The present invention relates to a cantilever assembly designed for enhanced maneuverability and precise positioning of components in systems such as digital printing machines, manufacturing equipment, and other applications requiring accurate motion control.
“Combined Stencil and Digital Printing System” that enables the objective of continuous digital printing is disclosed in patent no. U.S. 2006/0249039 A1. The digital printing system includes inkjet nozzles for printing pixelated digital images formed by hundreds and thousands of on-demand ink droplets in orthogonal coordinates that coincide with the length and width of a pallet.
The digital printing system also includes pallets that respectively support spokes of a carousel conveyor mechanism, occupying a pie-shaped wedge space. As the pallet moves closer to the hub center, the space between neighboring pallets becomes narrower. Furthermore, the digital printing system operates by sliding a matrix of inkjet nozzles back and forth along a motion gantry, which is supported at both ends to ensure structural integrity. However, when the motion gantry is used in conjunction with the carousel conveyor mechanism, the motion gantry limits the printing range of the inkjet nozzles.
An object of the present invention is to mobilize inkjet nozzles without interfering with each other in the pie-shaped wedge space and without having to extend the spokes far outward radially, i.e., realizing an un-interfering transverse space.
Another object of the present invention is to minimize acceleration and deceleration of the inkjet nozzles to position precisely and move stably in practice.
For the above purposes, the present invention provides a digital printing machine, the digital printing machine comprising: a carrier, a cantilever assembly, a printing device, an inkjet controller. The cantilever assembly being disposed on the carrier, the cantilever assembly comprising: a first base, a first slide rail, a first slider, a first driver, a second base, a cantilever frame, a second slide rail, a second slider, a second driver, and a carrying platform. The first slide rail is disposed on the first base. The first slider is disposed on the first slide rail. The first driver is disposed on one end of the first slide rail and coupled to the first slider for driving the first slider to reciprocate along the first slide rail in a first direction. The second base is disposed on the first slider. The cantilever frame has a fixed end disposed on the second base and a free end extending in a second direction perpendicular to the first direction. The second slide rail is disposed on the cantilever frame and arranged along the second direction. The second slider is disposed on the second slide rail. The second driver is disposed on the second slide rail and neighboring the fixed end of the cantilever frame, and the second driver is coupled to the second slider, for driving the second slider to reciprocate along the second slide rail. The carrying platform disposed on the second slider. The printing device disposed on the carrying platform of the cantilever assembly and disposed with a plurality of inkjet nozzles. The inkjet controller coupled to the first driver, the second driver, and the printing device to control movement of the first slider and the second slider and to control the plurality of inkjet nozzles to eject ink droplets.
In some embodiments, the printing device comprises up to 10 individual ink channels, each including a plurality of inkjet nozzles.
In some embodiments, the plurality of inkjet nozzles is arranged in a matrix and is individually driven by piezoelectric ceramics.
In some embodiments, the cantilever assembly further includes a first guide rail and a third slider. The first guide rail is disposed on the first base and arranged parallel to the first slide rail. The third slider disposed on the first guide rail and fixed to the second base. Furthermore, a height where the first slider is fixed to the second base is equal to a height where the third slider is fixed to the second base, such that the second base can maintain a horizontal level between the second base and the first base.
In some embodiments, the cantilever frame comprises: a first frame body and a second frame. The first frame body in which a fixed plate is embedded, the bottom of the first frame body being fixed to the second base. The second frame body comprising: two chord members parallel to each other; and a plurality of vertical supports arranged between the two chord members, and the first frame body and the second frame body are co-planar and jointly connected to the second slide rail.
In some embodiments, the second slide rail and the second slider are driven by a ball screw that consists of a lead screw and a bearing.
In some embodiments, the lead screw has a length ranging from 400 to 1800 mm, a diameter ranging from 8 to 18 mm, and a pitch ranging from 10 to 30 mm, and is capable of rotating from 600 to 3000 rpm.
In some embodiments, the total weight of the carrying platform and its payloads is less than 8 kg.
In some embodiments, the cantilever frame is a hollow truss frame.
The present invention also provides a continuous printing apparatus that includes the aforementioned digital printing machine and a rotary conveying device. The rotary conveying device rotates to move a plurality of pallets to the printing device, sequentially.
The cantilever assembly of the present invention utilizes a cantilever frame structurally optimized for precise positioning of inkjet nozzles over a wide range of motion without interfering with adjacent operational spaces. With the combination of the first slide rail and the second slide rail, along with corresponding sliders and drivers, the cantilever assembly achieves unparalleled flexibility and accuracy in nozzle positioning. The cantilever assembly not only minimizes the space required for operation by cleverly utilizing a cantilever mechanism but also significantly reduces the acceleration and deceleration distances for the nozzle carriage. This improvement ensures that a greater portion of the motion area is utilized for actual printing, thereby increasing space utilization efficiency.
Below, the embodiments are described in detail in cooperation with the drawings to facilitate a clear understanding of the technical contents, characteristics, and accomplishments of the present invention.
The details of one or more aspects of the cantilever assembly, the digital printing machine, and the continuous printing apparatus are described below. The use of the same reference numbers in different instances in the description and the figures indicate similar elements:
A plurality of embodiments of the present application will be disclosed in the following drawings. For the purpose of clear explanation, many implementation details will be explained together in the following description. However, it should be understood that these implementation details should not limit the invention. That is to say, in some embodiments of the invention, these implementation details are not necessary. In addition, for the purpose of simplifying the drawings, some commonly used structures and components will be illustrated in a simple and schematic manner in the drawings. In the following embodiments, the same or similar components will be represented with the same reference numerals.
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The second slide rail 107 extends along the second direction and is mounted on the cantilever frame 106. When an object moves along the second direction, the farther the object moves from the fixed end of the cantilever frame 106, the greater the torque (t) is generated, which may cause the cantilever assembly 10 to tip over. Therefore, the following four embodiments are provided to prevent the cantilever assembly 10 from tipping over.
To effectively tackle the challenge of increasing torque, especially when an object moves away from the fixed end of the cantilever frame 106 along the second direction, this invention introduces a suite of innovative measures to bolster the structural stability of the cantilever assembly 10, thereby preventing potential tipping due to excessive torque. These measures encompass the introduction of additional securing mechanisms, the adjustment of weight distribution, and the refinement of the driving and support systems. The four embodiments described herein each offer distinct approaches to mitigate the generated torque, ensuring the cantilever assembly's stability and safety throughout its operation.
To achieve the purpose of transporting goods, in some embodiments, the cantilever assembly 106 further includes a carrying platform 110 disposed on the second slider 108.
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To facilitate the movement of the digital printing machine 20, the top surface of the carrier is equipped with the cantilever assembly, and the bottom surface of the carrier is disposed on a roller 203 and an adjustable support foot 204.
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In the present invention, two motion stage arms assembled in an orthogonal configuration are employed. The two motion stage arms are the first slide rail 102 (Y-axis direction) and the second slide rail 107 (X-axis direction), respectively. The first slide rail 102 is laid on the first base 101 which is flat and stationary. The second slide rail 107, through its coupling mechanism with the first slider 103 and the second base 105, can move along the first slide rail 102 in the Y-axis direction. In addition, the second slider 108 can move along the second slide rail 107 in the X-axis direction, thereby forming an X-Y axis motion trajectory.
Specifically, the printing device 220 is disposed with a matrix of inkjet nozzles. The inkjet nozzles are attached to the carrying platform 110 and coupled to the printing device 220 to travel along the second slide rail 107 to deliver ink droplets at precise locations, forming a specific digital image on a textile media.
In some embodiments, the printing device 220 are up to 10 individual ink channels, each including a plurality of inkjet nozzles. The inkjet nozzles actuate with individual piezoelectric ceramics to generate on-demand ink droplets. The 10 channels can be assigned to the same color of inks or various colors of inks.
To ensure a short and firm acceleration/deceleration of the nozzle carriage, the second slide rail 107 and the second slider 108 can be driven by a ball screw consisting of a lead screw and bearings. Specifically, the lead screw is supported by the bearings at both ends of linear motion section, and a nut-and-ball moving stage sliding against the second slide rail 107.
To enhance the precision and efficiency of the digital printing machine, particularly in achieving short and firm acceleration/deceleration of the nozzle carriage, this embodiment introduces two features:
Rotation Speed Range for Optimal Printing Performance: The driving components, such as ball screws, which control the movement of the printing device along the X and Y axes, are designed to be capable of rotating from 600 revolutions per minute (rpm) to 3000 rpm. This recommended range of rotation speeds is critical for ensuring both the quality and efficiency of printing. It allows for rapid and smooth adjustment of the print head's position to accommodate different printing tasks and media types, enhancing overall printing efficiency while maintaining high print quality. By precisely controlling the rotation speed within this range, the digital printing machine achieves accurate positioning of the print medium, allowing inkjet nozzles to eject ink droplets at precise locations for high-resolution image printing. Furthermore, this speed range helps reduce vibrations from fast movements, enhancing the stability of the printing process and the consistency of the printed products.
Lead Screw Specifications for Enhanced Mechanical Stability: To support the innovative unilateral cantilever structure, which eliminates the need for support points at the far end and significantly expands the workspace available for printing, this embodiment employs a lead screw with specific dimensions. The lead screw, a critical component of the ball screw drive, has a length ranging from 400 mm to 1800 mm, a diameter from 8 mm to 18 mm, and a pitch from 10 mm to 30 mm. The lead screw can be constructed from steel alloy or any lightweight material with comparable support strength, the lead screw not only provides the necessary mechanical strength and stability for the cantilever structure but also ensures high precision and reliability in moving the printing device. Contrary to the prior art, which utilized linear motors or belt drives and faced challenges related to ‘span’ necessitating the use of support structures akin to gantries, this invention substantially improves the flexibility and operational efficiency of the printing machine. The traditional ‘span’ issues, characterized by the need for extensive support mechanisms to mitigate structural instability over long distances, are adeptly addressed by the novel approach of this invention, eliminating the dependency on gantry-like supports.
Building on the two features outlined above, it is possible to create a compact digital printing machine. Through rigorous testing, it has been confirmed that the carrying platform 110, along with its printing device 202, can safely execute printing operations when the total weight is kept below 8 kg. This weight limitation plays a crucial role in maintaining the efficiency and stability of the printing process. By ensuring that the combined weight of the carrying platform and its payloads does not exceed this threshold, the digital printing machine benefits from reduced mechanical stress and enhanced maneuverability. This not only facilitates smoother and more precise movements but also contributes to the overall longevity of the machine by minimizing wear and tear on the mechanical components. The ability to maintain optimal performance while adhering to this weight restriction underscores the effectiveness of the machine's design in delivering high-quality printing results without compromising on safety or reliability.
According to the above embodiments, the effects of the present invention include but not limit to:
The embodiments described above are only to exemplify the present invention but not to limit the scope thereof. Therefore, any equivalent modification or variation according to the shapes, structures, features, or spirit disclosed by the present invention is to be also included within the scope thereof.
This application claims priority for the U.S. provisional patent application No. 63/506,403 filed on 6 Jun. 2023, the content of which is incorporated by reference in its entirely.
Number | Date | Country | |
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63506403 | Jun 2023 | US |