圣卡塔琳娜岛pH的动力学
1Catalina Marine Society, Lomita, California, United States of America.
PloS one
|December 7, 2023
概括
海洋酸化因海洋学条件而局部变化. 圣卡塔琳娜岛的pH值高于附近地区,受到内部波浪和减少上游的影响,导致海洋生物的pH值大幅波动.
科学领域:
- 海洋化学 海洋化学
- 海洋学 海洋学 海洋学
- 气候变化影响气候变化的影响.
背景情况:
- 海洋酸化是一个日益严重的全球性问题.
- 当地的海洋学特征显著影响区域pH值.
- 了解局部pH值变化对于海洋生态系统至关重要.
研究的目的:
- 确定圣卡塔琳娜岛pH值行为的基线.
- 在南加利福尼亚湾内调查海洋酸化动态.
- 将海洋学特征与观察到的pH值相关联.
主要方法:
- 在现场测量pH值,温度,导电性,叶绿素和溶解氧气.
- 通过固定泊位,基于船只的分析和潜水收集数据.
- 对上层水柱 (0-30m) 属性的分析.
主要成果:
- 圣卡塔琳娜岛的平均pH值 (8.095在18米处) 比大陆和北方海峡群岛的平均pH值高.
- 内部波浪和减少的上游流导致岛屿pH值更高.
- 在深度显著的pH调节与内部波动向有关.
结论:
- 当地的海洋学条件,特别是内部波浪,导致了显著的pH变化.
- 影响深度的海洋生物经历了相当大的pH波动.
- 没有发现明显的季节性pH依赖或与/氧最大值的直接联系.
相关概念视频
Ladder Diagrams: Acid–Base Equilibria
496
Understanding the chemistry between the reagents is necessary for performing any experiment. To this end, scientists have designed a tool called a ladder diagram, which is a graphical representation that helps illustrate the chemistry of a system.
A ladder diagram for acid-base equilibria consists of a vertical axis that represents pH and horizontal bars (steps on the ladder) that help position all the pKa values in the system. At equilibrium, the pH value of the system corresponds to one of...
A ladder diagram for acid-base equilibria consists of a vertical axis that represents pH and horizontal bars (steps on the ladder) that help position all the pKa values in the system. At equilibrium, the pH value of the system corresponds to one of...
496
Bicarbonate-Carbonic Acid Buffer
1.4K
The carbonic acid-bicarbonate buffer system is critical for maintaining the body's pH balance. It operates on the equilibrium:
1.4K
Acid–Base Equilibria: Activity-Based Definition of pH
595
For an ideal solution, the pH is defined as the negative logarithm of the hydrogen ion concentration. For a non-ideal solution, an accurate measurement of the pH must consider the negative logarithm of the hydrogen ion activity rather than concentration. In such a solution, the pH can be more accurately defined as the negative logarithm of a product of the hydrogen ion concentration and its activity coefficient.
In solutions of very low ionic strength—for example, pure water—the...
In solutions of very low ionic strength—for example, pure water—the...
595
Stomach pH Regulation
6.0K
The human body carefully regulates the internal pH of different organs to maintain homeostasis. For example, while the blood plasma maintains a neutral pH of 7, the stomach lumen has an acidic pH of 1.5 - 3.5. The low pH of stomach lumen helps kill pathogens in the food and break down complex food molecules.
The acid-secreting gastric mucosal epithelial cells (parietal cells) lining the stomach lumen maintain the low pH in the lumen. Numerous ion transporters and channels on these parietal...
The acid-secreting gastric mucosal epithelial cells (parietal cells) lining the stomach lumen maintain the low pH in the lumen. Numerous ion transporters and channels on these parietal...
6.0K
pH Scale
69.0K
Hydronium and hydroxide ions are present both in pure water and in all aqueous solutions, and their concentrations are inversely proportional as determined by the ion product of water (Kw). The concentrations of these ions in a solution are often critical determinants of the solution’s properties and the chemical behaviors of its other solutes. Two different solutions can differ in their hydronium or hydroxide ion concentrations by a million, billion, or even trillion times. A common means of...
69.0K
Calculating pH Changes in a Buffer Solution
53.3K
A buffer can prevent a sudden drop or increase in the pH of a solution after the addition of a strong acid or base up to its buffering capacity; however, such addition of a strong acid or base does result in the slight pH change of the solution. The small pH change can be calculated by determining the resulting change in the concentration of buffer components, i.e., a weak acid and its conjugate base or vice versa. The concentrations obtained using these stoichiometric calculations can be used...
53.3K


