TF阅读真题第809篇Animal Locomotion

TF阅读真题第809篇Animal Locomotion-托您的福
TF阅读真题第809篇Animal Locomotion
TF阅读真题第809篇Animal Locomotion
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Animal Locomotion

Animal locomotion occurs in only a limited number of forms, including swimming, flying, walking, running, crawling, sliding, or jumping. In all cases, animals experience certain constraints to locomotion. For example, animals must overcome frictional forces (drag) generated by the air, water, or surface of the Earth. In addition, all forms of locomotion require energy to provide thrust, defined as the forward motion of an animal in any environment, and/or lift, which is movement against gravity.

In water, the greatest challenge to locomotion is the density of the water, which is much greater than that of air. The resistance to movement posed by the density of water increases exponentially as the speed of locomotion increases, which is one reason why many fish swim at relatively slow speeds. Overcoming this resistance requires considerable muscular effort. Most swimming animals, including fish, amphibians, reptiles, and marine animals have evolved streamlined bodies that reduce drag and make swimming more efficient. An energetic advantage to swimming is that fish and other swimmers do not need to provide lift to overcome gravity. Because the density of the water is similar to that of an animal’s body, water provides buoyancy, which helps support the animal’s weight.

The mechanism of swimming is similar among many different vertebrates. Most fish, for example, contract posterior skeletal muscles to move the tail end of the animal back and forth. This pushes water backward and propels the fish forward. Other fins provide additional thrust and enable changes in direction. Likewise, amphibians and marine reptiles rely predominantly on their hind legs for propulsion through the water. Confining most of the swimming muscles to the rear of an animal’s body has other advantages. With the rear end devoted to movement, the front end is free to explore the environment, fight off aggressors, or find food.

Due to streamlining, the relatively slow speed of most swimmers, and the buoyancy of water, swimming is the cheapest form of locomotion in terms of energy spent. In contrast, locomotion on land is, on average, the energetically costliest means of locomotion. Flying may seem costlier, but it is not. Many migratory birds can travel hundreds of miles daily for many days. No terrestrial animal could possibly match such a feat by walking or running.

Whereas gravity is not an important factor for locomotion in swimming animals, terrestrial animals must overcome gravity each time they take a step. Of even greater importance to walking or running animals, though, is the necessity of accelerating and decelerating the limbs with every step. In essence, each step is like starting a movement from scratch, without the luxury of occasionally gliding through water or air as fish and birds do. This challenge is even greater when an animal moves uphill or over rough terrain. Apart from mollusks, which move along the surface of the Earth on a layer of secreted mucus, and snakes, which undulate along the ground on a portion of their ventral body surface, most terrestrial animals limit the amount of contact with the ground while moving, thereby minimizing the amount of friction they encounter.

Flying is a highly successful means of locomotion, having evolved on four occasions: in pterosaurs (extinct reptiles), insects, birds, and mammals (bats). The advantages to flying are numerous. Animals can escape land-based predators, scan their surroundings over great distances, and inhabit environments such as high cliffs that may be inaccessible to non-flying animals. The mechanisms of flying, however, require animals to overcome gravity and air resistance, which makes flying energetically costlier than swimming but still cheaper than running on land. As with swimming, resistance to flight is decreased by streamlined bodies. However, earthbound animals have one advantage over their flying cousins—they can grow to much larger sizes than animals that fly. In flying vertebrates, lift and thrust are provided by pectoral and back muscles that move the wings. The pectoral muscles are so powerful and massive that they constitute as much as 15–20 percent of a bird’s total body mass and up to 30 percent in humming birds, which use their wings not only to fly but also to hover. The requirement for larger, strong pectoral muscles is one reason why the remaining body mass of flying vertebrates is limited

 

 

P1:Animal locomotion occurs in only a limited number of forms, including swimming, flying, walking, running, crawling, sliding, or jumping. In all cases, animals experience certain constraints to locomotion. For example, animals must overcome frictional forces (drag) generated by the air, water, or surface of the Earth. In addition, all forms of locomotion require energy to provide thrust, defined as the forward motion of an animal in any environment, and/or lift, which is movement against gravity.

 

 

1.The phrase “constraints to” in the passage is closest in meaning to

 

A.restrictions on

 

B.requirements of

 

C.consequences of

 

D.adjustments to

 

2.According to paragraph 1, what is one necessary element for locomotion to occur?

 

A.An environment that encourages lift

 

B.Enough energy to power forward motion

 

C.Frictional forces generated by the air, water, or ground

 

D.Sufficient gravity

 

P2: In water, the greatest challenge to locomotion is the density of the water, which is much greater than that of air. The resistance to movement posed by the density of water increases exponentially as the speed of locomotion increases, which is one reason why many fish swim at relatively slow speeds. Overcoming this resistance requires considerable muscular effort. Most swimming animals, including fish, amphibians, reptiles, and marine animals have evolved streamlined bodies that reduce drag and make swimming more efficient. An energetic advantage to swimming is that fish and other swimmers do not need to provide lift to overcome gravity. Because the density of the water is similar to that of an animal’s body, water provides buoyancy, which helps support the animal’s weight.

 

3.According to paragraph 2, the greater density of water has which of the following implications for movement in water?

 

A.Lift that is needed to start movement in water is more easily generated.

 

B.Fish, amphibians, reptiles, and marine animals are able to move efficiently in water by producing significant muscular effort.

 

C.The ability to overcome gravity becomes more important than the ability to reduce drag.

 

D.Movement in water becomes more difficult as speed increases.

 

P3: The mechanism of swimming is similar among many different vertebrates. Most fish, for example, contract posterior skeletal muscles to move the tail end of the animal back and forth. This pushes water backward and propels the fish forward. Other fins provide additional thrust and enable changes in direction. Likewise, amphibians and marine reptiles rely predominantly on their hind legs for propulsion through the water. Confining most of the swimming muscles to the rear of an animal’s body has other advantages. With the rear end devoted to movement, the front end is free to explore the environment, fight off aggressors, or find food.

 

 

4.According to paragraph 3, which of the following is true of swimming in most vertebrates?

 

A.Direction is controlled by moving the tail up and down or back and forth.

 

B.Speed is maximized by coordinating muscles in the back and front of the body.

 

C.Forward movement is provided by muscles in the rear of the body.

 

D.Skeletal muscles are used to push fins or legs forward.

 

P4: Due to streamlining, the relatively slow speed of most swimmers, and the buoyancy of water, swimming is the cheapest form of locomotion in terms of energy spent. In contrast, locomotion on land is, on average, the energetically costliest means of locomotion. Flying may seem costlier, but it is not. Many migratory birds can travel hundreds of miles daily for many days. No terrestrial animal could possibly match such a feat by walking or running.

 

5.Why does the author provide the information that “Many migratory birds can travel hundreds of miles daily for many days”?

 

A.To explain why birds usually migrate farther than terrestrial animals do

 

B.To support the claim that flying uses less energy than walking or running

 

C.To emphasize the ability of birds to travel long distances

 

D.To provide evidence that flying is more efficient than swimming

 

 

6.The word “feat” in the passage is closest in meaning to

 

A.cost

 

B.accomplishment

 

C.distance

 

D.journey

 

P5: Whereas gravity is not an important factor for locomotion in swimming animals, terrestrial animals must overcome gravity each time they take a step. Of even greater importance to walking or running animals, though, is the necessity of accelerating and decelerating the limbs with every step. In essence, each step is like starting a movement from scratch, without the luxury of occasionally gliding through water or air as fish and birds do. This challenge is even greater when an animal moves uphill or over rough terrain. Apart from mollusks, which move along the surface of the Earth on a layer of secreted mucus, and snakes, which undulate along the ground on a portion of their ventral body surface, most terrestrial animals limit the amount of contact with the ground while moving, thereby minimizing the amount of friction they encounter.

 

 

7.Which of the following statements about movement on land can be inferred from paragraph 5 ?

 

A.Movement on land is more affected by gravity than movement in water is.

 

B.Movement on land is easier when running than when walking.

 

C.Movement on land requires less frequent acceleration than movement in water does.

 

D.Movement on land is easier to start than to continue.

 

P6: Flying is a highly successful means of locomotion, having evolved on four occasions: in pterosaurs (extinct reptiles), insects, birds, and mammals (bats). The advantages to flying are numerous. Animals can escape land-based predators, scan their surroundings over great distances, and inhabit environments such as high cliffs that may be inaccessible to non-flying animals. The mechanisms of flying, however, require animals to overcome gravity and air resistance, which makes flying energetically costlier than swimming but still cheaper than running on land. As with swimming, resistance to flight is decreased by streamlined bodies. However, earthbound animals have one advantage over their flying cousins—they can grow to much larger sizes than animals that fly. In flying vertebrates, lift and thrust are provided by pectoral and back muscles that move the wings. The pectoral muscles are so powerful and massive that they constitute as much as 15–20 percent of a bird’s total body mass and up to 30 percent in humming birds, which use their wings not only to fly but also to hover. The requirement for larger, strong pectoral muscles is one reason why the remaining body mass of flying vertebrates is limited

 

8.According to paragraph 6, all of the following are true about pectoral muscles in flying vertebrates EXCEPT:

 

A.They enable flying vertebrates to rise and move forward.

 

B.They help flying vertebrates maintain a streamlined body.

 

C.They make up a significant proportion of a flying vertebrate’s body mass.

 

D.They prevent flying vertebrates from growing into large sizes.

 

P2: In water, the greatest challenge to locomotion is the density of the water, which is much greater than that of air. The resistance to movement posed by the density of water increases exponentially as the speed of locomotion increases, which is one reason why many fish swim at relatively slow speeds.■ Overcoming this resistance requires considerable muscular effort. ■Most swimming animals, including fish, amphibians, reptiles, and marine animals have evolved streamlined bodies that reduce drag and make swimming more efficient.■ An energetic advantage to swimming is that fish and other swimmers do not need to provide lift to overcome gravity.■ Because the density of the water is similar to that of an animal’s body, water provides buoyancy, which helps support the animal’s weight.

 

9.Look at the four squares [■] that indicate where the following sentence could be added to the passage.

Other animals have developed features, such as the webbed feet of ducks, that assist their muscles in generating greater thrust through the water.

Where would the sentence best fit? Click on a square [■] to add the sentence to the passage.

 

 

10.

A.The amount of energy an animal spends on motion depends on a number of factors, including whether or not it migrates and how far it travels per day.

B.Because of the relative lack of friction, swimming is in many ways the ideal form of locomotion and has evolved on four separate occasions.

C.Because they cannot glide, terrestrial animals spend the most energy on locomotion, but they minimize friction by limiting their contact with the ground.

D.Whether they run, swim, or fly, most animals allocate a certain area of their body to motion and leave the rest free for other purposes, such as defense.

E.Thanks to their streamlining and the buoyancy of water, fish expend relatively little energy on locomotion, as long as they swim fairly slowly.

F.Flying provides numerous advantages but also requires that the animal remain fairly small and have relatively massive back and pectoral muscles.

 

 

 

答案:

 

 

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