Timekeeper 2: Invention Of Marine Chronometer - IELTS Reading Answers & Explanations
From IELTS Past Papers Academic Reading Test 03 · Part 1 · Questions 1–13
Reading Passage
Read the text below and answer questions 1-13.
Timekeeper 2: Invention of Marine Chronometer
A. It was, as Dava Sobel has described a phenomenon: 'the greatest scientific problem of the age'. The reality was that in the 18th century no one had ever made a clock that could suffer the great rolling and pitching of a ship and the large changes in temperature whilst still keeping time accurately enough to be of any use. Indeed, most of the scientific community thought such clock impossibility. Knowing one's position on the earth requires two very simple but essential coordinates; rather like using a street map where one thinks in terms of how far one is up/down and how far side to side.
B. The longitude is a measure of how far around the world one has come from home and has no naturally occurring base line like the equator. The crew of a given ship was naturally only concerned with how far round they were from their own particular home base. Even when in the middle of the ocean, with no land in sight, knowing this longitude position is very simple in theory. The key to knowing how far around the world you are from home is to know, at that very moment, what time it is back home. A comparison with your local time (easily found by checking the position of the Sim) will then tell you the time difference between you and home, and thus how far round the Earth you are from home.
C. Up until the middle of the 18th century, navigators had been unable to determine their position at sea with accuracy and they faced the huge attendant risks of shipwreck or running out of supplies before reaching then destination. The angular position of Moon and other bright stars was recorded in three-hour intervals of Greenwich Time. In order to determine longitude, sailors had to measure the angle between Moon centre and a given star - lunar distance - together with height of both planets using the naval sextant. The sailors also had to calculate the Moon's position if seen form the centre of Earth. Time corresponding to Greenwich Time was determined using the nautical almanac. Then the difference between the obtained time and local time served for calculation in longitude from Greenwich. The great flaw in this 'simple' theory was - how does the sailor know time back home when he is in the middle of an ocean?
D. The obvious and again simple answer is that he takes an accurate clock with him, which he sets to home time before leaving. All he has to do is keep it wound up and running, and he must never reset the hands throughout the voyage This clock then provides 'home time', so if, for example, it is midday on board your ship and your 'home time' clock says that at that same moment it is midnight at home, you know immediately there is a twelve hour time-difference and you must be exactly round the other side of the world, 180 degrees of longitude from home.
E. After 1714 when the British government offered the huge sum of £20,000 for a solution to the problem, with the prize to be administered by die splendidly titled Board of Longitude. The Government prize of £20,000 was the highest of three sums on offer for varying degrees of accuracy, the full prize only payable for a method that could find the longitude at sea within half a degree. If the solution was to be by timekeeper (and there were other methods since the prize was offered for any solution to the problem), then the timekeeping required to achieve this goal would have to be within 2.8 seconds a day, a performance considered impossible for any clock at sea and unthinkable for a watch, even under the very best conditions.
F. It was this prize, worth about £2 million today, which inspired the self-taught Yorkshfre carpenter, John Harrison, to attempt a design for a practical marine clock. During the latter part of his early career, he worked with his younger brother James. Their first major project was a revolutionary turret clock for the stables at Brocklesby Park, seat of the Pelham family. The clock was revolutionary because it required no lubrication. 18th century clock oils were uniformly poor and one of the major causes of failure in clocks of the period. Rather than concentrating on improvements to the oil, Harrison designed a clock which didn't need it. In 1730 Harrison created a description and drawings for a proposed marine clock to compete for the Longitude Prize and went to London seeking financial assistance. He presented his ideas to Edmond Halley, the Astronomer Royal. Halley referred him to George Graham, the country's foremost clockmaker. He must have been impressed by Harrison, for Graham personally loaned Harrison money to build a model of his marine clock. It took Harrison five years to build Harrison Number One or HI. He demonstrated it to members of the Royal Society who spoke on his behalf to the Board of Longitude. The clock was the first proposal that the Board considered to be worthy of a sea trial. In 1736,
G. After several attempts to design a betterment of HI, Harrison believed that the ' solution to the longitude problem lay in an entirely different design. H4 is completely different from the other three timekeepers. It looks like a very large pocket watch. Harrison's son William set sail for the West Indies, with H4, aboard the ship Deptford on 18 November 1761. It was a remarkable achievement but it would be some time before the Board of Longitude was sufficiently satisfied to award Harrison the prize.
H. John Hadley, an English mathematician, developed sextant, who was a competitor of Harrison at that time for the luring prize. A sextant is an instrument used for measuring angles, for example between the sun and the horizon, so that the position of a ship or aeroplane can be calculated. Making this measurement is known as sighting the object, shooting the object, or taking a sight and it is an essential part of celestial navigation. The angle, and the time when it was measured, can be used to calculate a position line on a nautical or aeronautical chart. A sextant can also be used to measure the Lunar distance between the moon and another celestial object (e.g., star, planet) in order to determine Greenwich time which is important because it can then be used to determine the longitude.
I. The majority within this next generation of chronometer pioneers were English, but the story is by no means wholly that of English achievement. One French name, Pierre Le Roy of Paris, stands out as a major presence in the early history of the chronometer. Another great name in the story is that of the Lancastrian, Thomas Eamshaw, a slightly younger contemporary of John Arnold's. It was Eamshaw who created the final form of chronometer escapement, the spring detent escapement, and finalized the format and the production system for the marine chronometer, making it truly an article of commerce, and a practical means of safer navigation at sea over the next century and half.
Questions
Questions 1–5 Matching Information
Which paragraph contains the following information?
NB: you may use any letter more than once
Questions 6–8 Yes / No / Not Given
Do the following statements agree with the information given in Reading Passage 1?
Questions 9–13 Summary Completion
Complete the following summary of the paragraphs of Reading Passage, using no more than two words and/or a number from the Reading Passage for each answer.
Hundred years ago, sailors tried to identify their time by checking the sun or stars, but the trouble was that they did need a reliable clock which showed time of 9. And the timekeeper required would be to precisely tell a tangible time lapse confined to 10.
An extraordinary craftsman, Harrison, once created a novel clock which did not rely on 11 to work properly. Later on, competitive mode of 12 was another prominent device designed by Hadley, which calculated angle between sun and the earth. Base on Harrison's effort, Earns haw eventually implement key components for 13, which had been used ever since.
Answers & Explanations Summary
| # | Answer | Evidence | Explanation |
|---|---|---|---|
| Q1 | F | It was this prize, worth about £2 million today, which inspired the self-taught Yorkshfre carpenter, John Harrison, to attempt a design for a practical marine clock | Excerpt/Passage Explanation: The passage explains that the large money prize encouraged John Harrison, a skilled woodworker, to try to build a special clock for ships. Answer Explanation: The answer is paragraph F. Reason For Correctness: The correct answer is F because this paragraph introduces John Harrison, a self-taught tradesman (carpenter), who was motivated by the huge government prize (award) to design a marine clock. Keywords like 'prize' relate directly to 'awards', and introducing the 'carpenter' (John Harrison) fits the description. |
| Q2 | B | The longitude is a measure of how far around the world one has come from home and has no naturally occurring base line like the equator | Excerpt/Passage Explanation: The passage provides the exact definition of longitude, explaining that it measures distance around the world from a home base. Answer Explanation: The answer B means that Paragraph B contains the information asked for in the question. Reason For Correctness: The correct answer is B because Paragraph B clearly explains the meaning of "longitude," which is a crucial geographical word used for finding positions on Earth. It states that longitude measures how far around the world a person has traveled from home. |
| Q3 | H | John Hadley, an English mathematician, developed sextant, who was a competitor of Harrison at that time for the luring prize | Excerpt/Passage Explanation: The passage explains that an English mathematician named John Hadley created a device called the sextant and was competing with Harrison for the prize. Answer Explanation: The answer choice H means that paragraph H contains the information about a rival who created another invention to compete against John Harrison. Reason For Correctness: The correct answer is H because paragraph H mentions John Hadley, who developed the sextant and was a 'competitor' (rival) competing against Harrison for the valuable prize money. |
| Q4 | C | Up until the middle of the 18th century, navigators had been unable to determine their position at sea with accuracy and they faced the huge attendant risks of shipwreck or running out of supplies before reaching then destination | Excerpt/Passage Explanation: The passage explains that before the 1750s, sailors could not accurately figure out where they were in the ocean, which caused dangerous problems such as crashing their ships or running out of food before getting to their destination. Answer Explanation: The answer choice C means that Paragraph C contains information about the difficulties sailors faced when trying to find their location on the ocean. Reason For Correctness: The correct answer is C because Paragraph C explains that sailors could not find their location accurately before the mid-18th century, leading to dangerous problems like shipwrecks or running out of food and supplies. Keywords like 'navigators' (sailors), 'determine their position at sea' (identifying the position on the sea), and 'huge attendant risks' highlight the struggles and problems they encountered. |
| Q5 | F | Halley referred him to George Graham, the country's foremost clockmaker. He must have been impressed by Harrison, for Graham personally loaned Harrison money to build a model of his marine clock | Excerpt/Passage Explanation: The passage explains that Harrison was introduced to George Graham, a famous clockmaker. Graham was impressed by Harrison and lent him money so he could build his marine clock. Answer Explanation: The answer is paragraph F. Reason For Correctness: The correct answer is F because this paragraph describes how Harrison received financial help from another clockmaker. Specifically, George Graham, a top clockmaker of the time (a counterpart), personally gave Harrison a loan of money (economic assist) to help him build his clock model. |
| Q6 | YES | Even when in the middle of the ocean, with no land in sight, knowing this longitude position is very simple in theory | Excerpt/Passage Explanation: The passage states that even when sailors are far out in the middle of the ocean with no land around, figuring out their location is theoretically very easy. Answer Explanation: The answer YES means that the given statement matches and agrees with the information in the text. Reason For Correctness: The correct answer is YES because the passage explicitly mentions that finding one's longitude position while in the middle of the sea is 'very simple in theory'. This directly agrees with the statement that sailors can calculate their position without great effort ('no great effort') theoretically. |
| Q7 | NO | If the solution was to be by timekeeper (and there were other methods since the prize was offered for any solution to the problem), then the timekeeping required to achieve this goal would have to be within 2.8 seconds a day, a performance considered impossible for any clock at sea and unthinkable for a watch, even under the very best conditions | Excerpt/Passage Explanation: The passage confirms that using a timekeeper was another way to find longitude and explicitly notes that "there were other methods," proving that measuring the distance from the moon to a star was not required. Answer Explanation: The answer NO means the statement contradicts or disagrees with the information provided in the text. Reason For Correctness: The correct answer is NO because measuring the distance between the moon and a star is not a mandatory requirement ("a must") to find longitude. The passage explains that there were multiple ways to find longitude, such as using an accurate clock (a timekeeper). Because other methods existed, measuring lunar distance was not the only way. |
| Q8 | NOT GIVEN | The longitude is a measure of how far around the world one has come from home and has no naturally occurring base line like the equator. The crew of a given ship was naturally only concerned with how far round they were from their own particular home base. Even when in the middle of the ocean, with no land in sight, knowing this longitude position is very simple in theory | Excerpt/Passage Explanation: The passage explains what longitude means and how simple it is in theory to find how far around the world a ship has traveled relative to home. However, it does not mention calculating the exact distance between the start and end points of a voyage. Answer Explanation: The answer "NOT GIVEN" means that the text does not state whether calculating the longitude degrees during a ship journey can give you the distance between the starting point and the end point. Reason For Correctness: The correct answer is NOT GIVEN because while the text explains that longitude measures how far around the Earth a ship is from home (in degrees or time difference), it never mentions whether or not you can calculate the actual distance between the start and end points of a journey using longitude degrees. Since this information is missing from the passage, the statement cannot be confirmed as true or false. |
| Q9 | Home | The obvious and again simple answer is that he takes an accurate clock with him, which he sets to home time before leaving | Excerpt/Passage Explanation: The passage explains that to solve the problem, a sailor needs to bring a reliable clock that is set to the time at home before starting the voyage. Answer Explanation: The answer means the starting place or main place where the sailors came from before starting their journey. Reason For Correctness: The correct answer is supported by the text, which explains that sailors could easily find local time by looking at the sun or stars, but they needed an accurate clock to know what time it was back where they started (home). Knowing the time at home allowed them to calculate their exact position at sea. |
| Q10 | 2.8s / 2.8 seconds | then the timekeeping required to achieve this goal would have to be within 2.8 seconds a day, a performance considered impossible for any clock at sea and unthinkable for a watch, even under the very best conditions | Excerpt/Passage Explanation: The passage explains that to succeed, the clock had to be so accurate that its time difference was limited to no more than 2.8 seconds in a day. Answer Explanation: The answer is 2.8 seconds, which is the very small limit of time error allowed each day. Reason For Correctness: The correct answer is 2.8 seconds because paragraph E mentions that for a timekeeper to win the prize and accurately measure longitude, its accuracy needed to be within a specific limit of "2.8 seconds a day". |
| Q11 | Oil / lubrication | The clock was revolutionary because it required no lubrication | Excerpt/Passage Explanation: The passage states that Harrison's new clock was special because it did not need any oil or lubrication to operate. Answer Explanation: The answer refers to oil or lubrication, which is a smooth substance put on machine parts to help them move easily without sticking. Reason For Correctness: The correct answer is oil or lubrication because paragraph F mentions that John Harrison created a special clock that was revolutionary specifically because it did not need lubrication (oil) to work properly. |
| Q12 | Sextant | John Hadley, an English mathematician, developed sextant, who was a competitor of Harrison at that time for the luring prize | Excerpt/Passage Explanation: The passage explains that John Hadley created the sextant and was Harrison's competitor for the prize. Answer Explanation: The answer refers to the sextant, a device created by John Hadley to measure angles for navigation. Reason For Correctness: The correct answer is Sextant because Paragraph H directly states that John Hadley developed a sextant, which competed with Harrison's clock for the prize money. |
| Q13 | Marine chronometer | It was Eamshaw who created the final form of chronometer escapement, the spring detent escapement, and finalized the format and the production system for the marine chronometer, making it truly an article of commerce, and a practical means of safer navigation at sea over the next century and half | Excerpt/Passage Explanation: The passage explains that Earnshaw built the key mechanisms for the marine chronometer, which allowed it to be made for commerce and used to navigate ships safely for the next century and a half. Answer Explanation: The answer means a special clock designed to keep accurate time on a ship at sea. Reason For Correctness: The correct answer is found in Paragraph I, which explains that Thomas Earnshaw (written as 'Eamshaw' in the text) developed the final essential parts and completed the design and production process for the 'marine chronometer'. This accurate sea clock was then used for safer navigation over the next 150 years. |
