📚 AS CAIE PE: Quick Reference Formula & Theorem Handbook | AS CAIE 体育:公式定理速查手册
This comprehensive handbook compiles every essential formula, equation, and theoretical construct required for the AS Level CAIE Physical Education syllabus (8386). From cardiopulmonary calculations to biomechanical principles, this resource organizes quantitative and qualitative theorems into a single, accessible reference. Memorising these equations is only half the battle; understanding their application across the anatomy and physiology, exercise physiology, and biomechanics components is critical for achieving top marks in Paper 1 and Paper 2.
这本综合手册汇编了AS Level CAIE体育课程(8386)所需的每一条核心公式、方程和理论建设。从心肺计算到生物力学原理,这份资源将定量和定性定理整理成一份易于查阅的参考资料。记住这些方程只是成功的一半;理解它们在解剖学与生理学、运动生理学和生物力学各部分中的应用,对于在Paper 1和Paper 2中取得高分至关重要。
1. Maximum Heart Rate Estimation | 最大心率估算
The simplest and most widely used method to estimate an individual’s maximum heart rate (HRmax) is the age-predicted formula. While individual variation exists due to genetics, fitness level, and testing modality, this linear regression model provides a baseline for exercise prescription. Always recall that this is an estimation with a standard error of approximately ±10 to 12 beats per minute.
估算个人最大心率(HRmax)的最简单且应用最广泛的方法是年龄预测公式。尽管因遗传、体能水平和测试方式存在个体差异,但这一线性回归模型为运动处方提供了基线。务必记住,这是一个估算值,标准误差约为每分钟±10至12次。
HRmax = 220 − Age (years)
最大心率 = 220 − 年龄(岁)
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The equation forms the foundation for establishing training zones using the Karvonen method or percentage of HRmax approach. / 该方程构成了使用Karvonen法或最大心率百分比法建立训练区间的基础。
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Alternative formula for obese or older populations: HRmax = 208 − (0.7 × Age). / 肥胖或老年人群的替代公式:HRmax = 208 − (0.7 × 年龄)。
2. Cardiac Output and Stroke Volume | 心输出量与每搏输出量
Cardiac output (Q) represents the total volume of blood ejected from the left ventricle per minute. It is the product of stroke volume (SV) and heart rate (HR). This relationship is fundamental to understanding how the cardiovascular system meets the oxygen demands of working muscles during both steady-state and maximal exercise.
心输出量(Q)表示左心室每分钟射出的血液总量。它是每搏输出量(SV)与心率(HR)的乘积。这一关系对于理解心血管系统在稳态和最大强度运动中如何满足工作肌肉的氧需求至关重要。
Q (L/min) = SV (mL/beat) × HR (beats/min) ÷ 1000
Q (升/分) = SV (毫升/次) × HR (次/分) ÷ 1000
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At rest, a typical untrained individual exhibits Q ≈ 5 L/min (SV ≈ 70 mL, HR ≈ 72 bpm). / 安静状态下,典型未受训练者的Q ≈ 5升/分(SV≈70毫升,心率≈72次/分)。
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During maximal exercise, elite endurance athletes can achieve Q values exceeding 35 L/min due to significant increases in both SV and HR. / 在最大强度运动中,精英耐力运动员由于每搏输出量和心率的显著增加,Q值可超过35升/分。
3. Stroke Volume Determinants and Ejection Fraction | 每搏输出量决定因素与射血分数
Stroke volume is determined by three primary factors: preload (end-diastolic volume, EDV), myocardial contractility, and afterload (aortic resistance). The ejection fraction (EF) quantifies the efficiency of the left ventricle as a pump and serves as a clinical indicator of cardiac function.
每搏输出量由三个主要因素决定:前负荷(舒张末期容积, EDV)、心肌收缩力和后负荷(主动脉阻力)。射血分数(EF)量化了左心室作为泵的效率,也是心功能的临床指标。
SV = EDV − ESV
SV = 舒张末期容积 − 收缩末期容积
Ejection Fraction (%) = (SV ÷ EDV) × 100
射血分数 (%) = (SV ÷ EDV) × 100
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An increased EDV stretches ventricular muscle fibres, optimising actin-myosin overlap and enhancing contractile force via the Frank-Starling mechanism. / 增加的EDV拉伸心室肌纤维,优化肌动蛋白-肌球蛋白重叠,并通过Frank-Starling机制增强收缩力。
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Endurance training increases plasma volume, which raises EDV and consequently SV at rest and during submaximal exercise, a phenomenon termed ‘athlete’s heart’. / 耐力训练增加血浆容量,从而提高安静和亚极量运动时的EDV和SV,这一现象被称为“运动员心脏”。
4. Pulmonary Ventilation and Respiratory Calculations | 肺通气量与呼吸计算
Pulmonary ventilation (V̇E) is the volume of air moved in and out of the lungs per minute. It is the product of tidal volume (TV) and breathing frequency (f). Understanding the interplay between these variables explains how ventilation increases from approximately 6 L/min at rest to over 150 L/min during intense exercise in trained individuals.
肺通气量(V̇E)是每分钟进出肺部的空气体积。它是潮气量(TV)与呼吸频率(f)的乘积。理解这些变量之间的相互作用,可以解释受训者在剧烈运动中通气量如何从安静时的约6升/分增加到150升/分以上。
V̇E (L/min) = TV (L/breath) × f (breaths/min)
V̇E (升/分) = TV (升/次) × f (次/分)
Alveolar Ventilation = (TV − Dead Space) × f
肺泡通气量 = (TV − 解剖无效腔) × f
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Anatomical dead space typically approximates 150 mL in adults and does not participate in gas exchange; only alveolar ventilation contributes to O₂ and CO₂ transfer. / 解剖无效腔在成人中通常约为150毫升,不参与气体交换;只有肺泡通气量对O₂和CO₂的交换有贡献。
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During incremental exercise, tidal volume plateaus at approximately 50-60% of vital capacity, after which further increases in V̇E are achieved predominantly by elevating breathing frequency. / 在递增负荷运动中,潮气量在大约肺活量的50-60%处达到平台,此后V̇E的进一步增加主要通过提高呼吸频率来实现。
5. Body Mass Index (BMI) and Body Composition | 身体质量指数(BMI)与身体成分
Body Mass Index provides a crude, population-level proxy for body fatness based on height and mass. While it fails to distinguish between lean muscle tissue and adipose tissue, it remains a staple metric in epidemiological studies and initial screening within the CAIE syllabus. Candidates must discuss its limitations thoroughly.
身体质量指数基于身高和体重,为身体肥胖程度提供了一个粗略的群体层面指标。虽然它无法区分瘦肌肉组织和脂肪组织,但它仍然是流行病学研究和CAIE考纲中初步筛查的主要指标。考生必须全面讨论其局限性。
BMI = Body Mass (kg) ÷ [Height (m)]²
BMI = 体重 (公斤) ÷ [身高 (米)]²
| Classification / 分类 | BMI Range (kg/m²) / BMI范围 |
| Underweight / 体重不足 | < 18.5 |
| Normal weight / 正常体重 | 18.5 – 24.9 |
| Overweight / 超重 | 25.0 – 29.9 |
| Obese Class I / 肥胖I级 | 30.0 – 34.9 |
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A muscular rugby player may register a BMI > 30 kg/m² yet possess low body fat, illustrating the metric’s inability to account for body composition. / 一名肌肉发达的橄榄球运动员的BMI可能>30 kg/m²,但体脂率却很低,这说明了该指标无法反映身体成分。
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Alternative field measures such as skinfold calipers and bioelectrical impedance provide more direct estimates of body fat percentage. / 皮褶卡尺和生物电阻抗等替代性现场测量方法可以更直接地估算体脂百分比。
6. Energy Expenditure and METs | 能量消耗与代谢当量
The Metabolic Equivalent of Task (MET) expresses the energy cost of physical activities as a multiple of resting metabolic rate. One MET is defined as the energy expended while sitting quietly at rest, approximately 3.5 mL O₂ per kilogram of body mass per minute. This standardisation allows comparison across activities and populations in sport and exercise contexts.
代谢当量(MET)将身体活动的能量消耗表示为静息代谢率的倍数。1 MET被定义为安静静坐时的能量消耗,约为每公斤体重每分钟3.5毫升O₂。这种标准化使得在运动和锻炼情境中跨活动和人群的比较成为可能。
1 MET = 3.5 mL O₂/kg/min
Energy Expenditure (kcal/min) = METs × Body Mass (kg) × 0.0175
能量消耗 (千卡/分) = METs × 体重 (公斤) × 0.0175
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Walking at 5 km/h on a flat surface corresponds to approximately 3.5 METs; jogging at 8 km/h corresponds to roughly 8 METs; competitive football can exceed 10 METs. / 平地5公里/小时步行约等于3.5 METs;8公里/小时慢跑约等于8 METs;竞技足球可超过10 METs。
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Understanding MET values assists exercise physiologists in designing energy-balanced training programmes and in calculating total daily energy expenditure (TDEE). / 理解MET值有助于运动生理学家设计能量平衡的训练计划,并计算每日总能量消耗(TDEE)。
7. Linear Motion: Speed, Velocity, and Acceleration | 直线运动:速率、速度与加速度
Biomechanics distinguishes between scalar quantities (magnitude only) and vector quantities (magnitude and direction). Speed is a scalar, while velocity and acceleration are vectors. Mastery of these definitions and their associated kinematic equations is non-negotiable for the biomechanics section of the AS CAIE examination.
生物力学区分标量(仅有大小)和矢量(大小和方向)。速率是标量,而速度和加速度是矢量。掌握这些定义及其相关的运动学方程,对于AS CAIE考试的生物力学部分而言是必不可少的。
Speed (m/s) = Distance (m) ÷ Time (s)
速率 (米/秒) = 距离 (米) ÷ 时间 (秒)
Velocity (m/s) = Displacement (m) ÷ Time (s)
速度 (米/秒) = 位移 (米) ÷ 时间 (秒)
Acceleration (m/s²) = (Final Velocity − Initial Velocity) ÷ Time
加速度 (米/秒²) = (末速度 − 初速度) ÷ 时间
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A 100 m sprinter who completes the race in 10.0 s demonstrates an average speed of 10 m/s, but instantaneous velocity fluctuates markedly across the acceleration, maximum velocity, and deceleration phases. / 一名10.0秒完成100米比赛的短跑运动员平均速率为10米/秒,但瞬时速度在加速、最大速度和减速阶段波动显著。
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Negative acceleration (deceleration) is common in sport, such as when a footballer reduces speed before changing direction. / 负加速度(减速)在体育中很常见,例如足球运动员在改变方向前降低速度。
8. Angular Motion and Lever Systems | 角运动与杠杆系统
Angular motion occurs when a body or body part rotates about an axis. All human movement is a combination of linear and angular motion, with joints serving as axes of rotation. The three classes of levers—determined by the relative positions of fulcrum, effort, and load—govern mechanical advantage in the body.
角运动发生在身体或身体部位绕轴旋转时。所有人体运动都是直线运动和角运动的结合,关节充当旋转轴。三类杠杆——由支点、动力点和阻力点的相对位置决定——支配着身体中的机械效益。
Angular Velocity (rad/s) = Angular Displacement (rad) ÷ Time (s)
角速度 (弧度/秒) = 角位移 (弧度) ÷ 时间 (秒)
Moment of Force (Torque) = Force × Perpendicular Distance from Axis
力矩 (转矩) = 力 × 到转轴的垂直距离
| Lever Class / 杠杆类别 | Arrangement / 排列方式 | Example / 示例 |
| First Class / 第一类 | Fulcrum between Effort and Load / 支点在动力与阻力之间 | Neck extension / 颈部伸展 |
| Second Class / 第二类 | Load between Fulcrum and Effort / 阻力在支点与动力之间 | Plantar flexion (calf raise) / 跖屈(提踵) |
| Third Class / 第三类 | Effort between Fulcrum and Load / 动力在支点与阻力之间 | Elbow flexion / 肘屈 |
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The majority of levers in the human body are third-class, favouring range of motion and speed of movement over force production. / 人体内大多数杠杆为第三类,偏重于运动幅度和运动速度而非力量输出。
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Second-class levers provide mechanical advantage (effort arm longer than load arm), which explains why the calf complex can generate sufficient force to lift the entire body weight during a single-leg heel raise. / 第二类杠杆提供机械效益(动力臂长于阻力臂),这解释了为何小腿复合体在单腿提踵时能产生足够的力量来抬起整个体重。
9. Newton’s Laws of Motion and Momentum | 牛顿运动定律与动量
Sir Isaac Newton’s three laws of motion form the theoretical bedrock of biomechanics. Candidates must not only state these laws verbatim but also apply them to sporting contexts—from the initial acceleration of a sprinter out of the blocks to the conservation of momentum during a rugby tackle.
艾萨克·牛顿爵士的三个运动定律构成了生物力学的理论基石。考生不仅要逐字陈述这些定律,还要将其应用于体育情境中——从短跑运动员起跑时的初始加速到橄榄球擒抱过程中的动量守恒。
First Law (Inertia): An object remains at rest or in uniform motion unless acted upon by a net external force.
第一定律(惯性):物体保持静止或匀速直线运动状态,除非受到净外力的作用。
Second Law: F = m × a
第二定律:力 = 质量 × 加速度
Third Law: For every action, there is an equal and opposite reaction.
第三定律:每一个作用力都有一个大小相等、方向相反的反作用力。
Momentum (p) = m × v
动量 = 质量 × 速度
Impulse = Force × Time = Change in Momentum (Δp)
冲量 = 力 × 时间 = 动量的变化 (Δp)
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In a collision between two rugby players, total momentum before impact equals total momentum after impact (assuming negligible external forces), illustrating the principle of conservation of momentum. / 两名橄榄球运动员碰撞时,撞击前的总动量等于撞击后的总动量(假设外部力可忽略不计),这说明了动量守恒原理。
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Increasing the time over which a force is applied—such as following through in a tennis serve—extends the impulse and thus the resulting change in momentum of the ball. / 增加施力时间——例如网球发球中的随挥动作——会延长冲量,从而增大球动量的变化量。
10. Projectile Motion Principles | 抛射体运动原理
A projectile is any object or body released into the air and subject only to the forces of gravity and air resistance. The trajectory of a projectile is parabolic (in a vacuum) and is determined by three release parameters: velocity, angle, and height. Optimising these factors is crucial in sports ranging from shot put to basketball shooting.
抛射体是任何被释放到空中且仅受重力和空气阻力作用的物体或身体。抛射体的轨迹呈抛物线(在真空中),并由三个释放参数决定:速度、角度和高度。优化这些因素在从铅球投掷到篮球投篮的运动项目中至关重要。
Optimal Release Angle (level take-off and landing) = 45°
最佳释放角度(起落点同高)= 45°
Horizontal Component of Velocity = V × cos(θ)
水平速度分量 = V × cos(θ)
Vertical Component of Velocity = V × sin(θ)
垂直速度分量 = V × sin(θ)
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When the release height exceeds the landing height (e.g., shot put), the optimal angle decreases below 45° because the projectile has additional time to travel horizontally while descending. / 当释放高度高于落地点高度时(例如铅球),最佳角度会降至45°以下,因为抛射体在下降过程中有额外的时间水平移动。
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The horizontal component of velocity remains constant if air resistance is ignored; the vertical component changes due to gravitational acceleration (approximately 9.81 m/s² downward). / 若忽略空气阻力,水平速度分量保持不变;垂直分量因重力加速度(约9.81米/秒²向下)而变化。
11. Forces, Friction, and Pressure | 力、摩擦力与压力
Forces cause or tend to cause changes in the state of motion of an object. In sport, the manipulation of frictional forces and pressure distribution is essential for performance optimisation—whether enhancing grip in rock climbing or reducing drag in swimming. An understanding of normal reaction force and coefficient of friction is expected.
力会导致或倾向于导致物体运动状态的改变。在体育中,操控摩擦力和压力分布对于优化表现至关重要——无论是增强攀岩中的抓握力还是减少游泳中的阻力。考纲要求理解法向反作用力和摩擦系数。
Friction (f) = μ × R (Normal Reaction Force)
摩擦力 = μ × R(法向反作用力)
Weight (W) = m × g (gravitational field strength, 9.81 N/kg)
重力 = 质量 × g(重力场强度,9.81牛/千克)
Pressure = Force ÷ Area over which force acts
压力 = 力 ÷ 力作用的面积
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Studded football boots reduce contact area, thereby increasing pressure and penetration into soft ground for enhanced traction. / 带钉足球鞋减少了接触面积,从而增加压力,使其能扎入松软地面以增强抓地力。
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The coefficient of friction (μ) depends on the two surfaces in contact; dry synthetic running tracks exhibit higher μ than wet grass, reducing slip risk during sprinting. / 摩擦系数(μ)取决于两个接触表面;干燥的合成跑道比湿草地具有更高的μ,可减少冲刺时的滑倒风险。
12. Training Intensity, RPE, and Heart Rate Reserve | 训练强度、RPE与心率储备
The accurate prescription and monitoring of training intensity are fundamental to the physiological adaptations sought by athletes. The Rating of Perceived Exertion (RPE) scale and the Karvonen formula (Heart Rate Reserve method) represent two complementary approaches—one subjective and psychological, the other objective and physiological.
准确设定和监控训练强度是运动员所追求的生理适应的基础。主观疲劳感觉评分(RPE)量表和Karvonen公式(心率储备法)代表了两种互补的方法——一种主观且心理化,另一种客观且生理化。
Target HR = Resting HR + (Percentage × Heart Rate Reserve)
目标心率 = 安静心率 + (百分比 × 心率储备)
Heart Rate Reserve (HRR) = HRmax − Resting HR
心率储备 = 最大心率 − 安静心率
| RPE (Borg 6-20) / 主观疲劳感觉 | Intensity Zone / 强度区间 | %HRmax Approximation / 最大心率百分比近似值 |
| 6-9 (Very light / 非常轻松) | Recovery / 恢复 | < 50% |
| 10-12 (Light to Moderate / 轻松至中等) | Aerobic Base / 有氧基础 | 50-70% |
| 13-15 (Somewhat hard / 有些吃力) | Aerobic Threshold / 有氧阈值 | 70-85% |
| 16-18 (Hard to Very hard / 吃力至非常吃力) | Anaerobic / 无氧 | 85-95% |
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The Karvonen method accounts for individual resting HR differences, providing a more personalised training intensity than the straight percentage of HRmax approach. / Karvonen法考虑了个体安静心率的差异,相比直接用最大心率百分比的方法提供了更个性化的训练强度。
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RPE is particularly valuable when heart rate monitoring is impractical or when medications such as beta-blockers artificially suppress HR responses to exercise. / 当心率监测不便或药物(如β-受体阻滞剂)人工抑制运动中心率反应时,RPE尤其有价值。
13. Injury Epidemiology and Risk Ratios | 运动损伤流行病学与风险比率
Quantifying injury risk is a cornerstone of sports medicine and is assessed in the CAIE syllabus through incidence, prevalence, and risk ratio calculations. Understanding how to interpret these statistics enables candidates to evaluate the effectiveness of injury prevention strategies such as warm-up protocols and protective equipment.
量化损伤风险是运动医学的基石,CAIE考纲通过发生率、患病率和风险比率计算来考查这一点。理解如何解读这些统计数据,使考生能够评估损伤预防策略(如热身流程和防护装备)的有效性。
Injury Incidence = (Number of new injuries in a period ÷ Total athlete-exposures) × 1000
损伤发生率 = (某时期内新损伤数量 ÷ 总运动员暴露数)× 1000
Risk Ratio = Incidence in Exposed Group ÷ Incidence in Unexposed Group
风险比率 = 暴露组的发生率 ÷ 未暴露组的发生率
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A risk ratio greater than 1.0 indicates an increased risk associated with the exposure; a ratio less than 1.0 suggests a protective effect. / 风险比率大于1.0表明与暴露相关的风险增加;比率小于1.0表明有保护效应。
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For example, if hamstring strain incidence is 12 per 1000 match-hours without a structured warm-up and 6 per 1000 with one, the risk ratio is 0.5, demonstrating 50% relative risk reduction. / 例如,若无结构化热身,腘绳肌拉伤发生率为每1000比赛小时12例,有结构化热身时为6例,则风险比率为0.5,即相对风险降低50%。
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