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所在平台: Udemy |
课程主页: https://www.udemy.com/course/mechanical-physics-laws-of-motion/
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本课程《力学物理 - 运动定律》旨在深入剖析经典力学中的核心概念。课程从对“力”的直观理解出发,讲解了惯性的概念和牛顿第一运动定律。 接着,课程详细阐述了动量及其与牛顿第二运动定律的关系,并介绍了冲量。随后,探讨了牛顿第三运动定律,即作用力与反作用力定律,以及动量守恒定律及其在实际中的应用。 课程还涵盖了摩擦力的相关知识,包括静摩擦、动摩擦以及滚动摩擦和润滑的概念。 在圆周运动动力学部分,课程重点讲解了向心力,并通过具体实例(如车辆在水平及倾斜圆弧路面上的运动)来解释其应用。 课程总结强调了几点关键认识: 1. 亚里士多德关于维持匀速运动需要力的观点是错误的,力在实际中用于抵消摩擦力。 2. 伽利略通过斜面实验提出了惯性定律,牛顿第一定律对其进行了精炼表述:外力为零,则加速度为零。 3. 动量 (p) 定义为质量 (m) 与速度 (v) 的乘积,p = mv。 4. 牛顿第二定律指出,动量变化率与作用力成正比且方向一致。该定律是矢量方程,适用于粒子和粒子系统,作用力仅由外部引起,且在某一点某时刻的力决定该点的该时刻的加速度。 5. 冲量是力与时间之积,等于动量变化量,尤其适用于短时大力的情境。 6. 牛顿第三定律表明,作用力与反作用力大小相等、方向相反,同时存在于不同物体之间,无因果关系。 7. 动量守恒定律是牛顿第二、第三定律的推论,即孤立系统的总动量守恒。 8. 摩擦力是阻止相对运动的接触力。 此外,课程还提出了一些值得思考的要点,例如力的方向不一定与运动方向一致,瞬时速度为零不代表力或加速度为零,一个物体所受的力仅与其所在位置的瞬时情况有关,F=ma中的F是净外力,向心力是提供径向加速度的力的统称,静摩擦力是动态调整的,以及对“作用力”和“反作用力”在字面意义上的区分等。课程最后指出,所有力(如摩擦力、重力、浮力等)都可以归结为“A由B施加的力”的概念,并且无论是无生命物体还是有生命物体(如人)都需要外力才能加速。同时,物理学中的“力”的概念不应与主观的“力的感觉”混淆。
Laws of MotionIntuitive concept of forceInertiaNewton's first law of motionmomentum and Newton's second law of motionimpulse; Newton's third law of motionLaw of conservation of linear momentum and its applicationsEquilibrium of concurrent forcesStatic and kinetic frictionlaws of frictionrolling frictionlubricationDynamics of uniform circular motion:Centripetal force, examples of circular motion (vehicle on a level circular road, vehicle on banked road)SUMMARY1. Aristotle's view that a force is necessary to keep a body in uniform motion is wrong. A force is necessary in practice to counter the opposing force of friction. 2. Galileo extrapolated simple observations on motion of bodies on inclined planes, and arrived at the law of inertia. Newton's first law of motion is the same law rephrased thus: "Everybody continues to be in its state of rest or of uniform motion in a straight line, unless compelled by some external force to act otherwise". In simple terms, the First Law is "If external force on a body is zero, its acceleration is zero". 3. Momentum (p ) of a body is the product of its mass (m) and velocity (v): p = m v 4. Newton's second law of motion: The rate of change of momentum of a body is proportional to the applied force and takes place in the direction in which the force acts. (a) The second law is consistent with the First Law (F = 0 implies a = 0) (b) It is a vector equation (c) It is applicable to a particle, and also to a body or a system of particles, provided F is the total external force on the system and a is the acceleration of the system as a whole. (d) F at a point at a certain instant determines a at the same point at that instant. That is the Second Law is a local law; a at an instant does not depend on the history of motion. 5. Impulse is the product of force and time which equals change in momentum. The notion of impulse is useful when a large force acts for a short time to produce a measurable change in momentum. Since the time of action of the force is very short, one can assume that there is no appreciable change in the position of the body during the action of the impulsive force.6. Newton's third law of motion: To every action, there is always an equal and opposite reaction In simple terms, the law can be stated thus: Forces in nature always occur between pairs of bodies. Force on a body A by body B is equal and opposite to the force on the body B by A. Action and reaction forces are simultaneous forces. There is no cause-effect relation between action and reaction. Any of the two mutual forces can be called action and the other reaction. Action and reaction act on different bodies and so they cannot be cancelled out. The internal action and reaction forces between different parts of a body do, however, sum to zero. 7. Law of Conservation of Momentum The total momentum of an isolated system of particles is conserved. The law follows from the second and third law of motion. 8. Friction Frictional force opposes (impending or actual) relative motion between two surfaces in contact. It is the component of the contact force along the common tangent to the surface in contact.POINTS TO PONDER1. Force is not always in the direction of motion. Depending on the situation, F may be along v, opposite to v, normal to v or may make some other angle with v. In every case, it is parallel to acceleration. 2. If v = 0 at an instant, i.e. if a body is momentarily at rest, it does not mean that force or acceleration are necessarily zero at that instant. For example, when a ball thrown upward reaches its maximum height, v = 0 but the force continues to be its weight mg and the acceleration is not zero but g. 3. Force on a body at a given time is determined by the situation at the location of the body at that time. Force is not ‘carried' by the body from its earlier history of motion. The moment after a stone is released out of an accelerated train, there is no horizontal force (or acceleration) on the stone, if the effects of the surrounding air are neglected. The stone then has only the vertical force of gravity.4. In the second law of motion F = m.a, F stands for the net force due to all material agencies external to the body. a is the effect of the force. ma should not be regarded as yet another force, besides F.5. The centripetal force should not be regarded as yet another kind of force. It is simply a name given to the force that provides inward radial acceleration to a body in circular motion. We should always look for some material force like tension, gravitational force, electrical force, friction, etc as the centripetal force in any circular motion. 6. Static friction is a self-adjusting force up to its limit µs N (fs ≤ µs N). Do not put fs = µs N without being sure that the maximum value of static friction is coming into play. 7. The familiar equation mg = R for a body on a table is true only if the body is in equilibrium. The two forces mg and R can be different (e.g. a body in an accelerated lift). The equality of mg and R has no connection with the third law. 8. The terms ‘action' and ‘reaction' in the third Law of Motion simply stand for simultaneous mutual forces between a pair of bodies. Unlike their meaning in ordinary language, action does not precede or cause reaction. Action and reaction act on different bodies. 9. The different terms like ‘friction', ‘normal reaction' ‘tension', ‘air resistance', ‘viscous drag', ‘thrust', ‘buoyancy' ‘weight' ‘centripetal force' all stand for ‘force' in different contexts. For clarity, every force and its equivalent terms encountered in mechanics should be reduced to the phrase ‘force on A by B'. 10. For applying the second law of motion, there is no conceptual distinction between inanimate and animate objects. An animate object such as a human also requires an external force to accelerate. For example, without the external force of friction, we cannot walk on the ground. 11. The objective concept of force in physics should not be confused with the subjective concept of the ‘feeling of force'. On a merry-go-around, all parts of our body are subject to an inward force, but we have a feeling of being pushed outward - the direction of impending motion.