McLean Keegan M, Pasulka Alexis L, Bockmon Emily E
California Polytechnic State University, San Luis Obispo 1 Grand Ave, San Luis Obispo, CA 93407, USA.
HardwareX. 2021 Nov 10;10:e00247. doi: 10.1016/j.ohx.2021.e00247. eCollection 2021 Oct.
In the last two decades, the need for seawater pH control methodologies paralleled the rise in attention to the biological impacts of ocean acidification. Many effective and high-performing systems have been created, but they are often expensive, complex, and difficult to establish. We developed a system that is similarly high performing, but at a low cost and with a simple and accessible design. This system is controlled by an Arduino Nano, an open-source electronics platform, which regulates the flow of CO gas through electric solenoid valves. The Arduino and other inexpensive materials total ∼$150 (plus CO gas and regulator), and a new treatment can be added for less than $35. Easy-to-learn code and simple wire-to-connect hardware make the design extremely accessible, requiring little time and expertise to establish. The system functions with a variety of pH probes and can be adapted to fit a variety of experimental designs and organisms. Using this set up, we were able to constrain seawater pH within a range of 0.07 pH units. Our system thus maintains the performance and adaptability of existing systems but expands their accessibility by reducing cost and complexity.
在过去二十年中,对海水pH值控制方法的需求与对海洋酸化生物影响的关注度上升同步。已经创建了许多有效且高性能的系统,但它们往往成本高昂、复杂且难以建立。我们开发了一种同样高性能的系统,但成本低廉且设计简单易操作。该系统由开源电子平台Arduino Nano控制,它通过电动电磁阀调节CO气体的流量。Arduino和其他廉价材料总计约150美元(外加CO气体和调节器),添加一种新处理的成本不到35美元。易于学习的代码和简单的连接线路硬件使该设计极易上手,建立起来几乎不需要时间和专业知识。该系统可与多种pH探头配合使用,并可进行调整以适应各种实验设计和生物体。使用这个装置,我们能够将海水pH值限制在0.07个pH单位的范围内。因此,我们的系统保持了现有系统的性能和适应性,但通过降低成本和复杂性扩大了其可及性。