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Cartes-fiches
The insertion point of the muscle which connects the two segments does not change. However, the line of action of the muscle line changes as the two segments move relative to one another.
If the sign of the inter-segment force is positive then it means that it is acting to push the segments together.
The joint force is generally much larger than the inter-segment force because it includes muscle forces.
The inter-segment force is the resultant of all the forces crossing the jointbetween two segments.The joint force is the force acting between two segments at the joint.The muscle force is the force produced by the muscles crossing the joint.The bone-on-bone force is the force acting between the bones that form a joint.The ligament force is the force carried by ligaments, joint capsules and muscles that are not contracting.
The net external joint moment is equal and opposite to the net internal jointmoment.
If the mass was doubled then the quadriceps moment would need to bedoubled to maintain static equilibrium.
The interacting filaments in the sarcomeres are called the actin and myosinfilaments or the thin and thick myofilaments.
The maximum active muscle tension is produced when the muscle lengthis approximately equal to the resting length of the muscle.
In a concentric contraction the muscle is shortening and in an eccentriccontraction the muscle is lengthening.
For a certain level of activation, a muscle will produce a greater forceduring an eccentric contraction than during a concentric contraction.
Thus, as the pennation angle increases the physiological cross-sectional area decreases according to the cosine function.
Electromyography is the study of the electrical signal associated with thecontractions of muscles.
There is a relationship between EMG and muscle force. However, it is onlypossible to characterise this relationship under controlled conditions.
The distribution problem is the problem of how the total muscle force isdistributed between all the muscles crossing a joint.
The three segments of the lower limb are the thigh, leg and foot.
The three major joints of the lower limb are the hip, knee and ankle.
The two main functions of the joints of the lower limb are movement andweight bearing.
The hip joint is a ball-and-socket type synovial joint.
Synovial fluid lubricates the joint and provides nutrients to the articularcartilage.
The hip joint is intrinsically stable due to its shape, its strong joint capsuleand the surrounding ligaments and muscles.
The greatest range of hip joint motion occurs in the sagittal plane.
Typically around 110° of flexion-extension, 20° of abduction-adduction and15° of rotation is required to stand up and sit down.
The abductor muscle force is 1880 N and the subject's total body weight is 800 N thus the magnitude of the abductor muscle force is equal to 2.4 times the subject's total body weight.
Muscle activity generally increases the magnitude of the joint forces bypulling the two sides of the joint together. During unilateral stance thecontraction of the hip joint abductors acts in this way, causing a largeincrease in the joint force as compared to bilateral stance when there isusually no muscle activity.
The magnitude of the hip joint force is equal to 0.4 total body weightduring bilateral stance, and 3.2 total body weight during unilateral stance.
The two articulations which comprise the knee joint are the tibiofemoraland the patellofemoral.
The patella is a sesamoid bone.
The stability of the knee joint is derived from its ligaments, in particular thecruciate and collateral.
The knee joint's centre of rotation in the sagittal plane follows a semicircular path as it flexed and extended.
The majority of knee joint motion occurs in the sagittal plane.
The range of motion in the transverse plane is almost zero at fullextension, increases with flexion to a maximum at around 90° of flexionand reduces with further flexion.
If the height of the chair is lowered then the range of knee joint motionrequired in the sagittal plane will be increased since the knee will start at aposition of greater flexion.
The lever system shown in Figure 22 it has its fulcrum located betweenthe effort force and resistance force, it is therefore a first class lever.
The lever arm for the quadriceps femoris muscle is less than that for theresistance force, it is therefore acting at a mechanical disadvantage.
The two main functions of the menisci are to distribute the force moreevenly and to absorb large force peaks.
When the menisci are removed the stress in the joint tissues is increasedby approximately three times.
During walking, the peak joint forces at the hip range from 3 to 7 body weight and at the knee from 3 to 5 body weight. The peak joint force is generally lower at the knee than at the hip, as the knee must also support the mass of the thigh this phenomenon must be due to higher muscle forces at the hip.
The bones that form the ankle joint are the tibia, fibula and talus.
The are three articulations in the ankle joint.
The three main ligaments that stabilise the ankle joint are the anteriorinferior talofibular, the medial and lateral ligaments.