KS3 CIE Engineering Formula & Theorem Quick Reference Handbook | KS3 CIE 工程公式定理速查手册

📚 KS3 CIE Engineering Formula & Theorem Quick Reference Handbook | KS3 CIE 工程公式定理速查手册

This handbook provides a concise summary of essential formulas and theorems for KS3 CIE Engineering, covering mechanics, electricity, materials, and simple machines. Use it for quick revision and practical problem-solving in design and technology as well as physics-based engineering contexts.

本手册简要总结了 KS3 CIE 工程课程的核心公式与定理,涵盖力学、电学、材料和简单机械,供快速复习与实际问题解决使用,适用于设计技术及物理工程相关场景。

1. Basic Mechanics: Speed, Acceleration and Forces | 基础力学:速度、加速度与力

Speed (or velocity when direction is constant) is the distance travelled per unit time: v = s / t, where s is distance (m) and t is time (s).

速度(方向不变时可视为速率)是单位时间内移动的距离:v = s / t,其中 s 为距离(米),t 为时间(秒)。

Acceleration is the rate of change of velocity: a = (v – u) / t, where u is initial velocity, v is final velocity, and t is the time taken for the change. The unit is m/s².

加速度是速度的变化率:a = (v – u) / t,u 为初速度,v 为末速度,t 为变化所用时间,单位为 m/s²。

Newton’s Second Law relates net force, mass and acceleration: F = m a. Force is measured in newtons (N), mass in kilograms (kg), acceleration in m/s².

牛顿第二定律联系合力、质量与加速度:F = m a。力以牛顿(N)为单位,质量以千克(kg)为单位,加速度以 m/s² 为单位。

Weight is the gravitational force on an object: W = m g. On Earth, g is approximately 9.8 m/s², often rounded to 10 m/s² for KS3 calculations.

重力为物体所受地球引力:W = m g。在地球上,g 约为 9.8 m/s²,KS3 计算中常取 10 m/s²。


2. Pressure | 压强

Pressure is the force applied perpendicularly per unit area: P = F / A. The unit is pascal (Pa), where 1 Pa = 1 N/m².

压强是垂直作用在单位面积上的力:P = F / A。单位为帕斯卡(Pa),1 Pa = 1 N/m²。

Liquid pressure increases with depth: P = ρ g h, where ρ is liquid density (kg/m³), g is gravitational field strength, h is depth (m). This formula is used in designing dams and hydraulic systems.

液体压强随深度增加:P = ρ g h,ρ 为液体密度(kg/m³),g 为重力场强度,h 为深度(米)。该公式用于水坝及液压系统设计。

Atmospheric pressure at sea level is approximately 101,325 Pa. In weather systems and suction devices, pressure differences drive flow.

海平面大气压约为 101,325 Pa。在天气系统和抽吸装置中,压差驱动流动。


3. Work, Energy and Power | 功、能与功率

Work is done when a force moves an object in its direction: W = F × d. Work is measured in joules (J), where 1 J = 1 N m.

当力使物体沿其方向移动时做功:W = F × d。功的单位是焦耳(J),1 J = 1 N m。

Gravitational potential energy gained by lifting an object: Eₐ = m g h. This energy can be transformed into kinetic energy as the object falls.

举起物体获得的重力势能:Eₐ = m g h。物体下落时此能量可转化为动能。

Kinetic energy of a moving object: E˰ = ½ m v². The faster an object moves, the greater its kinetic energy.

运动物体的动能:E˰ = ½ m v²。速度越大,动能越大。

Power is the rate of doing work or transferring energy: P = W / t. Power is measured in watts (W); 1 W = 1 J/s. Engineering machines are rated by their power output.

功率是做功或能量转移的速率:P = W / t。功率单位为瓦特(W);1 W = 1 J/s。工程机械按输出功率进行标定。

Efficiency is the ratio of useful output to total input: η = (useful work output / total energy input) × 100%. No machine can be 100% efficient due to friction and other losses.

效率是有用输出与总输入的比值:η =(有用功输出 / 总能量输入)× 100%。由于摩擦等损耗,任何机械都无法达到 100% 效率。


4. Levers and Moments | 杠杆与力矩

The moment of a force about a pivot is force × perpendicular distance from the pivot. Units: N m.

力对支点的力矩 = 力 × 力到支点的垂直距离,单位为牛·米(N m)。

For a lever in equilibrium, the sum of clockwise moments equals the sum of anticlockwise moments: F₁ d₁ = F₂ d₂.

杠杆平衡时,顺时针力矩之和等于逆时针力矩之和:F₁ d₁ = F₂ d₂。

Mechanical advantage (MA) of a lever = load / effort. In an ideal (frictionless) lever, MA = effort arm / load arm = d₁ / d₂.

杠杆的机械效益(MA)= 负载 / 作用力。理想(无摩擦)杠杆中,MA = 作用力臂 / 负载臂 = d₁ / d₂。

When the effort arm is longer than the load arm, the lever acts as a force multiplier. Conversely, it can act as a distance multiplier.

作用力臂大于负载臂时,杠杆为省力杠杆;反之则为省距离杠杆(速度杠杆)。


5. Pulleys and Wheel & Axle | 滑轮与轮轴

In a simple pulley system, mechanical advantage equals the number of rope segments that support the load. For example, a system with two supporting ropes gives MA = 2 (ignoring friction).

在简单滑轮组中,机械效益等于支撑负载的绳索段数。例如两段绳索支撑负载时 MA = 2(忽略摩擦)。

The wheel and axle is a rotating machine: MA = radius of wheel / radius of axle. A larger wheel provides a greater mechanical advantage but requires more input rope or chain travel.

轮轴是一种旋转机械:MA = 轮半径 / 轴半径。轮半径越大,机械效益越高,但需要更长的绳索或链条行程。

In both systems, velocity ratio (VR) is the ratio of distance moved by effort to distance moved by load. For ideal machines, MA = VR.

这两种系统的速比(VR)均为作用力移动距离与负载移动距离之比。理想机械中 MA = VR。


6. Gears and Transmission | 齿轮与传动

For two meshing gears, angular velocity is inversely proportional to the number of teeth: ω˰ / ωᵥ = Nᵥ / N˰. Here ω is angular speed, N is teeth number. (A = driver, B = driven)

对两个啮合齿轮,角速度与齿数成反比:ω˰ / ωᵥ = Nᵥ / N˰,其中 ω 为角速度,N 为齿数(A 为主动轮,B 为从动轮)。

Gear ratio is defined as teeth on driven / teeth on driver. A gear ratio greater than 1 means speed reduction and torque increase.

齿轮比定义为从动轮齿数 / 主动轮齿数。齿轮比大于 1 时减速增扭,小于 1 时增速减扭。

Torque ratio is the inverse of speed ratio: τᵥ / τ˰ = Nᵥ / N˰. Torque multiplication is essential in gearboxes of vehicles and lifts.

扭矩比是速比的反比:τᵥ / τ˰ = Nᵥ / N˰。扭矩放大在车辆变速箱和升降机中必不可少。

Compound gear trains multiply individual gear ratios to achieve large speed reductions or increases in complex engineering systems.

复合齿轮系通过各级齿轮比的乘积实现大型变速,应用于复杂工程系统中。


7. Electricity: Ohm’s Law and Resistance | 电学:欧姆定律与电阻

Ohm’s Law links voltage, current and resistance: V = I R. V is voltage (volts, V), I is current (amperes, A), R is resistance (ohms, Ω). It applies to ohmic conductors at constant temperature.

欧姆定律联系电压、电流与电阻:V = I R。V 为电压(伏特),I 为电流(安培),R 为电阻(欧姆)。适用于恒温下的欧姆导体。

Resistors in series: R₎ᵞᵐ₿ = R₁ + R₂ + R₃ + … The current is the same through each, but voltage divides.

串联电阻:R₎ᵞ&#7504

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