AS Edexcel PE Formula & Theorem Quick Reference | AS Edexcel 体育:公式定理速查手册

📚 AS Edexcel PE Formula & Theorem Quick Reference | AS Edexcel 体育:公式定理速查手册

This quick-reference handbook compiles the essential formulas, principles, and theorems required for the AS Edexcel Physical Education specification. Covering biomechanics, exercise physiology, and training science, it provides clear, exam-ready summaries to support effective revision and application.

本速查手册汇编了 AS Edexcel 体育课程所需的核心公式、原理和定理,涵盖生物力学、运动生理学和训练科学,提供清晰、贴近考试的总结,帮助考生高效复习和灵活运用。

1. Kinematics and Dynamics Formulas | 运动学与动力学公式

Average speed is the rate of distance covered: speed = distance / time or v = s / t.

平均速率是所经距离的时间率:速度 = 距离 / 时间v = s / t

Velocity is defined as the rate of change of displacement: v = Δs / Δt, where Δs is displacement and Δt is time taken.

速度定义为位移变化率:v = Δs / Δt,其中 Δs 为位移,Δt 为时间。

Acceleration is the rate of change of velocity: a = (v – u) / t, where u is initial velocity and v is final velocity.

加速度是速度变化率:a = (v – u) / t,其中 u 为初速度,v 为末速度。

The first suvat equation relates final velocity to initial velocity, acceleration, and time: v = u + at.

第一个匀加速运动方程将末速度与初速度、加速度和时间联系起来:v = u + at

Displacement is given by s = ut + ½at², requiring consistent units.

位移由公式 s = ut + ½at² 计算,单位须保持一致。

The independent-of-time equation links velocity and displacement: v² = u² + 2as.

不含时间的方程将速度与位移相关联:v² = u² + 2as


2. Newton’s Laws of Motion | 牛顿运动定律

Newton’s First Law (Law of Inertia): A body remains at rest or in uniform motion unless acted upon by an external resultant force.

牛顿第一定律(惯性定律):除非受到外力作用,物体将保持静止或匀速直线运动状态。

Newton’s Second Law describes the relationship among force, mass, and acceleration: F = m × a. Net force equals mass times acceleration.

牛顿第二定律描述力、质量和加速度的关系:F = m × a。合力等于质量乘以加速度。

Newton’s Third Law: For every action force there is an equal and opposite reaction force acting on different bodies.

牛顿第三定律:每一个作用力都有一个大小相等、方向相反的反作用力,且作用在不同物体上。

In sports, ground reaction force (GRF) is the reaction force exerted by the ground on the athlete; sprinting and jumping involve applying large forces against the ground to generate high acceleration.

在体育运动中,地面反作用力是地面对运动员施加的反作用力;短跑和跳跃需对地面施加较大力量以产生高加速度。


3. Momentum and Impulse | 动量与冲量

Linear momentum is the product of mass and velocity: p = m × v (unit: kg m s⁻¹).

线动量是质量与速度的乘积:p = m × v(单位:千克·米/秒)。

Impulse is the product of force and the time for which it acts: J = F × t (unit: N s).

冲量是力与其作用时间的乘积:J = F × t(单位:牛·秒)。

The impulse-momentum relationship states that impulse equals change in momentum: F × t = m(v – u) or J = Δp.

冲量-动量定理表明冲量等于动量的变化量:F × t = m(v – u)J = Δp

In a closed system, the law of conservation of momentum applies: total momentum before collision equals total momentum after collision, m₁u₁ + m₂u₂ = m₁v₁ + m₂v₂.

在封闭系统中,动量守恒定律成立:碰撞前总动量等于碰撞后总动量,m₁u₁ + m₂u₂ = m₁v₁ + m₂v₂


4. Levers and Moments | 杠杆与力矩

A moment (torque) is the turning effect of a force: Moment = Force × perpendicular distance from the pivot, or τ = F × d⊥.

力矩(扭矩)是力的转动效应:力矩 = 力 × 支点的垂直距离,或 τ = F × d⊥

First-class lever: fulcrum between effort and load (e.g., elbow extension). Mechanical advantage can be >1, <1, or =1.

第一类杠杆:支点在力点和重点之间(如肘关节伸展)。机械利益可大于、小于或等于1。

Second-class lever: load between fulcrum and effort (e.g., plantar flexion during jumping); always mechanical advantage >1, suited to producing large force.

第二类杠杆:重点在支点和力点之间(如跳跃时的跖屈);机械利益始终大于1,适合产生大力。

Third-class lever: effort between fulcrum and load (e.g., bicep curl at the elbow); mechanical advantage <1, allows large range and speed of movement.

第三类杠杆:力点在支点和重点之间(如肱二头肌弯举);机械利益小于1,可增大运动幅度和速度。


5. Projectile Motion | 抛射体运动

The horizontal and vertical components of an initial velocity u launched at angle θ are: u_x = u cosθ and u_y = u sinθ.

以角度 θ 发射的初速度 u 的水平分量和垂直分量分别为:u_x = u cosθu_y = u sinθ

Time of flight for a symmetrical trajectory: t_flight = 2u sinθ / g, where g = 9.8 m s⁻².

对称轨迹的飞行时间:t_flight = 2u sinθ / g,其中 g = 9.8 m/s²。

Maximum height reached: H = (u² sin²θ) / (2g).

最大高度:H = (u² sin²θ) / (2g)

Horizontal range (R) for a projectile launched from ground level: R = (u² sin2θ) / g; optimal angle for maximum range is 45° in a vacuum.

从地平面发射的抛射体的水平射程:R = (u² sin2θ) / g;真空中最大射程的最佳角度为45°。

Factors affecting horizontal displacement in real sport include release height, release angle, speed, air resistance, and Magnus effect.

实际运动中影响水平位移的因素包括出手高度、出手角度、出手速度、空气阻力和马格努斯效应。


6. Fluid Mechanics and Spin | 流体力学与旋转

Bernoulli’s principle: In a horizontal flow of an ideal fluid, an increase in flow velocity leads to a decrease in pressure; P + ½ρv² + ρgh = constant (for incompressible flow).

伯努利原理:在理想流体的水平流动中,流速增加导致压强降低;不可压缩流动满足 P + ½ρv² + ρgh = 常数

The Magnus effect explains the curved path of a spinning ball: a spinning object drags air, creating a pressure difference that causes the ball to deviate towards the low-pressure side.

马格努斯效应解释了旋转球的弯曲轨迹:旋转的物体带动空气,产生压差,导致球向低压侧偏移。

Lift force is an upward force generated by pressure difference across a surface, perpendicular to the oncoming flow; a discus or javelin benefits from lift during flight.

升力是由表面两侧压差产生的、垂直于来流的向上作用力;铁饼或标枪在飞行中利用升力。

Drag force opposes motion and depends on velocity, cross-sectional area, fluid density, and surface characteristics; streamlining reduces pressure drag.

阻力与运动方向相反,其大小取决于速度、横截面积、流体密度和表面特性;流线型可减小压差阻力。


7. Cardiovascular Training Formulas | 心血管训练公式

Estimated maximum heart rate (HRmax) using the traditional formula: HRmax = 220 – age, or the more accurate HRmax = 208 – (0.7 × age).

最大心率估算传统公式:HRmax = 220 – 年龄,或更精确的 HRmax = 208 – (0.7 × 年龄)

The Karvonen formula calculates target heart rate based on heart rate reserve (HRR): Target HR = HRrest + (%intensity × (HRmax – HRrest)).

卡氏公式根据心率储备计算目标心率:目标心率 = 安静心率 + (强度百分比 × (最大心率 – 安静心率))

Training zones are often expressed as percentages of HRmax: aerobic zone ~60-70% HRmax, anaerobic threshold ~80-90% HRmax.

训练区间常以最大心率百分比表示:有氧区间约为 HRmax 的60-70%,无氧阈约为80-90%。

Heart rate recovery (HRR) after exercise is an indicator of cardiovascular fitness; faster decline suggests better aerobic conditioning.

运动后心率恢复是衡量心血管适能的指标;心率下降越快,有氧条件越好。


8. Energy Expenditure and Metabolism | 能量消耗与代谢

A MET (metabolic equivalent) is the ratio of work metabolic rate to resting metabolic rate: 1 MET ≈ 3.5 ml O₂/kg/min.

MET(代谢当量)是工作代谢率与静息代谢率之比:1 MET 约等于 3.5 毫升氧气/千克/分钟。

Energy expenditure (kcal) can be estimated using METs: Energy (kcal) = METs × body mass (kg) × time (hours).

可利用 METs 估算能量消耗(千卡):能量(千卡)= METs × 体重(kg)× 时间(小时)

To convert to kJ, multiply kcal by 4.184: Energy (kJ) = kcal × 4.184.

转换为千焦时,将千卡乘以 4.184:能量(千焦)= 千卡 × 4.184

The respiratory exchange ratio (RER) = VCO₂ / VO₂ indicates substrate utilisation: RER ~1.0 suggests pure carbohydrate oxidation, RER ~0.7 suggests pure fat oxidation.

呼吸交换率 RER = VCO₂ / VO₂ 反映底物利用:RER 约 1.0 表示纯碳水化合物氧化,约 0.7 表示纯脂肪氧化。


9. Training Load and Recovery | 训练负荷与恢复

Session RPE load is a subjective measure of internal load: Session RPE load = sRPE (1–10 scale) × session duration (min).

课次 RPE 负荷是内部负荷的主观测量:课次 RPE 负荷 = sRPE(1–10 量表)× 课时长(分钟)

The acute:chronic workload ratio (ACWR) aids injury risk monitoring: ACWR = acute load (7-day rolling average) / chronic load (28-day rolling average).

急性:慢性工作负荷比值用于监测损伤风险:ACWR = 急性负荷(7日滑动平均) / 慢性负荷(28日滑动平均)

Training monotony represents day-to-day training variability: monotony = mean daily load / standard deviation of daily load.

训练单调性反映日间负荷变异:单调性 = 日均负荷 / 日均负荷标准差

Training strain combines monotony and absolute load: strain = total weekly load × monotony; high strain with low variation increases overtraining risk.

训练应变结合单调性和绝对负荷:应变 = 周总负荷 × 单调性;高应变及低变异增加过度训练风险。


10. Body Composition Assessment | 体成分评估

Body Mass Index (BMI) is a simple weight-for-height measure: BMI = body mass (kg) / height² (m²). It does not distinguish between fat and lean mass.

身体质量指数是一种简单的身高别体重指标:BMI = 体重(kg)/ 身高²(m²)。它不区分脂肪和瘦体重。

Waist-to-hip ratio (WHR) estimates fat distribution: WHR = waist circumference / hip circumference; higher values indicate greater central adiposity.

腰臀比评估脂肪分布:WHR = 腰围 / 臀围;较高值表示中心性肥胖程度更高。

Skinfold measurements estimate body density using equations such as Durnin & Womersley; body density is then converted to body fat percentage using the Siri equation: % Body Fat = (495 / body density) – 450.

皮褶厚度通过 Durnin & Womersley 等方程估算身体密度,然后利用 Siri 方程转换为体脂百分比:体脂 % = (495 / 身体密度) – 450

Bioelectrical impedance analysis (BIA) and other methods also appear in AS specification, though they rely on prediction equations rather than direct formulas.

生物电阻抗分析法等其他方法亦见于 AS 考纲,但这些方法依赖预测方程,而非直接公式。

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