Kim San, Choi Jun Hyeok, Sohn Dong Kee, Ko Han Seo
Department of Smart Fab. Technology, Sungkyunkwan University, Suwon 16419, Korea.
School of Mechanical Engineering, Sungkyunkwan University, Suwon 16419, Korea.
Micromachines (Basel). 2022 Apr 14;13(4):615. doi: 10.3390/mi13040615.
Experimental and numerical analysis of the drop-on-demand inkjet was conducted to determine the jetting characteristics and meniscus motion under the control of the ink supply pressure. A single transparent nozzle inkjet head driven by a piezoelectric actuator was used to eject droplets. To control ink supply pressure, the pressure of the air in the reservoir was regulated by a dual valve pressure controller. The inkjet performance and the motion of the meniscus were evaluated by visualization and numerical simulation. A two-dimensional axisymmetric numerical simulation with the dynamic mesh method was performed to simulate the inkjet dynamics, including the actual deformation of the piezoelectric actuator. Numerical simulation showed good agreement with the experimental results of droplet velocity and volume with an accuracy of 87.1%. Both the experimental and simulation results showed that the drop volume and velocity were linearly proportional to the voltage change. For the specific voltages, an analysis of the effect of the ink supply pressure control was conducted. At the maximum negative pressure, -3 kPa, the average velocity reductions were 0.558 and 0.392 m/s in the experiment and simulation, respectively, which were 18.7 and 11.6% less than those of the uncontrolled case of 0 kPa. Therefore, the simulation environment capable of simulating the entire inkjet dynamics, including meniscus movement regarded to be successfully established. The average volume reductions were 18.7 and 6.97 pL for the experiment and simulation, respectively, which were 21.7 and 9.17% less than those of the uncontrolled case. In the results of the meniscus motion simulation, the damping of the residual vibration agreed well with the experimental results according to the ink supply pressure change. Reducing the ink supply pressure reduced the speed and volume, improved the damping of residual vibrations, and suppressed satellite drops. Decreasing ink supply pressure can be expected to improve the stability and productivity of inkjet printing.
进行了按需滴墨式喷墨的实验和数值分析,以确定在墨水供应压力控制下的喷射特性和弯月面运动。使用由压电致动器驱动的单个透明喷嘴喷墨头来喷射液滴。为了控制墨水供应压力,通过双阀压力控制器调节储液器中的空气压力。通过可视化和数值模拟评估喷墨性能和弯月面的运动。采用动态网格法进行二维轴对称数值模拟,以模拟喷墨动力学,包括压电致动器的实际变形。数值模拟结果与液滴速度和体积的实验结果吻合良好,准确率达87.1%。实验和模拟结果均表明,液滴体积和速度与电压变化呈线性比例关系。针对特定电压,对墨水供应压力控制的影响进行了分析。在最大负压-3 kPa时,实验和模拟中平均速度降低分别为0.558和0.392 m/s,分别比0 kPa的无控制情况降低了18.7%和11.6%。因此,能够模拟包括弯月面运动在内的整个喷墨动力学的模拟环境被认为已成功建立。实验和模拟中平均体积减少分别为18.7和6.97 pL,分别比无控制情况减少了21.7%和9.17%。在弯月面运动模拟结果中,残余振动的阻尼根据墨水供应压力变化与实验结果吻合良好。降低墨水供应压力会降低速度和体积,改善残余振动的阻尼,并抑制卫星液滴。预计降低墨水供应压力可提高喷墨打印的稳定性和生产率。