📚 Rates of Reaction | 反应速率
Chemical reactions occur at different speeds. Some, like explosions, happen in a flash; others, like rusting, take years. In IGCSE Science, understanding how to measure and control reaction rates is a key skill that links theory to practical applications.
化学反应以不同的速度发生。有些反应,比如爆炸,瞬间完成;另一些反应,比如生锈,则需要数年。在 IGCSE 科学中,理解如何测量和控制反应速率是一项关键技能,它将理论与实际应用联系起来。
1. What Is Reaction Rate? | 什么是反应速率?
Reaction rate is the change in concentration of a reactant or product per unit time. It can be expressed as the amount of reactant used up, or the amount of product formed, divided by the time taken.
反应速率是单位时间内反应物或产物浓度的变化量。它可以表示为消耗的反应物的量,或生成的产物的量,除以所用的时间。
Rate = amount of reactant used or product formed ÷ time
速率 = 反应物消耗量或产物生成量 ÷ 时间
For example, if 0.02 mol of a product appears in 10 seconds, the average rate is 0.002 mol/s.
例如,如果 0.02 mol 产物在 10 秒内出现,则平均速率是 0.002 mol/s。
2. Collision Theory | 碰撞理论
For a reaction to occur, reactant particles must collide with each other. However, not every collision leads to a reaction. Only collisions with enough energy and the correct orientation are successful.
为了使反应发生,反应物粒子必须相互碰撞。然而,并非每次碰撞都会导致反应。只有具有足够能量且方向正确的碰撞才是有效碰撞。
This minimum energy required for a successful collision is called the activation energy (Eₐ).
这种发生有效碰撞所需的最小能量称为活化能(Eₐ)。
A higher frequency of successful collisions means a faster reaction rate.
有效碰撞的频率越高,反应速率越快。
3. Factors Affecting Reaction Rate | 影响反应速率的因素
Several factors change how quickly a reaction proceeds. In the Edexcel IGCSE specification, you must know at least five: concentration, pressure, surface area, temperature, and catalysts.
有几个因素会改变反应进行的快慢。在 Edexcel IGCSE 考纲中,你至少需要掌握五个因素:浓度、压强、表面积、温度和催化剂。
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Increasing concentration or pressure raises the number of particles per unit volume.
增加浓度或压强会提高单位体积内的粒子数。
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Increasing surface area exposes more particles to collision.
增加表面积会暴露更多粒子以供碰撞。
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Increasing temperature gives particles more kinetic energy.
升高温度赋予粒子更多动能。
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Adding a catalyst provides an alternative pathway with lower activation energy.
添加催化剂提供了活化能更低的新反应途径。
4. Concentration and Pressure | 浓度与压强
When the concentration of a solution is increased, the number of particles in the same volume increases. As a result, collisions happen more frequently, and the rate of reaction increases.
当溶液的浓度增加时,相同体积内的粒子数会增加。结果,碰撞发生得更频繁,反应速率加快。
For gases, increasing pressure has the same effect as increasing concentration: the particles are squeezed into a smaller volume, so they collide more often.
对于气体,增加压强与增加浓度效果相同:粒子被压缩到更小的体积中,因此它们碰撞更频繁。
In both cases, the activation energy is unchanged, but the frequency of successful collisions is higher.
在这两种情况下,活化能不变,但有效碰撞的频率更高。
5. Temperature | 温度
Raising the temperature increases the average kinetic energy of particles. Particles move faster, so they collide more frequently. More importantly, a much larger proportion of particles now have energy greater than or equal to the activation energy.
升高温度会增加粒子的平均动能。粒子运动得更快,因此碰撞更频繁。更重要的是,现在有更大比例的粒子拥有大于或等于活化能的能量。
A useful rule of thumb: for many reactions, the rate roughly doubles for every 10 °C rise in temperature. This is because the number of energetic particles increases dramatically.
一个有用的经验法则:对于许多反应,温度每升高 10 °C,速率大约翻倍。这是因为高能粒子的数量急剧增加。
Note that a small temperature change has a far greater effect on rate than a small concentration change, because it changes both collision frequency and collision energy.
注意,小的温度变化对速率的影响远大于小的浓度变化,因为它同时改变了碰撞频率和碰撞能量。
6. Surface Area | 表面积
When a solid reactant is broken into smaller pieces, its total surface area increases. More particles are exposed to the other reactant, so the frequency of collisions at the surface increases.
当固体反应物被破碎成更小的颗粒时,其总表面积增大。更多粒子暴露给其他反应物,因此表面上的碰撞频率增加。
For example, a lump of calcium carbonate reacts slower with acid than powdered calcium carbonate of the same mass. Powder has a much larger surface area.
例如,一块碳酸钙与酸反应比相同质量的粉末状碳酸钙更慢。粉末的表面积大得多。
Increasing surface area does not change the energy of the particles; it only increases the chance of collision.
增加表面积不会改变粒子的能量;它只是增加了碰撞的机会。
7. Catalysts | 催化剂
A catalyst is a substance that increases the rate of a reaction without being used up. It works by providing an alternative reaction pathway with a lower activation energy.
催化剂是一种能加快反应速率但自身不被消耗的物质。它通过提供一条活化能更低的替代反应路径来实现这一作用。
Catalyst + reactants → products + Catalyst (unchanged)
催化剂 + 反应物 → 产物 + 催化剂(不变)
Catalysts are specific: different reactions need different catalysts. In biological systems, enzymes are biological catalysts that work at body temperature.
催化剂具有专一性:不同的反应需要不同的催化剂。在生物系统中,酶是在体温下起作用的生物催化剂。
Catalysts do not change the position of equilibrium in reversible reactions, but they help the system reach equilibrium faster.
催化剂不改变可逆反应的平衡位置,但能帮助体系更快达到平衡。
8. Measuring Reaction Rates | 测量反应速率
Several experimental methods can track how fast a reaction proceeds. The choice depends on the reaction being studied.
有几种实验方法可以追踪反应进行的速度。选择哪种方法取决于所研究的反应。
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Collecting gas: A gas syringe measures the volume of gas produced over time.
收集气体:用气筒测量随时间产生的气体体积。
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Loss of mass: If a gas escapes, the mass of the reaction flask decreases.
质量损失:如果气体逸出,反应瓶的质量会减小。
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Monitoring turbidity: A precipitate formed in a solution makes it cloudy; the time for a cross to disappear can be measured.
监测浊度:溶液中生成的沉淀会使溶液变浑浊;可以测量十字标记消失所需的时间。
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Color change or pH change: Use a colorimeter or pH probe to record changes.
颜色变化或 pH 变化:使用色度计或 pH 探针记录变化。
| Method 方法 | What is measured 测量内容 | Example reaction 示例反应 |
| Gas collection | Volume of gas (cm³) | Mg + HCl → H₂ |
| Loss of mass | Mass (g) | CaCO₃ + HCl → CO₂ |
| Turbidity | Time for cross to vanish (s) | Na₂S₂O₃ + HCl → S |
9. Interpreting Graphs | 解读曲线图
Reaction rate can be determined from graphs of product or reactant concentration against time. The steeper the curve, the faster the reaction.
反应速率可以从产物或反应物浓度随时间的曲线图中确定。曲线越陡,反应越快。
As a reaction proceeds, reactants are used up, so the rate gradually decreases. The curve becomes less steep and eventually flattens when the reaction stops.
随着反应进行,反应物被消耗,速率逐渐减小。曲线变缓,当反应停止时最终变平。
To find the instantaneous rate at a particular time, draw a tangent to the curve at that point and calculate its gradient:
要找到某一特定时间的瞬时速率,可以在该点画一条切线,并计算其斜率:
Rate = gradient = Δy ÷ Δx
速率 = 斜率 = Δy ÷ Δx
The average rate over a whole reaction is the total change in a measured quantity divided by the total time taken.
整个反应的平均速率是测量量的总变化除以所用的总时间。
10. Real-World Applications | 现实应用
Controlling reaction rate is vital in industry, medicine, and everyday life.
控制反应速率在工业、医学和日常生活中至关重要。
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Food preservation: refrigeration slows down the enzymatic reactions that cause food to spoil.
食品保存:冷藏减缓导致食物变质的酶促反应。
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Industrial Haber process: an iron catalyst and high pressure speed up ammonia production.
工业哈伯法:铁催化剂和高压加快氨的生产。
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Car airbags: sodium azide decomposes extremely quickly to fill the airbag instantly.
汽车安全气囊:叠氮化钠极速分解,瞬间充满气囊。
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Medicines: tablets are often powdered or made into finer particles so the drug dissolves and reacts faster in the body.
药物:药片常被粉碎或制成更小颗粒,以便药物在体内更快溶解和反应。
Understanding reaction rates helps chemists design safer and more efficient processes.
理解反应速率帮助化学家设计更安全、更高效的工艺。
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