel. For example, but not limited to, printing ink into pixels of an OLED device substrate is a process requiring precision orientation of the substrate in the travel axis, where a beam manufactured with high tolerances of flatness and parallelism may still produce unacceptable deviations in substrate orientation during travel. Thus, various embodiments of the Y-axis motion system 2600 of the present teachings utilizing an air bearing motion system for transporting the Y-axis carriage assembly 2620 can provide reliable and accurate low particle generating Y-axis transport of substrates, provide operation at high speeds with rapid acceleration and deceleration, and eliminate the need for dissipation of excess thermal contamination in a gas enclosure system. In addition, the gripper motion control assembly 2650 of the Y-axis motion system 2600 can provide dynamic rotation of the substrate's orientation about the theta-Z (θ-Z) axis during Y-axis travel to maintain a high degree of precision for substrate orientation parallel to the travel axis. Thus, the gripper motion control assembly 2650 of the Y-axis motion system 2600 can maintain the substrate orientation parallel to the Y-axis travel direction with a high degree of precision, for example, in a horizontal plane determined by the substrate's fly height.
[0064] As shown in FIG. 3, various embodiments of the linear Y-axis motion system 2600 can include a substrate gripper assembly 2610, a Y-axis carriage assembly 2620, and a gripper motion control assembly 2650. In FIG. 3, the gripper assembly 2610 can include a substrate gripping surface, such as, for example, but not limited to, a vacuum chuck bar 2612, which can be supported on a substrate gripper frame 2614. The substrate gripper frame 2614 can be mounted to the Y-axis carriage assembly 2620 of the Y-axis motion system assembly 2600. In FIG. 3, a first air bearing pack 2628A and a second air bearing pack 2628B of the Y-axis carriage assembly 2620 are shown mounted to a first saddle arm 2622A and a second saddle arm 2622B, respectively, which are part of a plurality of air bearings that support the Y-axis carriage assembly 2620. The Y-axis carriage assembly 2620 can be translated in the + / -Y-axis direction using a brushless linear motor. As will be discussed in more detail later herein, the gripper motion control assembly 2650 can utilize a dual voice coil motor assembly, such as voice coil motor assemblies 2630A and 2630B, and a pivot assembly 2660. Various embodiments of the gripper motion control assembly can include at least one voice coil motor and an air bushing center pivot, along with a position sensor and a motion controller. Various embodiments of the Y-axis motion system of the present teachings based on a voice coil motor can be highly reliable and provide orientation accuracy of less than one micron. In addition, the direct coupling of the substrate to such a gripper assembly of the Y-axis motion system allows for frictionless high speed operation with rapid acceleration and deceleration using a linear brushless motor for the transport of the Y-axis carriage assembly 2620, as well as dynamic rotation of the substrate orientation around the theta-Z (θ-Z) axis during Y-axis travel using the gripper motion control assembly 2650 to maintain a high degree of accuracy for substrate orientation parallel to the travel axis.Thus, various embodiments of a Y-axis motion system utilizing an air bearing gripper system can provide precision low particle generating transport of a substrate 2050 supported on a floating table 2200 through a printing system such as the printing system 2000 of FIG. 1C. Such frictionless Y-axis motion systems for moving a substrate can utilize either one or two Y-axis rails. The service bundle carrier 2430 can be used for management of various service bundles, which can include, for example, but are not limited by, optical cables, electrical cables, wires, tubing, and the like. Various embodiments of a service bundle according to the present teachings can be connected to a printing system to provide the various optical, electrical, mechanical, and fluidic connections required to operate a functioning printing system.
[0065] FIG. 4A is a top view of the Y-axis motion system 2600, showing the gripper assembly 2610, the Y-axis carriage assembly top plate 2624, and the gripper motion control assembly 2650. The gripper assembly 2610 can include a vacuum chuck bar 2612 mounted on a gripper frame 2614. The Y-axis carriage assembly top plate 2624 is depicted in FIG. 4A with a first end 2623 and a second end 2625. The gripper assembly 2610 and the Y-axis carriage assembly 2620 can be joined through a subassembly of the gripper motion control assembly 2650. For example, the first voice coil assembly 2630A and the second voice coil assembly 2630B have first and second voice coil housings 2632A and 2623B, respectively, that can be affixed to the Y-axis carriage assembly 2620 on one side of the voice coil assembly housing and to the gripper assembly 2610 on the other side of the voice coil housing. Additionally, the central pivot 2660 can include an air bearing housing 2662 that can be secured to the protrusion 2616 of the gripper assembly 2610. FIG. 4B is a partial top view of the air bearing Y-axis motion system 2600 of FIG. 4A depicting an enlarged top view of the second end 2625 of the Y-axis motion system 2600. In FIG. 4B, an enlarged top view of the gripper assembly 2610 is particularly visible, as well as an enlarged top view of the voice coil assembly 2630B. Various embodiments of the vacuum chuck bar 2612 mounted on the gripper frame 2614 can include a plurality of vacuum sockets 2613, three of the plurality are shown in FIG. 4B. The vacuum sockets 2613 are spaced apart at intervals along the length of the vacuum chuck bar 2612 such that the vacuum chuck bar 2612 can easily engage and release the substrate, eliminating the need for two-sided mechanical gripping of the substrate, such as the need for a two-finger or three-finger gripping device. In addition to the first air bearing pack 2628A and second air bearing pack 2628B of FIG. 3 for supporting the Y-axis carriage assembly 2620, a second upper pack 2628D can be mounted to the underside of the Y-axis carriage assembly top plate 2624 (see FIGS. 3 and 4B).A first upper pack (not shown) may be mounted symmetrically proximal to the first saddle arm 2622A and below an opposing first end 2623 of the Y-axis carriage assembly top plate 2624 (see FIG. 4A).
[0066] In addition to the air bearing pack for supporting the Y-axis carriage assembly 2620, as discussed in further detail herein, the voice coil air bearing 2641 of the second voice coil assembly 2630B depicted in FIG. 4B can be utilized for vertical stabilization of the gripper assembly 2610 along with a voice coil air bearing (not shown) associated with the first voice coil assembly 2630A (see FIG. 4A). In the top view rendering of FIG. 4B, a single air bearing is visible. As a preload of the voice coil air bearing in a voice coil assembly, such as the voice coil assemblies 2630A and 2630B in FIG. 4A, the required system stiffness can be ensured. As depicted in the top view of FIG. 4B, various embodiments of the Y-axis motion system of the present teachings can include a single air bearing. Various embodiments of the systems and methods utilizing a single air bearing in a voice coil assembly can preload the air bearing using, for example, but not limited to, gravity, vacuum, or magnetic preload. Various embodiments of the Y-axis motion system may utilize an opposing second air bearing to provide a bearing preload. Various embodiments of the voice coil motor assembly of the present teachings, such as the voice coil assembly 2630B of FIG. 4B, can include a voice coil housing 2633B that can be joined to the Y-axis carriage 2620. As discussed in more detail herein, the voice coil gripper frame mounting block 2648B of the voice coil assembly 2630B can be used to affix the voice coil assembly to the gripper frame 2614. The voice coil assembly 2630B can also include a voice coil shaft 2634B that can have a pivot screw 2635B and a retaining screw 2636B, as well as a set screw 2637B. In addition, the voice coil assembly 2630B can have a linear encoder 2638B. Finally, the center pivot 2660 is an air bushing configured to provide a reliable and accurate axis of rotation for theta-Z (θ-Z) rotation for an embodiment of the gripper motion control system 2650 of the present teachings.Although parts of voice coil assembly 2630B are described, voice coil assembly 2630A can be similarly described.
[0067] FIG. 5A is an isometric view of a carriage assembly, a gripper motion control assembly, and a gripper assembly of a Y-axis motion system according to various embodiments of the systems and methods of the present teachings. As depicted in FIG. 5A, it depicts a Y-axis carriage assembly 2620 with first and second saddle arms 2622A and 2622B, respectively, having a first puck 2628A and a second puck 2628B, respectively, mounted thereon such that the pucks are proximal to the Y-axis beam 2350 (see FIG. 3). The first and second saddle arms 2622A and 2622B and the Y-axis carriage assembly side frame 2626 can be joined to a Y-axis carriage assembly top plate 2624. The Y-axis carriage assembly side frame 2626 can have a first side 2627 that is proximal to the Y-axis beam 2350 (see FIG. 3) and a second side 2629 that is proximal to the gripper frame 2614. The gripper motion control assembly 2650 can include first and second voice coil assemblies 2630A and 2630B, respectively, and a central pivot assembly 2660. As previously discussed herein, the gripper motion control assembly 2650 is joined to both the Y-axis carriage assembly 2620 and the gripper assembly 2610, thereby effectively joining the Y-axis carriage assembly and the gripper assembly (see also FIG. 4B). When a substrate, such as substrate 2050 of FIG. 3, is held by vacuum chuck bars 2612 mounted to gripper frame 2614, dynamic angular (θ-Z) adjustments can be made to the substrate by gripper motion control assembly 2650 as Y-axis carriage assembly 2620 travels across Y-axis beam 2350 to offset the effects of imperfections in the axis beam (see FIG. 3). Thus, a substrate during Y-axis travel can be maintained with high precision with respect to its orientation about the theta-Z (θ-Z) axis during Y-axis travel using gripper motion control assembly 2650 to maintain a high degree of precision for substrate orientation parallel to the travel axis. Various embodiments of gripper motion control assembly 2650 can maintain the orientation of the substrate parallel to the Y-axis of travel within + / - 4300 microradians.Thus, the gripper motion control assembly 2650 of the Y-axis motion system 2600 can maintain the substrate orientation parallel to the Y-axis travel direction with a high degree of precision, for example, in a horizontal plane determined by the fly height of the substrate.
[0068] FIG. 5B generally depicts a vertical perspective view through the Y-axis carriage assembly 2620 of FIG. 5A illustrating the gripper assembly 2610 mounted thereon. In FIG. 5B, the first and second voice coil motor assemblies 2630A and 2630B, respectively, and the vacuum chuck bar 2612 and center pivot 2660 on the gripper frame 2614 are shown. In FIG. 3 and FIG. 5A, the first and second air bearing packs 2628A and 2628B of the Y-axis carriage assembly 2620 are shown. In FIG. 4B, the first and second air bearing packs under the Y-axis carriage assembly top plate 2624 were described. As shown in FIG. 5B, the Y-axis carriage assembly side frame 2626 can have multiple air bearing packs mounted thereon, such as air bearing packs 2628E through 2640H. In addition to the air bearing packs located on the saddle arms and top plate of the carriage assembly proximate the Y-axis beam 2350, a number of air bearing packs mounted on the Y-axis carriage assembly side frames 2626 can provide bearing support between the side frames 2626 and corresponding sides of the Y-axis beam 2350. For example, various embodiments of the Y-axis motion systems of the present teachings, generally illustrated in Figures 3 through 5B, can provide low particle generating and low heat generating transport of substrates through a printing system.
[0069] 6 depicts a second side 2627 of the Y-axis carriage assembly side frame 2626, which is the proximal side of the gripper frame 2614, and generally illustrates the Y-axis movement system subassembly, including the gripper motion control assembly 2650, without the gripper frame 2614 mounted thereto. The first and second voice coil assemblies 2630A and 2630B can be mounted at opposite top ends of the second side 2627 of the Y-axis carriage assembly side frame 2626, while the central pivot 2660 can be mounted in a top central portion of the second side 2627 of the Y-axis carriage assembly side frame 2626. The first and second voice coil assemblies 2630A and 2630B can include first and second voice coil assembly shafts 2634A and 2634B, and first and second voice coil assembly housings 2632A and 2632B, respectively. Each of the first voice coil assembly shaft 2634A and the second voice coil assembly shaft 2634B can have a set screw, i.e., first voice coil assembly set screw 2635A and second voice coil assembly set screw 2637B, respectively, each set screw having a shank that extends into the voice coil assembly set screw hole 2621A and 2621B, respectively. Additionally, as depicted in FIG. 6, each voice coil assembly shaft, i.e., first voice coil assembly shaft 2634A and second voice coil assembly shaft 2634B, can have a pivot screw and a retaining screw, i.e., pivot screw 2635A and retaining screw 2636A for the first voice coil assembly shaft 2634A, and pivot screw 2635B and retaining screw 2636B for the first voice coil assembly shaft 2634B. For initial adjustment of the horizontal position of the gripper assembly and substrate relative to the floating table for the first and second voice coil assemblies 2630A and 2630B, the pivot screw and retaining screw can be loosened until the horizontal position of the gripper assembly and substrate is correctly adjusted, and then the pivot screw and retaining screw are tightened.Adjusting the voice coil assemblies 2630A and 2630B equally can be done to adjust the position of the gripper assembly in + / -Z relative to the floating table (see FIG. 3), while adjusting the voice coil assemblies 2630A and 2630B unequal can be done to adjust the position of the gripper assembly in theta-X (θ-X) relative to the floating table (see FIG. 3). As previously discussed herein, various embodiments of the voice coil assemblies of the present teachings utilize a pair of air bearings, a top or top air bearing, such as air bearing 2640A of the first voice coil assembly 2630A and air bearing 2641A of the second voice coil assembly 2630B, and an opposing bottom air bearing, such as air bearing 2640B of the first voice coil assembly 2630A and air bearing 2641B of the second voice coil assembly 2630B. Each bottom air bearing is used to apply a preload to each top or top air bearing.
[0070] FIG. 7A generally illustrates an isometric view of a voice coil assembly according to the present teachings. The voice coil assembly can include a voice coil housing 2632, which can have a first voice coil housing first side 2631 and an opposing voice coil housing second side 2633, and a voice coil shaft 2634. The voice coil shaft 2634 can include a pivot screw 2635 and a retaining screw 2636, as well as a set screw 2637, all of which can be used in the initial vertical adjustment of the gripper assembly relative to the floating table, as previously discussed herein with respect to FIG. 6. In FIG. 7B, the pivot screw 2635 and the retaining screw 2636 have been removed so that the pivot through the hole 2645 that receives the pivot screw 2635 and through the slot 2646 that receives the retaining screw 2636 can be seen. The voice coil assembly 2630 can have a pair of air bearings, such as an upper air bearing 2642A and an opposing or lower air bearing 2642B, where the lower air bearing is used to apply a preload to the upper air bearing. The voice coil assembly 2630 can include a voice coil gripper frame mounting block 2648, which can be used to affix the voice coil assembly to the gripper frame (see FIG. 4B). In addition, a voice coil assembly of the present teachings can include a linear encoder 2638 oriented in the X direction. Various embodiments of the Y-axis motion system of the present teachings utilize a linear encoder header that allows the voice coil to be oriented to within 1-2 microns in the X direction relative to the carriage assembly, and various embodiments of the Y-axis motion system of the present teachings utilize a linear encoder header that provides dynamic adjustment in theta-Z (θ-Z) during transport of a substrate on the Y-axis beam. Additionally, for various embodiments of the gripper motion control assembly 2650 of FIG. 6, a master-slave control system can be used to control the first voice coil assembly 2630A and the second voice coil assembly 2630B of FIG. 6 so that when one voice coil responds to correct theta-Z (θ-Z) orientation, the other voice coil is controlled in an equal canceling manner.Various embodiments of the gripper motion control assembly 2650 can maintain the orientation of the substrate parallel to the Y-axis of travel within + / - 4300 microradians. Thus, the gripper motion control assembly 2650 of the Y-axis motion system 2600 can maintain the substrate orientation parallel to the Y-axis travel direction with a high degree of precision, for example, in the horizontal plane determined by the fly height of the substrate.
[0071] FIG. 8 is a top view of a Y-axis motion system 2600 showing a gripper assembly 2610, a Y-axis carriage assembly top plate 2624, and a gripper motion control assembly 2650, similar to FIG. 4A showing the location of the cross-sectional views of FIGS.
[0072] Figure 9 illustrates a cross-sectional view through a voice coil assembly generally, and is specifically designated in Figure 8 as a cross-sectional view through voice coil assembly 2630B, however any description given herein with respect to the cross-sectional view of Figure 9 applies equally to voice coil assembly 2630A. A voice coil gripper frame mounting block 2648B is depicted in Figure 9 as positioned between first air bearing 2641A and second air bearing 2641B of voice coil assembly 2630B. Associated with each of the first air bearing 2641A and second air bearing 2641B are air bearing spherical pivots 2643A and 2643B, respectively. Air bearing spherical pivot 2643A associated with first air bearing 2641A and air bearing spherical pivot 2643B associated with first air bearing 2641B allow each air bearing to float theta-X (θ-X) and theta-Y (θ-Y) such that first air bearing 2641A and second air bearing 2641B remain in a parallel arrangement relative to mounting block 2648B. In addition to being positioned between first air bearing 2641A and second air bearing 2641B, voice coil gripper frame mounting block 2648B is also affixed to voice coil holder 2647. Voice coil holder 2647 and voice coil magnet base are housed inside second side 2633 of the voice coil housing. Voice coil holder 2647 is depicted in FIG. 9 as being associated with coil magnet base 2649. During operation, the force of movement of the voice coil magnet base 2649 is transferred to the voice coil magnet holder 2647, which is transferred to the voice coil gripper frame mounting block 2648B and, in turn, to the gripper frame 2614. As previously discussed herein, various embodiments of the gripper motion control assembly 2650 can use master-slave control of two voice coil assemblies such that the two voice coils act in sync to maintain the gripper assembly orientation relative to the direction of travel. Also depicted in FIG. 9 is the vacuum manifold 2618 of the gripper assembly 2610 in fluid communication with the vacuum groove 2617.As depicted in FIG. 9, the multiple vacuum sockets depicted in FIG. 4B can be in fluid communication with a vacuum manifold 2618 via vacuum grooves 2617.
[0073] FIG. 10 illustrates a cross-sectional view through the central pivot assembly 2660 generally as designated in FIG. 8. The pivot assembly 2660 may include an air bushing housing 2662 that may house a first 2664A and a second 2664B air bushing. The first 2664A and the second 2664B air bushing may be configured around the central shaft 2666, with the use of two air bushings providing the necessary system stiffness. The first 2664A and the second 2664B air bushing may be fabricated from a porous material, such as porous graphite, to ensure that an even gas flow, such as an inert gas, may be evenly distributed around the central shaft 2666. The central shaft 2666 may be held by an upper clamp 2665 and a lower clamp 2667, which may be secured to the carriage assembly top plate 2624. A center pivot adapter plate 2669 can be configured to affix the air bushing housing 2662 to the gripper frame 2614. In that regard, any theta-Z (θ-Z) rotation of the air bushing assembly 2660 as a result of carriage assembly movement will be responsively transferred to the gripper assembly 2610. Also depicted in Figure 10 are carriage assembly air bearing 2638D (see Figure 4B) and carriage assembly air bearing 2638H (see Figure 5B).
[0074] As previously discussed herein, maintaining a controlled environment within the printing enclosure is paramount for the various processes involved in the manufacture of various OLED devices. According to various embodiments of the gas enclosure system of the present teachings, environmental control of the internal volume defined by the gas enclosure assembly can include, for example, control of illumination by the number and placement of lights of specific wavelengths, control of particulate matter using various embodiments of a particle control system, control of reactive gas species using various embodiments of a gas purification system, and temperature control of the gas enclosure assembly using various embodiments of a thermal regulation system, as will be discussed in further detail later herein. One aspect of thermal regulation relates to minimizing the heat load within the encapsulated printing system, for example, as provided by the design of the Y-axis motion system as previously described herein.
[0075] In addition to the Y-axis motion system, with respect to the schematic diagram shown in FIG. 11, minimizing the thermal load can also include minimizing the thermal load of the motor used to control the movement of the Z-axis motion plate by utilizing pneumatic balancing. In FIG. 11, a control loop 100 can be used to ensure that the currently running Z-axis motor 2305 can be optimized during operation, especially since increasing the current to the Z-axis motor 2305 would increase the motor temperature when under load. One disadvantage of such motor heating can be loss of printing accuracy due to thermal expansion of the motor and motor assembly. In addition, as previously described herein, control of heat dissipation is an aspect of environmental control of the encapsulated printing system. Thus, the control loop 100 of FIG. 11 is shown to include a pneumatic balancing system 2309 that can compensate for the load on the Z-axis motor 2305 by providing an automatic balancing force against the load to minimize the motor current, thereby minimizing motor heating.
[0076] In Figure 11, Z cmdInput 105 is a command Z-axis position of a printhead assembly, such as first printhead assembly 2501 and second printhead assembly 2502 of FIG. 1C. With reference to FIG. 1C, recall that first printhead assembly 2501 and second printhead assembly 2502 can be mounted on first Z-axis translation plate 2310 and second Z-axis translation plate 2312, respectively. First Z-axis translation plate 2310 and second Z-axis translation plate 2312 are mounted on first X-axis carriage assembly 2301 and second X-axis carriage assembly 2302, respectively. In that regard, each printhead assembly can be positioned in the X, Z directions relative to a substrate, such as substrate 2050 of FIG. 1C. For example, during an exemplary process step, such as, but not limited to, a printing process, the Z-axis position may be determined by a command Z-axis position. cmd Input 105 is the motor controller C M 110, and the command Z-axis position i cmd 1C. The current associated with motor drive D120 can be sent to Z-axis linear motor 2305 to move a Z-axis moving plate, such as first Z-axis moving plate 2310 and second Z-axis moving plate 2312 of FIG. 1C. The exact position of the Z-axis moving plate in the Z-axis direction can be measured using encoder 2303, and the information about the exact Z-axis position can then be fed to motor controller C120 until the commanded position is reached. M 110. In addition, cmd 115 can be sent to a low pass filter LP 130, which can act to filter current spikes and additionally gate the controller response. The low pass filter output 135 is input to the air pressure controller C P 140. Then, the air pressure controller C P 140 is i cmd Optimize the equilibrium pressure P115 CBDuring an exemplary process step, such as, but not limited to, docking of the printhead assembly to a docking gasket as previously discussed herein, a sealing force F can be calculated as shown in FIG. S The motor force F required to counteract M The extra motor force allows the seal to be maintained, but requires increased motor current, which can result in increased heating of the motor.
[0077] As depicted in FIG. 11, the motor force F during sealing of the printhead assembly against the docking gasket M In order to maintain the pneumatic balance force F so as to minimize the motor heating that would result from the increased current. CB can be utilized. S can be detected by continuously detecting the current of the motor 2305. The sealing force F S The magnitude and direction of the required pneumatic counterforce can be calculated, and the command equilibrium pressure P CB 145 to the pressure regulator R150. P 140. The pressure regulator R150 then controls the air pressure counter force F CB In accordance with the present teachings, the control loop 100 controls all forces, i.e., the sealing force F S , specific tool environment F E , air pressure counter force F CB , motor force F M , and gravity F adopted for Z-axis assembly G The functions operate in such a way that the sum of is zero.
[0078] FIG. 12A depicts the printing system 2000 showing a first X-axis carriage assembly 2301 and a second X-axis carriage assembly 2302 without a printhead assembly mounted thereon. In FIG. 12B, a front view of the X-axis carriage assembly 2301 mounted to the bridge 2130 is depicted, in which a pneumatic balancing system 2309 can include a first pneumatic cylinder 2307A and a second pneumatic cylinder 2307B. Although an example of the use of the control loop 100 has been given for the process of docking a gasket and a printhead assembly, the control loop 100 can be utilized for a number of purposes. For example, during a printing operation, a pneumatic balancing system such as the pneumatic balancing system 2309 can operate to support the Z-axis moving plate and any associated load in response to various embodiments of the pneumatic balancing control loop to minimize current to the motor 2305 of FIG. 11 during printing. In addition, various embodiments of pneumatic counterbalance control loops, such as control loop 100 of FIG. 11, can be used for monitoring parameters of the printing system. For example, the glide of the Z-axis moving plate can change over time, creating increased friction due to wear and aging. The increased load on the Z-axis moving plate motor as a result of the increased friction can be counteracted using various embodiments of pneumatic counterbalance control loops and associated systems. As another non-limiting example, the pneumatic controller C P The change in pressure monitored by can be monitored as a quality metric to initiate unscheduled maintenance on the Z-axis motion system before a failure becomes evident. It should be noted that although several examples have been given with respect to specific carriage assemblies, the various embodiments of the pneumatic balance control loop and associated systems are generally applicable to any carriage assembly and any load of the present teachings.
[0079] As depicted in FIG. 13, the gas enclosure 1000A can house the printing system 2000A. The printing system 2000A can have all the features described for the printing system 2000 of FIG. 17, while the gas enclosure system 500A has features as described for the various embodiments of the gas enclosure system 500 of FIG. 18. The printing system 2000A can have a printing system base 2100 that can be supported by at least two sets of isolators, such as the isolator set 2110 including the isolators 2110A and 2110B of FIG. 13. The Y-axis motion system 2350 can be mounted on the printing system base 2100. The substrate 2050 can be floatingly supported by the substrate floating table 2200. The printing system base 2100 can support a first riser 2120 and a second riser 2122, on which the bridge 2130 can be mounted. The print system bridge 2130 can support a first X-axis carriage assembly 2301, on which the printhead device assembly 2500 can be mounted, and a second X-axis carriage assembly 2302, on which the camera assembly 2550 can be mounted. In addition, the gas enclosure 1000A can have an auxiliary panel assembly 1330, which can enclose a printhead management system 2701, as well as a waste containment system for a bulk ink delivery system. The auxiliary panel assembly 1330 can be in fluid communication with the remaining working volume of the gas enclosure 1000A through the printhead assembly opening 1342. Various embodiments of the bulk ink delivery system can be in fluid communication with various embodiments of a local ink delivery system, which can be external to the gas enclosure 1000A and proximal to the printhead device assembly 2500 on the first X-axis carriage assembly 2301.
[0080] 14 is a schematic diagram of various embodiments of a bulk ink delivery system 3300 that can be in fluid communication with a local ink delivery system 3500. The bulk ink delivery system (BIDS) 3300 includes a first BIDS ink supply line L that is in fluid communication with a first ink source. B1 , and a second BIDS ink supply line L in fluid communication with a second ink source. B2 The first BIDS ink supply line L B1 and the second BIDS ink supply line L B2 respectively, the first BIDS ink supply safety valve V B1 and the second BIDS ink supply safety valve V B2 The first BIDS ink supply safety valve V B1 and the second BIDS ink supply safety valve V B2 The first BIDS ink supply valve V can be used to isolate the first and second ink supplies from the upstream lines, for example, when the ink supply containers need to be replaced or refilled. B3 is open when the first ink supply container, Ink 1, is in use. Similarly, the second BIDS ink supply valve V B4 is open when the second ink supply container, Ink 2, is in use.
[0081] Although two ink supplies are shown in Fig. 14, multiple ink supply containers can be included in the bulk ink supply system 3310 and can act as sequential sources of ink. For example, as shown in Fig. 14, a first BIDS ink supply relief valve V is connected to the first ink supply container, Ink 1, such that when the level of ink in the first ink supply container, Ink 1, is at the low level indicator, the first ink supply container, Ink 1, can be isolated and either refilled or replaced. B1 can be closed, and the first BIDS ink supply valve V B3Following isolation of Ink 1, the second BIDS ink supply safety valve V can be closed so that a second ink supply container, Ink 2, can serve as an ink supply for a gas enclosure system, such as gas enclosure system 500A of FIG. B2 can be opened, and the second BIDS ink supply valve V B4 The first BIDS ink supply line L B1 and the second BIDS ink supply line L B2 can be joined at a T-junction using two valves, as shown in FIG. 14, or a three-way valve can be used. The first BIDS ink supply line L B1 Either the second BIDS ink supply line or the third BIDS line L depending on which ink supply is in use. B3 The third BIDS line L B3 is a first BIDS pump P, which can be a pneumatic piston syringe or a metering pump that is compatible with the ink chemistry being used. B1 During a process requiring ink flow from the bulk ink supply system 3310, the fifth BIDS valve V B5 is in the open position and the third BIDS line L B3 and the fourth BIDS line L B4 The fourth BIDS line L B4 a fifth BIDS line L which passes through a filter 3312 and is in fluid communication with a degasser to remove dissolved gases in the ink from the bulk in the supply of the bulk ink supply system 3310; B5 Finally, after being degassed, the ink is delivered to the sixth BIDS line L, which is in fluid communication with the local ink delivery system 3500. B6 The sixth BIDS line L B6 can be controlled at the outlet by a suck-back valve located in the local ink delivery system 3500, as shown in FIG.
[0082] In addition to the bulk ink supply system 3310, the bulk ink delivery system 3300 includes a solvent line, i.e., the seventh BIDS solvent line L B7 , as well as an inert gas line, i.e., the eighth BIDS gas line L, depicted in FIG. 14 as utilizing a nitrogen source. B8 A seventh BIDS solvent line L B7 is a second BIDS pump P, which can be a pneumatic piston syringe or a metering pump that is compatible with the chemistry of the solvent used. B2 The seventh BIDS solvent line L B7 and the 8th BIDS Gas Line L B8 each of the first BIDS maintenance system relief valves V1, V2, V3, V4, V5, V6, V7, V8, V9, V10, V11, V12, V13, V14, V15, V16, V17, V18, V19, V20, V21, V22, V23, V24, V25, V36, V37, V48, V49, V50, V51, B6 and the second BIDS maintenance system safety valve V B7 For example, during a maintenance procedure, the BIDS valve associated with the bulk ink supply system 3310, i.e., BIDS valve V B1 From V B5 will remain in the closed position. If a maintenance procedure utilizing solvent is implemented, the solvent line, i.e., the seventh BIDS solvent line L B7 6, a sixth BIDS line L 1 in fluid communication with the local ink delivery system 3500 as previously described. B6 BIDS valve V B6 , V B8 , and V B10 In addition, if inert gas is utilized during the maintenance procedure, the inert gas line, i.e., the eighth BIDS gas line L, can be opened. B8 6, a sixth BIDS line L 1 in fluid communication with the local ink delivery system 3500 as previously described. B6 BIDS valve V B7 , V B9 , and V B10can be opened. Similar to that described for the bulk ink supply system 3310, the seventh BIDS solvent line L B7 and the 8th BIDS Gas Line L B8 The 9th BIDS line L B9 Note that the third BIDS line L can be joined at a T-junction using two valves as shown in FIG. B3 and the 9th BIDS Line L B9 The fourth BIDS line L B4 14. In either case, a three-way valve can be used in an equivalent manner to the T-junction using two valves to fluidly communicate with the
[0083] 14, a local ink delivery system 3500 according to various systems and methods of the present teachings can include a local ink supply system 3600, a printhead ink delivery system 3700, and a local ink waste assembly 3800. For various embodiments of the present teachings, the local ink supply system 3600 is connected to the sixth BIDS line L B6 The local ink waste assembly 3800 can be in fluid communication with the bulk ink delivery system 3300 via a tenth BIDS line L B10 The tenth BIDS line L can be in fluid communication with the bulk ink delivery system waste assembly 3340 through B10 is a third BIDS pump P, which may be a pneumatic piston syringe or a metering pump that is compatible with the waste chemicals being removed from the printhead ink delivery system 3700. B3 may have the following structure:
[0084] 15, there is shown a schematic diagram of various embodiments of a bulk ink delivery system 3301. The bulk ink delivery system 3301 can be in fluid communication with a local ink delivery system 3501. For various embodiments of the bulk ink delivery system 3301, a pump P B1 can be a metering pump that can effectively deliver both liquid and gaseous fluids. In that regard, both the bulk ink supply system 3311 and the maintenance system 3331 of the bulk ink delivery system 3301 use the metering pump P for flow control. B1 As depicted in FIG. 15, a metering pump P B1 provides a controllable manifold system having three input lines with the possibility of three output lines, two of which are shown in FIG. 15, all controlled using metering pump valves as shown. The number of controllable input and output lines can vary according to various embodiments of the metering pump. Various embodiments of the metering pumps utilized in the embodiments of the bulk ink delivery system of the present teachings can have attributes that can include, but are not limited by, for example, the ability to control both liquid and gaseous fluids, corrosion-resistant polymer surfaces in contact with the fluid stream to prevent corrosion and contamination, zero dead volume connections to prevent cross contamination, minimal hold-up volumes for rapid priming using minimal volumes of various inks, and valves with suck-back capabilities. Thus, various embodiments of the bulk ink delivery system 3301 can utilize fewer valves and pumps than various embodiments of the bulk ink delivery system 3300 of FIG.
[0085] The bulk ink delivery system (BIDS) 3301 of FIG. 15 includes a first BIDS ink supply line L in fluid communication with a first ink source. B1 and a second BIDS ink supply line L in fluid communication with a second ink source. B2 The first BIDS ink supply line L B1 and the second BIDS ink supply line L B2are the multi-port metering pumps P B1 The first BIDS valve V may be part of the assembly. B1 and the second BIDS valve V B2 In addition to providing flow control for the bulk ink supply system 3311, metering pumps P may be used to controllably handle a variety of different fluids with minimal holding volumes. B1 Considering the capacity of the metering pump P B1 can also be used to controllably handle the maintenance system 3331. For example, in FIG. 15, the third BIDS solvent supply line L B3 A fourth BIDS gas supply line L can be in fluid communication with a solvent source. B4 can be in fluid communication with a source of inert gas, for example, a nitrogen source as shown in FIG. 15. The third BIDS solvent supply line L B3 and the fourth BIDS gas supply line L B4 respectively, the third BIDS solvent supply valve V B3 and the fourth BIDS gas supply valve V B4 As depicted in FIG. 15, the third BIDS solvent supply line L B3 and the fourth BIDS gas supply line L B4 The fifth BIDS maintenance system supply valve V B5 A fifth BIDS line L B5 The fifth BIDS maintenance system supply valve V B5 As shown in FIG. 15, a multi-port metering pump P B1 The third BIDS solvent supply line L B3 and the fourth BIDS gas supply line L B4 can be joined at a T-junction using two valves, as shown in FIG. 15, or a three-way valve can be used. The third BIDS solvent supply valve V B3 and the fourth BIDS inert gas supply valve V B4is normally in a closed position during processing, but can be selectively opened during maintenance procedures, as discussed in more detail later herein.
[0086] First, various embodiments of the system and method of FIG. 15 are described, for example, by turning on the metering pump P B1 For example, once ink supply is available from a first ink supply container, Ink 1, the first BIDS ink supply line L can be primed while all other valves remain closed. B1 Open the first BIDS ink supply valve V B1 and BIDS waste line valve V BW When the valve state is so positioned, the BIDS waste line L BW First BIDS ink supply line L through B1 and a bulk ink delivery system waste assembly 3341. B1 After priming, for example during the start of the printing process, the metering pump P B1 First BIDS ink supply valve V B1 and the sixth BIDS valve V B6 With the valve state so positioned, the first ink supply container, Ink1, is in fluid communication with the bulk ink delivery system 3301, which is in fluid communication with the local ink delivery system 3501. The second BIDS line L B2 The first BIDS ink supply line L B1 As given in the example for priming, it can also be primed with ink from ink 2.
[0087] Although two ink supplies are shown in Fig. 15, multiple ink supply containers can be included in the bulk ink supply system 3311 and can act as sequential sources of ink. For example, as shown in Fig. 15, metering pump P is connected to a first ink supply container, Ink1, such that when the level of ink in the first ink supply container, Ink1, is at the low level indicator, the first ink supply container, Ink1, can be isolated and either refilled or replaced. B1 First BIDS ink supply valve V B1 Following isolation of Ink 1, metering pump P can be shut off so that a second ink supply container, Ink 2, can serve as an ink supply for a gas enclosure system, such as gas enclosure system 500A of FIG. B1 Second BIDS ink supply valve V B2 The first BIDS ink supply line L B1 Or the second BIDS ink supply line L B2 Depending on which ink supply is in use, either the sixth BIDS line L B6 During a process requiring ink flow from the bulk ink supply system 3311, the metering pump P B1 First BIDS ink supply valve V B1 and the sixth BIDS valve VB is opened, and the first BIDS ink supply line L B1 and the 6th BIDS line L B6 The sixth BIDS line L B6 3312 and is in fluid communication with a degasser to remove dissolved gases in the ink from the bulk in the supply of the bulk ink supply system 3311, for example and without limitation. B7 Finally, after being degassed, the ink is delivered to an eighth BIDS line L, which is in fluid communication with the local ink delivery system 3501. B8 The sixth BIDS line L of the bulk ink supply system 3310 of FIG.B6 Unlike the 8th BIDS line L B8 is the metering pump P in Figure 15. B1 When a metering pump such as the one shown in FIG. 14 can provide such control, there is no need for a suck-back valve located in the local ink delivery system 3500 as shown in FIG.
[0088] In addition to the bulk ink supply system 3311, as previously discussed herein, the bulk ink delivery system 3301 of FIG. 15 can have a BIDS maintenance system 3331. The BIDS maintenance system 3331 controls the third BIDS solvent supply valve V B3 and the fourth BIDS inert gas supply valve V B4 A third BIDS solvent supply line L, which may be controlled by B3 and the fourth BIDS gas supply line L B4 As depicted in FIG. 15, a third BIDS solvent supply line L B3 and the fourth BIDS gas supply line L B4 The fifth BIDS line L B5 The fifth BIDS line L B5 is the metering pump P B1 5th BIDS maintenance system supply valve V B5 In addition, for the bulk ink delivery system of FIG. BW can be in fluid communication with the bulk ink delivery system waste assembly 3341. BW is the metering pump P B1 BIDS Waste Line Valve V BW The third BIDS solvent supply valve V B3 , 4th BIDS gas supply valve V B4 , 5th BIDS maintenance system supply valve V B5 , and BIDS waste line valve V BW is normally in a closed position during processing but can be selectively opened during maintenance procedures.
[0089] For example, during a maintenance procedure, a metering pump P associated with the bulk ink supply system 3311 may be B1 BIDS valve, i.e., BIDS valve V B1 , V B2 , and V B6 The fifth BIDS line L, which may be in fluid communication with the bulk ink delivery system waste assembly 3341, may be in fluid communication with the bulk ink delivery system waste assembly 3341 if a maintenance procedure utilizing a solvent purge is implemented. B5 So that it can be done through BIDS valve V B3 , V B5 , and V BW After priming, for example during a maintenance procedure utilizing a solvent flush of the lines in the local ink delivery system 3501, the solvent can then be flushed through the sixth BIDS line L B6 a fifth BIDS line L capable of fluidly communicating with B5 BIDS waste line valve V BW The BIDS valve V can be closed. B3 , V B5 , and V B6 The sixth BIDS line L B6 is in fluid communication with the local ink delivery system 3500 as previously described, and through the local ink delivery system 3501, finally to the ninth BIDS line L B9 BIDS line L2 provides a solvent flow to the bulk ink delivery system waste assembly 3341 through the sixth BIDS line L3. In addition, if a maintenance procedure utilizing inert gas is implemented, inert gas is supplied to the sixth BIDS line L4. B6 a fifth BIDS line L capable of fluidly communicating with B5 BIDS valve V B4 , V B5 , and V B6 The sixth BIDS line L B6 is in fluid communication with the local ink delivery system 3500, as previously described.
[0090] 15, a local ink delivery system 3501 according to various systems and methods of the present teachings can include a local ink supply system 3601, a printhead ink delivery system 3701, and a local ink waste assembly 3801. For various embodiments of the present teachings, the local ink supply system 3601 is connected to the eighth BIDS line L B8 The local ink waste assembly 3801 can be in fluid communication with the bulk ink delivery system 3301 via a ninth BIDS line L B9 The ninth BIDS line L can be in fluid communication with the bulk ink delivery system waste assembly 3341 through B9 is a second BIDS pump P, which may be a pneumatic piston syringe or a metering pump that is compatible with the chemistry of the waste material being removed from the printhead ink delivery system 3701. B2 may have the following structure:
[0091] 16 depicts a schematic cross-sectional view of a gas enclosure system 500A, which may include a gas enclosure 1000A with a local ink delivery system 3500. As previously described herein, the local ink delivery system 3500 according to various embodiments of the present teachings may include a local ink supply system 3600, a printhead ink delivery system 3700, and a local ink waste assembly 3800. As depicted in FIG. E6 is a suck-back valve V located in the local ink delivery system 3500 so that ink can be delivered directly to a bulk ink supply reservoir that is part of the local ink supply system 3600. P1In that regard, various embodiments of the bulk ink delivery system of the present teachings can deliver the ink supply directly to a bulk supply reservoir of the ink reservoir local ink supply system 3600, which can be in fluid communication with a bulk ink reservoir in fluid communication with a dispense reservoir, which is in fluid communication with multiple printhead devices, such as the printhead device 2505 of FIG. 1C. As discussed in more detail herein, various embodiments of the printhead ink delivery system 3700 can utilize a two-stage ink delivery assembly. Also, the local ink waste assembly inside the gas enclosure can be in fluid communication with a bulk ink delivery system waste assembly that is part of the bulk ink delivery system. Thus, various embodiments of the bulk ink delivery system, which can be substantially external to the gas enclosure system, can be in fluid communication with a local ink delivery system inside the gas enclosure system in a manner that avoids extending ink lines through a cable carrier to a printhead assembly, such as the printhead device assembly 2500 on the first X-axis carriage assembly 2301 of FIG. 1C. Thus, a bulk refill system that is substantially external to the gas enclosure is more easily accessible for repairs such as refilling ink and solvent supplies and replacing lines that carry various inks and solvents.
[0092] FIG. 17 illustrates a local ink delivery system including a printhead ink delivery system in accordance with the present teachings. FIG. 17 is a schematic diagram of a local ink delivery system. For various embodiments of the local ink delivery system of the present teachings, a pneumatic control assembly IA can provide control between a primary dispense reservoir IC and various pneumatic control sources, such as gas and vacuum sources. According to various embodiments of the local ink delivery system of the present teachings, a local ink delivery line IB can be capable of providing fluid distribution and control between a primary dispense reservoir IC and a local bulk ink reservoir ID. The primary dispense reservoir IC can be in fluid communication with multiple printheads IE through input manifold lines IF. In the schematic of FIG. 17, three printheads are shown for each of the three printhead device assemblies. The printhead assembly input manifold lines IF can be in fluid communication with a printhead assembly input manifold IG. The printhead assembly input manifold IG can be in fluid communication with each of the multiple printhead devices, each printhead device can have at least three printheads, consecutively numbered as printhead 1 through printhead 9 in FIG. 17. Fluid communication between the printhead assembly input manifold IG and each printhead device can be provided through printhead assembly manifold valves IG. V1 , I.G. V2 , and I.G. V3 Finally, the multiple printhead assemblies can be in fluid communication with a printhead assembly output waste line, which is part of the printhead output manifold IH. The printhead assembly output waste line can be in fluid communication with a local ink waste assembly, which in turn is in fluid communication with a bulk ink delivery system waste assembly (see, for example, Figures 14 and 15). Fluid communication between the printhead assembly output manifold IH and each printhead device is controlled by the printhead assembly manifold line valve IH. V1 , IH V2 , and I.H. V3 can be controlled by using
[0093] FIG. 18A is a bottom close-up perspective view of a printhead device assembly 2500 mounted on a printhead assembly positioning system, such as a first X-axis carriage assembly 2301 (see also FIG. 1C). The first X-axis carriage assembly 2301 can be positioned in an X-axis direction on the print system bridge 2130 relative to a substrate, such as substrate 2050 of FIG. 1C. As shown in FIG. 18A, a service bundle housing 2410 is mounted on the print system bridge 2130. The service bundle housing 2410 can contain various service bundles that are operably connected to the gas enclosure system, including the print system, from various devices and systems. Various embodiments of the service bundle can include bundled optical cables, electrical cables, wires, tubing, and the like, to provide optical, electrical, mechanical, and fluidic functions of various assemblies and systems disposed within the interior of the gas enclosure system. As the X-axis carriage assembly 2301 moves the printhead device assembly 2500 across the print system bridge 2130 during various process steps, such as printing and maintenance steps, the various service bundles move accordingly. Thus, the liquid ink lines in such service bundles are subject to continuous flexing and wear. According to the systems and methods of the present teachings, a bulk ink delivery system external to the gas enclosure system can be in fluid communication with a local ink delivery supply system internal to the gas enclosure system, which eliminates the need to run ink lines through a service bundle located in the service bundle housing 2410. Thus, the bulk refill system, which is substantially external to the gas enclosure, is more easily accessible for repairs, such as refilling ink and solvent supplies and repairing or replacing various lines and valves.
[0094] As depicted in FIG. 18A, the printhead device assembly 2500 can have a printhead assembly enclosure 2503 that can enclose multiple printhead devices 2505A, 2505B, and 2505C mounted therein. For various embodiments, the printhead device assembly can include about 1 to about 60 printhead devices, each of which can have about 1 to about 30 printheads therein. As depicted in FIG. 18A, in accordance with the systems and methods of the present teachings, the printhead device assembly 2500 can have three printhead devices, each of which can have three printheads (see also FIG. 17). As discussed in more detail herein, in view of the number of printhead devices and printheads that require ongoing maintenance, the printhead device assembly 2500 can be positioned over a maintenance system for immediate placement or replacement of a printhead device or printhead.
[0095] As shown in the bottom perspective view of FIG. 18B, the print head device assembly 2500 can have print head devices 2505A, 2505B, and 2505C mounted using kinematic mounting, for example, similar to that described for the kinematic mounting of the print head unit 1000 of FIG. 13A. In that regard, as discussed in more detail later herein, various embodiments of kinematic mounting assemblies for vertical mounting of print head device embodiments such as print head devices 2505A, 2505B, and 2505C of FIG. 18B into print head device assemblies such as print head device assembly 2500 of FIG. 18B can utilize, for example, canoe spheres and V-block assemblies. In FIG. 18B, a canoe sphere 1118A is depicted for each print head device 2505A, 2505B, and 2505C of FIG. 18B.
[0096] Additionally, a camera assembly 2551 is shown mounted within the print head assembly enclosure 2503. For various embodiments of the systems and methods of the present teachings, multiple cameras can be mounted on various devices, apparatuses, and assemblies to provide real-time visualization of operations within a gas enclosure system, such as the gas enclosure system 500A of FIG. 13. For example, the camera assembly 2550 of FIG. 13 and the camera assembly 2551 of FIG. 18B can be utilized for, for example, but not limited to, navigation, as well as inspection. Various embodiments of the printing system camera assembly can have different specifications with respect to field of view and resolution. For example, one camera can be a line scan camera for in situ particle inspection, while a second camera can be used for systematic navigation of a substrate within the gas enclosure system or the location of the print head device assembly relative to the substrate. Such a camera useful for systematic navigation can be an area scan camera with a field of view within a range of about 5.4 mm×4 mm with a magnification of about 0.9X to about 10.6 mm×8 mm with a magnification of about 0.45X. In yet other embodiments, one camera can be a line scan camera for in situ particle inspection, while a second camera can be used for precision navigation of the substrate within the gas enclosure system, such as for substrate alignment or for precise location of the print head device assembly relative to the substrate. Such a camera useful for precision navigation can be an area scan camera, having a field of view of about 0.7 mm×0.5 mm with a magnification of about 7.2×.
[0097] 19A and 19B depict various perspective views of a printhead device 2505 according to various embodiments of the printhead device of the present teachings. As previously described herein, the kinematic mounting of the printhead unit to the printing system can provide repeatable distortion-free positioning of the printhead unit or various embodiments of the printhead device of the present teachings. For example, the kinematic mounting assembly described for the kinematic mounting of the printhead unit 1000 can utilize point contact kinematic assemblies such as ball and V-block kinematic mounting assemblies. Various embodiments of the kinematic mounting assembly for vertical mounting of multiple printhead devices into the printhead device assembly can utilize line contact kinematic assemblies, such as, but not limited to, canoe sphere and V-block kinematic mounting assemblies. Various embodiments of the line contact kinematic mounting assemblies can carry substantially more load, for example, at least 100 times more load, than a comparable kinematic mounting assembly providing point contact. Various embodiments of the kinematic mounting assembly provide significant stability for repeatable distortion-free positioning of the vertical mounting of the print head device into the print head device assembly, as well as providing stability during X-axis movement of the print head device assembly by naturally resisting movement in the X-axis direction.
[0098] In the top perspective view of FIG. 19A and the bottom perspective view of FIG. 19B, a first canoe sphere mounting fixture 1116A for a first canoe sphere 1118A and a second canoe sphere mounting fixture 1116B for a second canoe sphere 1118B can be seen. A third canoe sphere mounting fixture 1116C is visible in FIG. 19A and FIG. 19B, where a third canoe sphere can be mounted on the rear of the print head device 2505. The set positions of the canoe spheres 1118A, 1118B, and 1118C, once each is engaged within the mating surfaces of the V-block mount, can be used for repeatable distortion-free vertical bottom insertion of the print head device 2505 into a print head device assembly, such as the print head device assembly 2500 of FIG. 18A and FIG. 18B. As shown in FIG. 19B, each printhead device can have three end user selected printhead assemblies 200A, 200B, and 200C. The printhead device 2505 can have a first quick connect connector 1110A that provides ease of connecting fluid lines entering the printhead device 2505, and a second quick connect connector 1110B that provides ease of connecting fluid lines proceeding from the printhead device 2505. As shown in the fluid system schematic depiction of FIG. 17 for various embodiments of a local ink delivery system, fluid communication from the local ink delivery system for each printhead device in the printhead device assembly is provided through the printhead assembly manifold valves IGBT and IGBT. V1 , I.G. V2 , and I.G. V3 17, fluid communication from each printhead device in the printhead device assembly to the printhead output manifold can be controlled by using printhead assembly manifold valves IH V1 , IH V2 , and I.H. V3Various embodiments of the printhead output manifold can be in fluid communication with a local ink waste assembly, such as local ink waste assembly 3800 of FIG. 16. In FIG. 19A and FIG. 19B, the input printhead assembly manifold valve IG V and output printhead assembly manifold valve IH V is shown for the print head device 2505.
[0099] Figure 19C depicts a print head device kinematic mounting plate 1340 with a first V block 1348A, a second V block 1348B, and a third V block 1348C, which are mating surfaces for the first canoe sphere 1118A, the second canoe sphere 1118B, and the third canoe sphere 1118C of Figures 19A and 19B, respectively. The first V block 1348A, the second V block 1348B, and the third V block 1348C can be affixed to the print head device kinematic mounting plate 1340 using a first V block mounting fixture 1342A, a second V block mounting fixture 1342B, and a third V block mounting fixture 1342C, respectively. As depicted in Figures 19A-19C, the first V block 1348A is a mating surface for the first canoe sphere 1118A, the second V block 1348B is a mating surface for the second canoe sphere 1118B, and the third V block 1348C is a mating surface for the third canoe sphere 1118C. Figure 19D depicts a print head device unit 1300 with a print head device 2505 mounted on a print head device kinematic mounting plate 1340 using a canoe sphere and V block kinematic mount. For example, as in Figure 19D, the first canoe sphere 1118A as shown in Figure 19B is mounted on the first canoe sphere mounting fixture 1116A and engaged within the first V block 1348A mounted on the first V block mounting fixture 1342A. The first V block mounting fixture 1342A is one of three V block mounting fixtures mounted to the print head device kinematic mounting plate 1340 as previously described herein. In that regard, the coupling of the first canoe sphere 1118A to the first V block 1348A for the print head device unit 1300 of FIG. 19D illustrates the coupling of the second canoe sphere 1118B and the third canoe sphere 1118C with the second V block 1348B and the third V block 1348C, respectively.In addition to the print head device kinematic mounting plate 1340, various embodiments of mounting assemblies for print head device units, such as the print head device unit 1300 of Figure 19D, can include a print head device front mounting plate 1341, as well as a first print head device side mounting plate 1343A and a second print head device side mounting plate 1343B. Each quick connect connector, as shown in Figures 19A and 19B, can be mounted to a print head device side mounting plate, as depicted in Figure 19D for the first quick connect connector 1110A mounted to the first print head device side mounting plate 1343A.
[0100] According to various systems and methods of the present teachings, print head devices such as print head devices 2505A, 2505B, and 2505C of FIG. 18A and FIG. 18B can be inserted manually or automatically from the bottom of the print head device assembly 2500. For example, as depicted in FIG. 1D, print head installation or replacement can be performed by a robot. As previously discussed with reference to FIG. 13, a gas enclosure such as gas enclosure 1000A can have an auxiliary panel assembly 1330 that can enclose a print head management system 2701. In FIG. 1D, print head device or print head installation or replacement can be performed in the auxiliary panel assembly 1330 using a robot 2530. The print head replacement module 2713 of the print head management system 2701 of FIG. 1D can include a docking station for a print head device having at least one print head, and a storage receptacle for multiple print head devices and multiple print heads. Each printhead assembly of the present teachings can include from about 1 to about 60 printhead devices, and each printhead device can have from about 1 to about 30 printheads (see, for example, but not limited to, printhead device assembly 2500 of FIG. 1C and FIG. 18A). Thus, in addition to having from about 1 to about 60 printhead devices, various embodiments of the printing system of the present teachings can have from about 1 to about 1800 printheads. As previously discussed herein, printhead devices, such as printhead device 2505 of FIG. 19A and FIG. 19B, can be installed or replaced through distortion-free bottom insertion of the printhead device in a printhead assembly, such as printhead device assembly 2500 of FIG. 23A and FIG. 18B, a bottom view of which is shown in FIG. 1D.
[0101] FIG. 20 is a schematic diagram showing a gas enclosure system 500B. Various embodiments of the gas enclosure system 500B according to the present teachings can include a gas enclosure assembly 1000B for housing a printing system, a gas purification loop 3130 in fluid communication with the gas enclosure assembly 1000B, and at least one thermal regulation system 3140. In addition, various embodiments of the gas enclosure system 500B can have a pressurized inert gas recirculation system 3000 that can provide inert gas for operating various devices such as a substrate floating table for an OLED printing system. Various embodiments of the pressurized inert gas recirculation system 3000 can utilize a compressor, a blower, and a combination of the two as a source for various embodiments of the pressurized inert gas recirculation system 3000, as discussed in more detail later in this specification. In addition, the gas enclosure system 500B can have a circulation and filtration system internal to the gas enclosure system 500B (not shown).
[0102] As depicted in FIG. 20, for various embodiments of the gas enclosure assembly according to the present teachings, the design of the filtration system can separate the inert gas circulated through the gas purification loop 3130 from the inert gas continuously filtered and circulated internally for various embodiments of the gas enclosure assembly. The gas purification loop 3130 includes an outlet line 3131 from the gas enclosure assembly 1000B to a solvent removal component 3132 and then to a gas purification system 3134. The inert gas, from which the solvent and other reactive gas species, such as oxygen and water vapor, have been purified, is then returned to the gas enclosure assembly 1000B through an inlet line 3133. The gas purification loop 3130 may also include appropriate ducts and connections, as well as sensors, such as oxygen, water vapor, and solvent vapor sensors. Gas circulation units, such as fans, blowers, or motors, and the like, can be provided separately or incorporated into the gas purification system 3134, for example, to circulate the gas through the gas purification loop 3130. According to various embodiments of the gas enclosure assembly, although the solvent removal system 3132 and the gas purification system 3134 are shown as separate units in the schematic diagram shown in FIG. 20, the solvent removal system 3132 and the gas purification system 3134 can be housed together as a single purification unit.
[0103] The gas purification loop 3130 of FIG. 20 can have a solvent removal system 3132 located upstream of the gas purification system 3134 such that the inert gas circulated from the gas enclosure assembly 1000B passes through the solvent removal system 3132 via the outlet line 3131. According to various embodiments, the solvent removal system 3132 can be a solvent containment system based on adsorbing solvent vapors from the inert gas passing through the solvent removal system 3132 of FIG. 20. For example, one or more adsorbent layers, such as, but not limited to, activated carbon, molecular sieves, and the like, can effectively remove a wide variety of organic solvent vapors. For various embodiments of the gas enclosure system, cold trapping techniques can be employed to remove solvent vapors within the solvent removal system 3132. As previously discussed herein, for various embodiments of the gas enclosure assembly according to the present teachings, sensors such as oxygen, water vapor, and solvent vapor sensors can be used to monitor the effective removal of such species from the inert gas continuously circulating through the gas enclosure system, such as the gas enclosure system 500B of FIG. 20. Various embodiments of the solvent removal system can indicate when an adsorbent, such as activated carbon, molecular sieves, and the like, reaches capacity so that one or more adsorbent layers can be regenerated or replaced. Regeneration of a molecular sieve can involve heating the molecular sieve, contacting the molecular sieve with forming gas, combinations thereof, and the like. Molecular sieves configured to trap various species, including oxygen, water vapor, and solvents, can be regenerated by heating and exposing to forming gas containing hydrogen, for example, forming gas containing about 96% nitrogen and 4% hydrogen, the proportions being by volume or weight. Physical regeneration of activated carbon can be performed using similar heating procedures in an inert environment.
[0104] Any suitable gas purification system can be used for the gas purification system 3134 of the gas purification loop 3130 of FIG. 20. For example, gas purification systems available from MBRAUN Inc. (Statham, New Hampshire) or Innovative Technology (Amesbury, Massachusetts) may be useful for incorporation into various embodiments of the gas enclosure assembly according to the present teachings. The gas purification system 3134 can be used to purify one or more inert gases in the gas enclosure system 500B, for example, to purify the entire gas atmosphere in the gas enclosure assembly. As previously discussed herein, the gas purification system 3134 can have a gas circulation unit, such as a fan, blower, or motor, as well as the like, to circulate the gas through the gas purification loop 3130. In that regard, the gas purification system can be selected depending on the volume of the enclosure, which may define the volumetric flow rate for moving the inert gas through the gas purification system. Up to about 4 m 3 For various embodiments of the gas enclosure system having a gas enclosure assembly with a volume of about 84 m 3 Gas purification systems can be used that can move up to about 10 m / hour. 3 For various embodiments of the gas enclosure system having a gas enclosure assembly with a volume of about 155 m 3 A gas purification system that can move at speeds of about 52 to 114 m / hour can be used. 3 For various embodiments of the gas enclosure assembly having a volume of more than one gas purification system may be used.
[0105] Any suitable gas filter or purification device can be included in the gas purification system 3134 of the present teachings. In some embodiments, the gas purification system can include two parallel purification devices so that one of the devices can be taken off line for maintenance and the other device can be used to continue system operation without interruption. In some embodiments, for example, the gas purification system can include one or more molecular sieves. In some embodiments, the gas purification system can include at least a first molecular sieve and a second molecular sieve so that when one of the molecular sieves becomes saturated with impurities or is otherwise deemed not to be operating efficiently enough, the system can switch to the other molecular sieve while regenerating the saturated or inefficient molecular sieve. A control unit can be provided to determine the operating efficiency of each molecular sieve, to switch between the operation of different molecular sieves, to regenerate one or more molecular sieves, or a combination thereof. As previously discussed herein, the molecular sieves may be regenerated and reused.
[0106] The thermal regulation system 3140 of FIG. 20 can include at least one cooling device 3142, which may have a fluid outlet line 3141 for circulating coolant into the gas enclosure assembly and a fluid inlet line 3143 for returning the coolant to the cooling device. At least one fluid cooling device 3142 can be provided to cool the gas atmosphere within the gas enclosure system 500B. For various embodiments of the gas enclosure system of the present teachings, the fluid cooling device 3142 delivers cooled fluid to a heat exchanger within the enclosure, where the inert gas is passed to a filtration system inside the enclosure. At least one fluid cooling device can also be provided in the gas enclosure system 500B to cool heat generated from the device enclosed within the gas enclosure system 500B. For example, but not limited to, at least one fluid cooling device can also be provided in the gas enclosure system 500B to cool heat generated from the OLED printing system. The thermal conditioning system 3140 can include heat exchange or Peltier devices and can have various cooling capacities. For example, for various embodiments of the gas enclosure system, the cooling device can provide a cooling capacity of about 2 kW to about 20 kW. Various embodiments of the gas enclosure system can have multiple fluid cooling devices that can cool one or more fluids. In some embodiments, the fluid cooling device can utilize several fluids as coolants, such as, but not limited to, water as a heat exchange fluid, antifreeze, refrigerant, and combinations thereof. Appropriate leak-proof locking connections can be used in connecting the associated conduits and system components.
[0107] As previously discussed, the present teachings disclose various embodiments of a gas enclosure system that can include a printing system enclosure that defines a first volume and an auxiliary enclosure that defines a second volume. Various embodiments of the gas enclosure system can have the auxiliary enclosure that can be sealably constructed as a section of the gas enclosure assembly. According to the systems and methods of the present teachings, the auxiliary enclosure can be sealably isolated from the printing system enclosure and can be open to an environment external to the gas enclosure assembly without exposing the printing system enclosure to the external environment. For example, but not limited to, such physical isolation of the auxiliary enclosure for performing various printhead maintenance procedures can be performed to eliminate or minimize exposure of the printing system enclosure to contaminants such as air and water vapor and various organic vapors, as well as particulate matter contamination. Various printhead maintenance procedures, which can include measurement and maintenance procedures on the printhead assembly, can be performed with little or no interruption of the printing process, thereby minimizing or eliminating downtime of the gas enclosure system.
[0108] For a gas enclosure system having a printing system enclosure defining a first volume and an auxiliary enclosure defining a second volume, both volumes can be easily integrated with gas circulation, filtration, and purification components to form a gas enclosure system capable of sustaining an inert, substantially low-particle environment for processes requiring such an environment with little or no interruption to the printing process. According to various systems and methods of the present teachings, the printing system enclosure may be introduced to a level of contamination that is low enough that the purification system can remove the contamination before it can affect the printing process. Various embodiments of the auxiliary enclosure may be of a volume substantially smaller than the total volume of the gas enclosure assembly and can be easily integrated with gas circulation, filtration, and purification components to form an auxiliary enclosure system that can rapidly restore an inert, low-particle environment after exposure to an external environment, thereby providing little or no interruption to the printing process.
[0109] In addition, various embodiments of the auxiliary enclosure can be easily integrated with a dedicated suite of environmental conditioning system components, such as lighting, gas circulation and filtration, gas purification, and thermostatic control components. In that regard, various embodiments of the gas enclosure system, including the auxiliary enclosure, which may be sealably isolated as part of the gas enclosure assembly, can have a controlled environment that is configured to be uniform with the first volume defined by the gas enclosure assembly that houses the printing system. Furthermore, various embodiments of the gas enclosure system, including the auxiliary enclosure, which may be sealably isolated as a section of the gas enclosure assembly, can have a controlled environment that is configured to be different from the controlled environment of the first volume defined by the gas enclosure assembly that houses the printing system.
[0110] While the above examples describe cooling capacity and refrigeration applications, the above examples can also be applied to applications involving buffering of substrates in a controlled environment, such as to avoid unwanted heat transfer from the substrate being processed, or to avoid disturbing temperature uniformity across or between substrates, or for applications where the circulating gas can be maintained at a similar temperature to other parts of the system.
[0111] 21A and 21B generally illustrate an example of a gas enclosure system for integrating and controlling a non-reactive gas and clean dry air (CDA) source as may be used to establish a controlled environment as referenced in other examples described elsewhere herein and may include a supply of pressurized gas for use with a floating table. FIGs. 22A and 22B generally illustrate an example of a gas enclosure system for integrating and controlling a non-reactive gas and clean dry air (CDA) source as may be used to establish a controlled environment as referenced in other examples described elsewhere herein and may include, for example, a blower loop providing pressurized gas and at least a partial vacuum for use with a floating table. FIG. 22C generally illustrates a further example of a system for integrating and controlling one or more gas or air sources, such as to establish a floating control zone included as part of a floating transport system.
[0112] Various embodiments described herein include an enclosure module that can be environmentally controlled. The enclosure assembly and corresponding support equipment can be referred to as a "gas enclosure system," and such enclosure assemblies can be constructed in a contoured manner that reduces or minimizes the internal volume of the gas enclosure assembly while providing a working volume to accommodate various footprints of printing system components, such as deposition (e.g., printing), holding, loading, or processing modules described herein. For example, a contoured gas enclosure assembly according to the present teachings can have a gas enclosure volume of about 6 m3 to about 95 m3 for various embodiments of the gas enclosure assembly of the present teachings, covering, for example, Gen 3.5 to Gen 10 substrate sizes. Various embodiments of the contoured gas enclosure assembly according to the present teachings can have a gas enclosure volume of, for example, but not limited to, about 15 m3 to about 30 m3, which can be useful for printing, for example, but not limited to, Gen 5.5 to Gen 8.5 substrate sizes or other substrate sizes. Various embodiments of the auxiliary enclosure can be constructed as a section of a gas enclosure assembly and easily integrated with gas circulation and filtration, and purification components to form a gas enclosure system capable of sustaining a controlled, substantially low-particle environment for processes requiring such an environment.
[0113] As shown in FIG. 21A and FIG. 22A, various embodiments of the gas enclosure system can include a pressurized non-reactive gas recirculation system. Various embodiments of the pressurized gas recirculation loop can utilize compressors, blowers, and combinations thereof. In accordance with the present teachings, several engineering challenges have been addressed to provide various embodiments of the pressurized gas recirculation system in the gas enclosure system. First, under typical operation of the gas enclosure system without the pressurized non-reactive gas recirculation system, the gas enclosure system can be maintained at a slightly positive internal pressure relative to the outside pressure (e.g., above atmospheric pressure) to prevent external gas or air from entering the interior if any leak occurs within the gas enclosure system. For example, under typical operation, for various embodiments of the gas enclosure system of the present teachings, the interior of the gas enclosure system can be maintained at a pressure relative to the ambient atmosphere outside the enclosure system of, for example, at least 2mbarg, for example, at least 4mbarg, at least 6mbarg, at least 8mbarg, or higher.
[0114] Maintaining a pressurized gas recirculation system in a gas enclosure system can be difficult because it poses a dynamic ongoing balancing act with respect to maintaining a slightly positive internal pressure of the gas enclosure system while simultaneously continuously introducing pressurized gas into the gas enclosure system. Furthermore, the variable demands of various devices and equipment can generate irregular pressure profiles of various gas enclosure assemblies and systems of the present teachings. Maintaining dynamic pressure balance for a gas enclosure system held at a slightly positive pressure relative to the external environment under such conditions can provide the integrity of an ongoing processing process. For various embodiments of a gas enclosure system, a pressurized gas recirculation system according to the present teachings can include various embodiments of a pressurized gas loop that can utilize at least one of a compressor, an accumulator, and a blower, and combinations thereof. Various embodiments of a pressurized gas recirculation system, including various embodiments of a pressurized gas loop, can have a specially designed pressure control bypass loop that can provide an internal pressure of the non-reactive gas within the gas enclosure system of the present teachings at a stable defined value. In various embodiments of the gas enclosure system, the pressurized gas recirculation system can be configured to recirculate the pressurized gas through a pressure controlled bypass loop when the pressure of the gas in the accumulator of the pressurized gas loop exceeds a preset threshold pressure. The threshold pressure can be, for example, within a range of about 25 psig to about 200 psig, or more specifically within a range of about 75 psig to about 125 psi, or more specifically within a range of about 90 psig to about 95 psig. In that regard, the gas enclosure system of the present teachings having a pressurized gas recirculation system along with various embodiments of a specially designed pressure controlled bypass loop can maintain the balance of having a pressurized gas recirculation system in a sealed gas enclosure.
[0115] According to the present teachings, various devices and apparatuses can be disposed within the interior of the gas enclosure system and in fluid communication with various implementations of the pressurized gas recirculation system. For various embodiments of the gas enclosure and system of the present teachings, the use of various pneumatically operated devices and apparatuses can provide low particle generation performance and is less labor intensive to maintain. Exemplary devices and apparatuses that can be disposed within the gas enclosure system and in fluid communication with various pressurized gas loops can include, but are not limited by, for example, one or more of a pneumatic robot, a substrate floating table, an air bearing, an air bushing, a compressed gas tool, a pneumatic actuator, and combinations thereof. The substrate floating table, as well as the air bearing, can be used for various aspects of operating the printing system according to various implementations of the gas enclosure system of the present teachings. For example, a substrate floating table utilizing air bearing technology can be used to transport the substrate to a fixed position in the print head chamber, as well as to support the substrate during the printing process.
[0116] For example, as shown in Figures 21A, 21B, 22A, and 22B, various embodiments of the gas enclosure system 500C and the gas enclosure system 500D can have an external gas loop 3200 for integrating and controlling a non-reactive gas source 3201 and a clean dry air (CDA) source 3203 for use in various aspects of the operation of the gas enclosure system 500C and the gas enclosure system 500D. The gas enclosure system 500C and the gas enclosure system 500D can also include various embodiments of an internal particle filtration and gas circulation system, as well as various embodiments of an external gas purification system, as previously described. Such embodiments of the gas enclosure system can include a gas purification system for purifying various reactive species from the gas. Some commonly used non-limiting examples of non-reactive gases include nitrogen, any of the noble gases, and any combination thereof. Various embodiments of the gas purification system according to the present teachings can maintain various levels of various reactive species, including various reactive atmospheric gases such as water vapor, oxygen, ozone, and organic solvent vapors, at 1000 ppm or less, for example, 100 ppm or less, 10 ppm or less, 1.0 ppm or less, or 0.1 ppm or less. In addition to the external loop 3200 for the integrated control of the gas source 3201 and the CDA source 3203, the gas enclosure assembly 500C and the gas enclosure system 500D can have a compressor loop 3250 that can provide gas for operating various devices and equipment that can be disposed inside the gas enclosure system 500C and the gas enclosure system 500D. A vacuum system 3270 can also be provided that communicates with the gas enclosure assembly 1005 through a line 3272 when the valve 3274 is in an open position.
[0117] The compressor loop 3250 of FIG. 21A can include a compressor 3262, a first accumulator 3264, and a second accumulator 3268 configured to be in fluid communication. The compressor 3262 can be configured to compress gas drawn from the gas enclosure assembly 1005 to a desired pressure. An inlet side of the compressor loop 3250 can be in fluid communication with the gas enclosure assembly 1005 via a gas enclosure assembly outlet 3252 through a line 3254 having a valve 3256 and a check valve 3258. The compressor loop 3250 can be in fluid communication with the gas enclosure assembly 1005 on an outlet side of the compressor loop 3250 via the outer gas loop 3200. The accumulator 3264 can be disposed between the compressor 3262 and the junction of the compressor loop 3250 with the outer gas loop 3200 and can be configured to generate a pressure of 5 psig or higher. A second accumulator 3268 can be in the compressor loop 3250 to provide damping fluctuations due to compressor piston cycling at about 60 Hz. For various implementations of the compressor loop 3250, the first accumulator 3264 can have a capacity between about 80 gallons and about 160 gallons, while the second accumulator can have a capacity between about 30 gallons and about 60 gallons. According to various embodiments of the gas enclosure system 500C, the compressor 3262 can be a zero-entry compressor. Various types of zero-entry compressors can operate without leaking atmospheric gas into various implementations of the gas enclosure system of the present teachings. Various implementations of the zero-entry compressor can be run continuously during a processing process, for example, utilizing the use of various devices and equipment requiring compressed gas.
[0118] The accumulator 3264 can be configured to receive and accumulate compressed gas from the compressor 3262. The accumulator 3264 can provide compressed gas as needed within the gas enclosure assembly 1005. For example, the accumulator 3264 can provide gas to maintain pressure for various components of the gas enclosure assembly 1005, such as, but not limited to, one or more of a pneumatic robot, a substrate floating table, an air bearing, an air bushing, a compressed gas tool, a pneumatic actuator, and combinations thereof. As shown in FIG. 21A for the gas enclosure system 500C, the gas enclosure assembly 1005 can have a printing system 2005 enclosed therein. As depicted generally in FIG. 21A, the printing system 2005 can be supported by a printing system base 2150, which can be a granite stage. The printing system base 2150 can support a substrate support device such as a chuck, for example, but not limited to, a vacuum chuck, a substrate floating chuck with a pressure port, and a substrate floating chuck with vacuum and pressure ports. In various embodiments of the present teachings, the substrate support device can be a substrate floating table, such as the substrate floating table 2250. The substrate floating table 2250 can be used for frictionless support of the substrate. In addition to the low particle generating floating table, for frictionless Y-axis transport of the substrate, the printing system 2005 can have a Y-axis motion system that utilizes air bushings.
[0119] In addition, the printing system 2005 can have at least one X, Z-axis carriage assembly with motion control provided by a low particle generating X-axis air bearing assembly. For example, various components of a low particle generating motion system, such as an X-axis air bearing assembly, can be used instead of various particle generating linear mechanical bearing systems. The use of various air operated devices and apparatuses for various embodiments of the gas enclosure and system of the present teachings can provide low particle generating performance and are less labor intensive to maintain. The compressor loop 3250 can be configured to continuously supply pressurized gas to various devices and apparatuses of the gas enclosure system 500C. In addition to supplying pressurized gas, the substrate floating table 2250 of the printing system 2005 utilizing air bearing technology also utilizes a vacuum system 3270, which is in fluid communication with the gas enclosure assembly 1005 through a line 3272 when a valve 3274 is in an open position.
[0120] A pressurized gas recirculation system according to the present teachings can have a pressure controlled bypass loop 3260 as shown in FIG. 21A for the compressor loop 3250, which acts to compensate for the variable demand for pressurized gas during use, thereby providing a dynamic balance for various embodiments of the gas enclosure system of the present teachings. For various embodiments of the gas enclosure system of the present teachings, the bypass loop can maintain a constant pressure in the accumulator 3264 without disturbing or changing the pressure in the enclosure 1005. The bypass loop 3260 can have a first bypass inlet valve 3261 on the inlet side of the bypass loop, which is closed unless the bypass loop 3260 is used. The bypass loop 3260 can also have a back pressure regulator 3266, which can be used when the second valve 3263 is closed. The bypass loop 3260 can have a second accumulator 3268 located on the outlet side of the bypass loop 3260. For an embodiment of the compressor loop 3250 utilizing a zero-entry compressor, the bypass loop 3260 can compensate for minor deviations in pressure that may occur over time during use of the gas enclosure system. The bypass loop 3260 can be in fluid communication with the compressor loop 3250 on the inlet side of the bypass loop 3260 when the bypass inlet valve 3161 is in an open position. When the bypass inlet valve 3261 is open, gas diverted through the bypass loop 3260 can be recirculated to the compressor if gas from the compressor loop 3250 is not required within the interior of the gas enclosure assembly 1005. The compressor loop 3250 is configured to divert gas through the bypass loop 3260 when the pressure of the gas in the accumulator 3264 exceeds a preset threshold pressure.The preset threshold pressure of the accumulator 3264 can be from about 25 psig to about 200 psig at a flow rate of at least about 1 cubic feet per minute (cfm), or from about 50 psig to about 150 psig at a flow rate of at least about 1 cubic feet per minute (cfm), or from about 75 psig to about 125 psig at a flow rate of at least about 1 cubic feet per minute (cfm), or from about 90 psig to about 95 psig at a flow rate of at least about 1 cubic feet per minute (cfm).
[0121] Various embodiments of the compressor loop 3250 can utilize various compressors other than zero-entry compressors, such as variable speed compressors or compressors that can be controlled to be either on or off. As previously discussed, a zero-entry compressor ensures that no atmospheric reactive species can be introduced into the gas enclosure system. Thus, any compressor configuration that prevents atmospheric reactive species from being introduced into the gas enclosure system can be utilized for the compressor loop 3250. According to various embodiments, the compressor 3262 of the gas enclosure system 500C can be housed in a sealed enclosure, for example, but not limited to, the enclosure interior can be configured in fluid communication with a gas source, for example, the same gas that forms the gas atmosphere for the gas enclosure assembly 1005. For various embodiments of the compressor loop 3250, the compressor 3262 can be controlled at a constant speed to maintain a constant pressure. In other embodiments of the compressor loop 3250 that do not utilize a zero entry compressor, the compressor 3262 can be turned off when a maximum threshold pressure is reached and turned on when a minimum threshold pressure is reached.
[0122] In FIG. 22A of the gas enclosure system 500D, a blower loop 3280 utilizing a vacuum blower 3290 is shown for operation of the substrate floating table 2250 of the printing system 2005 housed in the gas enclosure assembly 1005. As previously discussed for the compressor loop 3250, the blower loop 3280 can be configured to continuously supply pressurized gas to the substrate floating table 2250 of the printing system 2005.
[0123] Various embodiments of gas enclosure systems that can utilize a pressurized gas recirculation system can have various loops that utilize various pressurized gas sources, such as at least one of a compressor, a blower, and combinations thereof. In FIG. 22A of gas enclosure system 500D, compressor loop 3250 can be in fluid communication with external gas loop 3200 that can be used to supply gas for high consumption manifold 3225 as well as low consumption manifold 3215. For various embodiments of gas enclosure systems according to the present teachings as shown in FIG. 22A for gas enclosure system 500D, high consumption manifold 3225 can be used to supply gas to various devices and equipment such as, but not limited to, one or more of a substrate floating table, a pneumatic robot, an air bearing, an air bushing, and a compressed gas tool, and combinations thereof. For various embodiments of a gas enclosure system according to the present teachings, the low consumption 3215 can be used to supply gas to various apparatus and devices such as, but not limited to, one or more of an isolator, and a pneumatic actuator, and combinations thereof.
[0124] 22A and 22B, a fan loop 3280 can be utilized to supply pressurized gas to various embodiments of the substrate floating table 2250. In addition to supplying pressurized gas, the substrate floating table 2250 of the printing system 2005 utilizing air bearing technology also utilizes a blower vacuum 3290, which is in communication with the gas enclosure assembly 1005 through a line 3292 when a valve 3294 is in an open position. The housing 3282 of the blower loop 3280 can maintain a first blower 3284 to supply a pressurized source of gas to the substrate floating table 2250, and a second blower 3290, which acts as a vacuum source for the substrate floating table 2250 contained in the gaseous environment within the gas enclosure assembly 1005. Attributes that may make blowers suitable for use as either a pressurized inert gas or vacuum source for various embodiments of the substrate floating table include, for example, that they are highly reliable, making them less labor intensive to maintain, have variable speed control, have a wide range of flow rates, and have a flow rate of approximately 100 m 3 / hour ~ approx. 2,500m 3 Various embodiments of the blower loop 3280 may include, but are not limited to, various embodiments capable of providing a flow rate for 100 sq. m / hr. Various embodiments of the blower loop 3280 may additionally have a first isolation valve 3283 at the inlet end of the compressor loop 3280, and a check valve 3285 and a second isolation valve 3287 at the outlet end of the blower loop 3280. Various embodiments of the blower loop 3280 may include an adjustable valve 3286, which may be, for example, but is not limited to, a gate, butterfly, needle, or ball valve, as well as a heat exchanger 3288 to maintain the gas from the blower loop 3280 to the substrate floating table 2250 at a specified temperature.
[0125] FIG. 22A depicts an external gas loop 3200 as also shown in FIG. 21A for integrating and controlling a gas source 3201 and a clean dry air (CDA) source 3203 for use in various aspects of the operation of the gas enclosure system 500C of FIG. 21A and the gas enclosure system 500D of FIG. 22A. The external gas loop 3200 of FIG. 21A and FIG. 22A can include at least four mechanical valves. These valves include a first mechanical valve 3202, a second mechanical valve 3204, a third mechanical valve 3206, and a fourth mechanical valve 3208. These various valves are located at positions in the various flow lines that allow for control of both non-reactive gases and air sources such as clean dry air (CDA). According to the present teachings, a non-reactive gas can be any gas that does not undergo a chemical reaction under a defined set of conditions. Some commonly used non-limiting examples of non-reactive gases include nitrogen, any of the noble gases, and any combination thereof. Extending from the on-board gas source 3201 is an on-board gas line 3210. The on-board gas line 3210 continues linearly as a low consumption manifold line 3212, which is in fluid communication with a low consumption manifold 3215. A first section 3214 of the intersection line extends from a first flow junction 3216, which is located at the intersection of the on-board gas line 3210, the low consumption manifold line 3212, and the first section 3214 of the intersection line. The first section 3214 of the intersection line extends to a second flow junction 3218. The compressor gas line 3220 extends from an accumulator 3264 of the compressor loop 3250 and terminates at the second flow junction 3218. The CDA line 3222 extends from the CDA source 3203 and continues as a high consumption manifold line 3224, which is in fluid communication with a high consumption manifold 3225. A third flow junction 3226 is located at the intersection of a second section 3228 of the intersection line, the clean dry air line 3222, and the high consumption manifold line 3224. The second section 3228 of the intersection line extends from the second flow junction 3218 to the third flow junction 3226. A high consumption manifold 3225 can be used to supply various components that are high consumption to the CDA during maintenance.Valves 3204, 3208, and 3230 can be used to isolate the compressor to prevent reactive species such as ozone, oxygen, and water vapor from contaminating the gases in the compressor and accumulator.
[0126] In contrast to FIGS. 21A and 22A, FIGS. 21B and 22B generally illustrate configurations in which the pressure of gas inside the gas enclosure assembly 1005 can be maintained within a desired or prescribed range, such as by using a valve coupled to a pressure monitor P, which uses information obtained from the pressure monitor to allow the gas to be vented to another enclosure, system, or area surrounding the gas enclosure assembly 1005. Such gas can be recovered and reprocessed as in other embodiments described herein. As noted above, such regulation can help maintain a slightly positive internal pressure of the gas enclosure system, since pressurized gas is also simultaneously introduced into the gas enclosure system. The variable demands of various devices and equipment can generate irregular pressure profiles in the various gas enclosure assemblies and systems of the present teachings. Thus, the approach shown in Figures 21B and 22B can be used in addition to, or instead of, other approaches described herein, such as to help maintain dynamic pressure equilibrium in a gas enclosure system that is held at a slight positive pressure relative to the environment surrounding the enclosure.
[0127] FIG. 22C generally illustrates a further embodiment of a system 500E for integrating and controlling one or more gas or air sources, such as to establish a floating control zone included as part of a floating transport system. Similar to the embodiments of FIG. 1C, FIG. 22A, and FIG. 22B, FIG. 22C generally illustrates a floating table 2250. Additionally, in the illustrative embodiment of FIG. 22C, an input area 2201 and an output area 2203 are shown. Areas 2201, 2200, 2203 are referred to as input, print, and output for illustrative purposes only. Such areas can be used for other processing steps, such as substrate transport or substrate support, such as during one or more of substrate holding, drying, or thermal treatment in one or more other modules. In the illustration of FIG. 22C, a first blower 3284A is configured to provide pressurized gas in one or more of the input or output areas 2201 or 2203 of the floating table apparatus. Such pressurized gas can be temperature controlled, such as using a first cooling device 142A coupled to a first heat exchanger 1502A. Such pressurized gas can be filtered using a first filter 1503A. A temperature monitor 8701A can be coupled to the first cooling device 142 (or other temperature controller).
[0128] Similarly, a second blower 3284B can be coupled to the printing zone 2202 of the floating table. A separate cooling device 142B can be coupled to the loop including the second heat exchanger 1502B and the second filter 1503B. A second temperature monitor 8701B can be used to provide independent regulation of the temperature of the pressurized gas provided by the second blower 3284B. In this illustrative example, the input and output zones 2201 and 2203 are provided with positive pressure as previously described herein with respect to FIG. 1C, but the printing zone 2202 can include the use of a combination of positive pressure and vacuum control to provide precise control over the substrate position. For example, using such a combination of positive pressure and vacuum control, the substrate can be exclusively controlled using a floating gas cushion provided by the gas enclosure system 500D within the zone defined by the printing zone 2202. The vacuum can be established by a third blower 3290 that also provides at least a portion of the make-up gas for the first and second blowers 3284A or 3284B within the blower housing 3282.
[0129] It should be understood that various alternatives to the embodiments of the present disclosure described herein may be employed in practicing the present disclosure. For example, widely different technical fields such as chemical, bioengineering, high technology, and pharmaceutical fields may benefit from the present teachings. Printing is used to illustrate the utility of various embodiments of the gas enclosure system according to the present teachings. Various embodiments of the gas enclosure system that may house the printing system may provide features such as, but not limited to, hermetically providing a sealed enclosure through construction and deconstruction cycles, minimizing enclosure volume, and immediate access from the outside to the inside during processing and maintenance. Such features of various embodiments of the gas enclosure system may affect functionality such as, but not limited to, structural integrity providing ease of maintaining low levels of reactive species during processing, and rapid enclosure volume conversion minimizing downtime during maintenance cycles. Thus, various features and specifications that provide utility for panel printing may also provide benefits to various technical fields.
[0130] While embodiments of the present disclosure have been shown and described herein, it will be apparent to those skilled in the art that such embodiments are provided by way of example only. Numerous changes, modifications, and substitutions will now occur to those skilled in the art without departing from the present disclosure. The following claims define the scope of the disclosure, and it is intended that methods and structures within the scope of these claims and their equivalents be covered thereby.
Claims
1. 1. A substrate motion system for an inkjet printer, the substrate motion system comprising: a substrate gripping surface supported by a gripping frame; a Y-axis carriage assembly, the Y-axis carriage assembly including a linear transducer configured to contact the gripper frame and an air bearing support supporting the carriage assembly; a central pivot disposed on the Y-axis carriage assembly, the linear transducer configured to rotate the gripping frame about the central pivot.
2. The substrate motion system of claim 1 , wherein the substrate gripping surface is a surface of a vacuum bar.
3. The substrate motion system of claim 2 , wherein the vacuum bar comprises a plurality of openings for coupling a vacuum source to the substrate.
4. The substrate motion system of claim 1 , wherein the linear transducer comprises a voice coil.
5. The substrate motion system of claim 1 , wherein the central pivot comprises a gas distributor disposed about a central shaft.
6. 1. An XZ axis motion system for an inkjet printer, the XZ axis motion system comprising: X-axis carriage; a Z-axis moving plate coupled to the X-axis carriage; a Z-axis linear motor coupled to the Z-axis moving plate, the Z-axis linear motor being disposed on an X-axis carriage and configured to move the Z-axis moving plate in a Z-axis direction; An XZ-axis motion system comprising: a pneumatic counterbalance system coupled to the Z-axis motion plate and the X-axis carriage.
7. The XZ axis motion system of claim 6 , wherein the pneumatic counterbalance system comprises a pneumatic cylinder coupled between the Z axis moving plate and the X axis carriage.
8. 7. The XZ axis motion system of claim 6, further comprising a controller configured to determine a drive current for the Z axis motor based on a position of the Z axis moving plate to be achieved.
9. The XZ axis motion system of claim 8 , wherein the controller is further configured to determine an equilibrium pressure that optimizes the drive current.
10. 1. An inkjet printer comprising: A substrate support; a bridge disposed across the substrate support; A print head assembly; and an XZ axis motion system as recited in claim 6 coupling said printhead assembly to said bridge.
11. The inkjet printer of claim 10 , wherein the printhead assembly is mounted to the Z-axis translation plate.
12. The inkjet printer of claim 11 , wherein the substrate support is a floating support.
13. The inkjet printer of claim 12 further comprising the substrate motion system of claim 1.
Citation Information
Patent Citations
Method and device for removing work from vacuum chuck device
JP1996039377A
Coating machine
JP2009195851A
Air bearing substrate medium transportation
JP2013234069A