Embodiments described herein generally relate to elevator installations and methods for operating elevator installations. More particularly, embodiments described herein relate to methods for operating elevator installations and passenger guiding systems, particularly for guiding passengers to maintain social distancing while using an elevator installation.
Elevator installations are known as an effective means for quickly transporting passengers between floors or levels. Generally, elevators are expected to operate as efficiently as possible, i.e. offer transport for the highest possible number of passengers with the lowest number of trips, while simultaneously reducing the individual passenger wait time. Recent advances have therefore led to improved methods for scheduling optimal transport routes for elevator installations. One such advance is the use of a destination call control system, which provides improved efficiency compared to a conventional up/down control system. Such destination call control systems, for example, are provided by Schindler, including the SchindlerID® and PORT Technology systems. Further improvements can be had by purposefully allocating spaces or zones inside the elevator car to passengers, as is described in WO 2016/146357 A1.
While efficiency is typically one key aspect of an elevator installation, another important aspect to be considered is passenger safety. During times of increased infection risk, such as during a flu epidemic or a pandemic such as the COVID 19 pandemic, one important measure for maintaining passenger health can be the observance of adequate spacing between passengers, also known as social distancing. Social distancing can significantly reduce the risk of any uninfected person coming into physical contact with an infected person, thereby suppressing disease transmission, and can be effective when the infectious disease spreads via direct or indirect physical contact, droplet contact or airborne transmission.
However, implementing social distancing can be challenging in the context of an elevator installation, since traditionally, passenger crowding is known to occur at elevator landings, particularly in building lobbies, as well as within the elevator car. Because the available space inside an elevator car is typically limited, introducing social distancing rules often involves a tradeoff between safety and efficiency, and it can be challenging to provide an elevator installation that offers both at an adequate cost. In addition, if passengers perceive such safety measures as cumbersome or a waste of time, the general acceptance of the measures and adherence to set rules might be low.
There is therefore a need for a technology that provides an efficient way for operating an elevator installation, while at the same time implementing social distancing rules to maintain adequate spacing between passengers to reduce the risk of transmitting an infection while using the elevator installation.
In light of the above, according to an aspect, a method for operating an elevator installation is provided. The method includes receiving a destination call of a passenger at a control unit. The destination call defines a trip from a boarding floor to a destination floor. The method further includes selecting an elevator car from a set of available elevator cars for transporting the passenger. The elevator car is selected such that elevator car spacing rules are observed. The method further includes determining an arrival time of the selected elevator car at the boarding floor, and a arrival time of the passenger at an elevator landing corresponding to the selected elevator car on the boarding floor. The method further includes directing, under the proviso that the arrival time of the passenger at the elevator landing precedes the arrival time of the selected elevator car by a defined margin, the passenger to a waiting zone of a set of available waiting zones. The waiting zone is selected such that waiting zone spacing rules are observed. The method further includes moving the selected elevator car to the boarding floor, and directing the passenger to the elevator landing for transporting the passenger from the boarding floor to the destination floor in the selected elevator car.
According to an aspect, a passenger guiding system for an elevator installation is provided. The elevator installation includes a set of elevator cars. The passenger guiding system includes a user interface unit for receiving a destination call of a passenger. The destination call defines a trip from a boarding floor to a destination floor. The passenger guiding system further includes a control unit configured for designating a selected elevator car from the set of elevator cars to transport the passenger such that elevator car spacing rules are observed, and for calling the selected elevator car to a boarding floor or to a destination floor. The passenger guiding system further includes a passenger direction unit defining a set of waiting zones. The passenger direction unit is configured for determining an arrival time of the selected elevator car at the boarding floor, and an arrival time of the passenger at an elevator landing corresponding to the selected elevator car on the boarding floor. The passenger direction unit is configured for directing, under the proviso that the arrival time of the passenger at the elevator landing precedes the arrival time of the selected elevator car by a defined margin, the passenger to a waiting zone of the set of waiting zones. The waiting zone is selected such that waiting zone spacing rules are observed. The passenger direction unit is configured for directing, when the arrival time of the passenger at the elevator landing does not precede the arrival time of the selected elevator car by the defined margin, the passenger to the elevator landing.
According to an aspect, an elevator installation comprising a passenger guiding system according to an embodiment described herein is provided.
To briefly illustrate the shortcomings of known elevator installations, in a typical exemplary scenario, passengers who intend to use an elevator installation can enter a building at quasi-random times and with different destination floors. If social distancing rules are mandated, the passengers might queue up with adequate spacing and limit the occupancy of the individual elevator cars. This approach is only feasible for a small number of passengers and might quickly nullify any potential benefits of increased passenger spacing by resulting in longer interaction times between passengers while the passengers are waiting in the queue.
In another exemplary scenario of a known elevator installation, if a destination call control system is available, passengers might enter their destination at a terminal and then spread out in the building lobby as to maintain social distancing while they wait for the elevator car, which might be operated at reduced capacity. Thus, a significant risk of propagating a potential infection remains, particularly when the passengers cross paths while entering or exiting the elevator car, while waiting at random locations, and while moving from a waiting area to an elevator car. This risk typically increases with the number of passengers.
Embodiments of the present disclosure overcome these problems by directing the passengers to wait in dedicated waiting areas, and by assigning the passengers to elevator cars, such that minimal interaction between passengers occurs, and adequate spacing is maintained at all times. Thus, the risk of transmitting an infection between passengers is reduced, while the efficiency of the elevator installation can be maintained at a reasonable level. Additionally, the above benefits can be maintained independently of passenger load, such that the risk of transmitting an infection remains low, even if the elevator installation is operated at high capacity.
The novel features and method steps characteristic of the improved technology, as well as other features and advantages thereof, are best understood by reference to the detailed description, which follows, when read in conjunction with the accompanying drawings, wherein:
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According to embodiments, which can be combined with embodiments described herein, elevator car spacing rules are provided. Elevator car spacing rules can apply to passengers while traveling in the elevator car, particularly from the time after entering the elevator car up to the moment of exiting the elevator car. Elevator car spacing rules can be rules which are communicated to the passenger, or which are required to be followed by the passenger. Elevator car spacing rules can further be rules which are observed while assigning passengers to the elevator car. Elevator car spacing rules can also be rules which are unknown to the passenger and applied e.g. by the elevator installation and/or included in a method for operating an elevator installation. Elevator car spacing rules can be rules which assign positions, e.g. positions within elevator car zones, which are described in further detail below, to passengers within the elevator car. Elevator car spacing rules can involve rules or a combination of rules to prevent the spread of an infection between the passenger and another passenger. Elevator car spacing rules can enforce a minimum distance between passengers, i.e. passengers, groups of passengers or combinations thereof. In one example, elevator car spacing rules can enforce a minimum distance of 3 feet, 2 meters, 1.5 meters, 1 meter or an arbitrary unit chosen by a governing body, such as the approximate length of a baby elephant, between passengers or groups of passengers (e.g., between waiting zones and/or between elevator car zones). In one example, elevator car spacing rules can enforce a minimum floor area per passenger, such as at least 1 m2, 1.5 m2, 2 m2, 3 m2, 5 m2 or at least 10 square feet. In one example, elevator car spacing rules can be independently set for each elevator car zone, such that a maximum number of passengers for each elevator car zone is defined, such as 1 passenger, 2 passengers, 3-5 passengers or even a higher discrete number of passengers. Elevator car spacing rules can also, e.g. if one elevator car has a single elevator car zone, be a representation of a maximum number of passengers for a specific elevator car, such as a maximum of 1 passenger for a small elevator car, or a maximum number of 4 passengers for a medium-sized elevator car.
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According to embodiments, which can be combined with embodiments described herein, waiting zone spacing rules are provided. Waiting zone spacing rules can be similar or identical to the elevator car spacing rules outlined above. Waiting zone spacing rules can apply to passengers while waiting in one or several waiting zones, particularly from the time the passenger is directed to the waiting zone to the time the passenger is directed to the elevator landing for transporting the passenger to the destination floor in the selected elevator car. Waiting zone spacing rules can be rules which are communicated to the passenger, or which are required to be followed by the passenger. Waiting zone spacing rules can further be rules which are observed while assigning passengers to a waiting zone. Waiting zone spacing rules can also be rules which are unknown to the passenger and applied e.g. by the elevator installation and/or included in a method for operating an elevator installation. Waiting zone spacing rules can be rules which assign positions to the passenger, e.g. positions within a waiting zone, or which assign waiting zones to a passenger, e.g. waiting zones from a set of available waiting zones. Waiting zone spacing rules can involve rules or a combination of rules to prevent the spread of an infection between the passenger and another passenger. Waiting zone spacing rules can enforce a minimum distance between passengers, i.e. passengers, groups of passengers or combinations thereof. In one example, waiting zone spacing rules can enforce a minimum distance of 3 feet, 2 meters, 1.5 meters, 1 meter or an arbitrary unit chosen by a governing body, between passengers or groups of passengers within the zone. In one example, waiting zone spacing rules can enforce a minimum floor area per passenger, such as at least 1 m2, 1.5 m2, 2 m2, 3 m2, 5 m2 or at least 10 square feet. In one example, waiting zone spacing rules can be independently set for each waiting zone, such that a maximum number of passengers for each waiting zone is defined, such as 1 passenger, 2 passengers, 3-5 passengers or even a higher discrete number of passengers. Waiting zone spacing rules can also be a representation of a maximum number of passengers for a specific waiting zone. The maximum number of passengers for a specific waiting zone can be chosen based on the shape or size of the waiting zone, such as a maximum of 1 passenger for a small waiting zone, or a maximum number of 4 passengers for e.g. an oblong or larger waiting zone.
According to embodiments, which can be combined with embodiments described herein, waiting zone spacing rules can further include only assigning a waiting zone to a passenger when the waiting zone is empty. The maximum number of passengers per waiting zone can be set to 0 for zones which are not to be used, can be 1 for waiting zones which should only be occupied by one passenger, or if the passenger load is low, such that a full waiting zone is available for each passenger. The number of passengers for a waiting zones can be also be set to arbitrary numbers, such as 2 passengers, 3 passengers, 5 passengers, 10 passengers or such, provided that the waiting zone spacing rules as described above are observed.
According to embodiments, which can be combined with embodiments described herein, elevator car spacing rules and/or waiting zone spacing rules can, in some cases, be dynamically adapted to the current situation, e.g. the estimated infection risk for each passenger. In one example, if the risk for spreading an infection is low because the epidemiological incidence is low, a higher number of passengers per elevator car and/or waiting zone can be allowed.
According to embodiments, which can be combined with embodiments described herein, elevator car spacing rules and/or waiting zone spacing rules can further include rules to not exceed a maximum contact time between passengers, particularly between passengers waiting together in a waiting zone or travelling together in an elevator car. The maximum contact time can be 1 minute, 2 minutes, 5 minutes, or 10 minutes.
According to embodiments, which can be combined with embodiments described herein, elevator car spacing rules and/or waiting zone spacing rules can further include rules to not exceed a maximum number of passengers without personal protective equipment in waiting together in a waiting zone or travelling together in an elevator car. Personal protective equipment can be a clothing such as facemask, gloves, skin protection or such.
According to embodiments, which can be combined with embodiments described herein, elevator car spacing rules and/or waiting zone spacing rules can further include rules to minimize the chance of spreading an infection between groups of passengers. Elevator car spacing rules and/or waiting zone spacing rules can include rules to not have groups of passengers exceeding a passenger count of n passengers interact with another passenger or another group of passengers exceeding a count of m passengers, where n and/or m can be a number from 1 to 10, such as 2 or 3.
According to embodiments, which can be combined with embodiments described herein, the passenger, e.g. after having been directed to a waiting zone at operation 110, arrives at the waiting zone and waits in the waiting zone for a passenger wait time. The passenger can be instructed to wait for a passenger wait time. Instructing the passenger to wait for a passenger wait time can include communicating, to the passenger, the passenger wait time, e.g. via a terminal, particularly during or after having made the call. The passenger wait time can be a timepoint up to which the passenger waits in the waiting zone. The passenger wait time can include the time required for the passenger to move to the waiting zone.
According to embodiments, which can be combined with embodiments described herein, the passenger, e.g. after having been directed to a waiting zone at operation 110, will not arrive at the elevator landing at the first arrival time. Instead, the passenger will be instructed to wait in the waiting zone for a passenger wait time. The passenger, after having been directed to wait in the waiting zone for the passenger wait time, can have a second arrival time. The second arrival time can be determined by the passenger wait time and the transfer time of the passenger from the waiting zone to the elevator landing.
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According to embodiments, which can be combined with embodiments described herein, the transfer time of the passenger from the waiting zone to the elevator landing is determined after the arrival of the passenger at the waiting zone. According to an embodiment, the transfer time of the passenger to the waiting zone can be used to more accurately estimate the future transfer time of the passenger from the waiting zone to the elevator landing. The future transfer time from the waiting zone to the elevator landing can be used to more accurately calculate the required passenger wait time. The embodiment can include receiving the arrival time of the passenger at the waiting zone. The arrival time can be determined by monitoring the waiting zone with a sensor. The arrival time can be determined by requesting and/or receiving a passenger position from the mobile terminal device when the passenger arrives at the waiting zone.
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According to embodiments, which can be combined with other embodiments described herein, elevator car spacing zones can be zones within the elevator car to be occupied by passengers. Particularly, elevator car spacing zones can be parts of the elevator car floor on which the passengers should stand during transport in the elevator car. Elevator car zones can be set up such that boarding of the elevator car is more ordered, such that, e.g. passengers which are traveling to destination floors travel that require a longer travel time are assigned to elevator car zones in the back of the elevator car. Elevator car spacing rules can be implemented by requiring passengers to occupy particular elevator car zones. In the example of
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According to embodiments, which can be combined with embodiments described herein, the passenger guiding system 310 can be a set of communicatively coupled modules. The passenger guiding system 310 can comprise a number of hardware modules, or a single hardware module, such as a controller module and/or a computer, and the modules of the passenger guiding system can be implemented in the form of software, e.g. as programs. The passenger guiding system can include further modules, such as an elevator controller, and/or be communicatively coupled to further elements of the elevator installation, such as the elevator controller. The elevator controller can be comprised within the same single hardware module as the passenger guiding system. The elevator controller can be comprised within the control unit 330.
According to embodiments, which can be combined with embodiments described herein, the elevator installation 300 can comprise an elevator drive 332 for moving the elevator car between floors. The elevator drive 332 can be communicatively coupled to e.g. the elevator controller to receive control messages from the elevator controller, and/or to send status messages to the elevator controller. The elevator controller can control the elevator drive, thereby controlling the movement of the elevator car within the elevator installation.
According to embodiments, which can be combined with embodiments described herein, the user interface unit 320 is configured for receiving a destination call of a passenger. The destination call defines a trip from a boarding floor to a destination floor. The user interface unit 320 can be configured for transmitting the destination call to the control unit 330. The use interface unit 320 can comprise one or more terminals for receiving the user input, such as floor terminals 322 or mobile terminal 324. The terminals 322, 324 can be communicatively coupled to the user interface unit 320, i.e. further components comprising the user interface unit 320, e.g. by a communication bus 304, or by a wireless transmitter/receiver. The user interface unit 320 can be communicatively coupled to the passenger direction unit 340 for displaying directive instructions to a passenger. The user interface unit 320 can include one or more display units communicatively coupled to the passenger direction unit 340, particularly for displaying directive instructions to the passenger. The display unit can be included in a floor terminal 322 or a mobile terminal 324. The display unit can be a display within a waiting zone. The display unit can be a projector device. The display unit can include visual and/or non-visual means for communicating instructions to the passengers, such as loudspeakers for broadcasting audible instructions.
According to embodiments, which can be combined with embodiments described herein, the control unit 330 can be configured for receiving, from the user interface unit 320, the destination call. The control unit 330 is further configured for designating a selected elevator car from the set of elevator cars to transport the passenger such that elevator car spacing rules are observed, and for calling the selected elevator car to a boarding floor or to a destination floor. The elevator car spacing rules can be the elevator car spacing rules according to an embodiment described herein. Calling the selected elevator car can result in the selected elevator car to be controlled, e.g. by the elevator controller, to physically perform the trip from the boarding floor to the destination floor. The control unit 330 can be configured for transmitting status information to the passenger direction unit 340, particularly status information from which a car arrival time of the elevator car 210 at the boarding floor, particularly for performing the trip from the boarding floor to the destination floor, can be deduced.
According to embodiments, which can be combined with embodiments described herein, the passenger direction unit 340 defines a set of waiting zones. The waiting zones can be waiting zones as described in further detail for elevator installation 200 in relation to
According to embodiments, which can be combined with embodiments described herein, the passenger direction unit 340 is configured to direct, after having determined the arrival times and under the proviso that the arrival time of the passenger at the elevator landing precedes the arrival time of the selected elevator car by a defined margin, the passenger to a waiting zone of the set of waiting zones. The passenger direction unit 340 can be configured to direct the user to the elevator landing without first directing the user to a waiting zone, particularly when the elevator car arrival time is before the passenger arrival time at the elevator landing. Directing the passenger can be performed according to the method 100 described in relation with
According to embodiments, which can be combined with embodiments described herein, the passenger direction unit 340 is configured to select the waiting zone such that waiting zone spacing rules are observed. The waiting zone spacing rules can be the waiting zone spacing rules according to an embodiment described herein.
According to embodiments, which can be combined with embodiments described herein, the passenger direction unit 340 is configured for directing, when the arrival time of the passenger at the elevator landing does not precede the arrival time of the selected elevator car by the defined margin, the passenger to the elevator landing. This condition can apply either after the passenger has been waiting in the waiting zone, or instantly after the passenger has made the destination call. The passenger guiding system 310 can be configured for directing the passenger by utilizing the user interface unit 320 as described above.
According to embodiments, which can be combined with embodiments described herein, the directions given to the passenger by the passenger direction unit 340 can include one or more of the following: directions to move to an elevator landing, directions to move to a waiting zone, directions to wait for a passenger wait time and/or directions to occupy an elevator car zone. Some or all of the directions can be communicated to the passenger by utilizing the user interface unit 320 as described above.
According to embodiments, which can be combined with embodiments described herein, the user interface unit 320 can be configured for receiving a destination call including a passenger location. The passenger direction unit 340 can be communicatively coupled to the user interface unit for receiving the passenger location. The passenger direction unit can be configured to determine the arrival time of the first passenger at the elevator landing, which can be an arrival time of a passenger at an elevator landing, such as a first arrival time as described above, by estimating a transfer time of the passenger from the passenger location to the elevator landing.
Next, general aspects of the technology will be discussed.
According to an aspect, the passenger direction unit is configured to synchronize the second arrival time to the arrival time of the selected elevator car by calculating a required passenger wait time from the arrival time of the selected elevator car and the estimated transfer time of the passenger from the waiting zone to the elevator landing.
According to an aspect, the destination call includes a passenger count, and the passenger is a group of passengers.
According to an aspect, an elevator installation comprising the passenger guiding system according to an embodiment as described herein is disclosed.
According to an aspect, the use of a passenger guiding system according to an embodiment as described herein in an elevator installation, particularly an elevator installation according to an embodiment as described herein, is disclosed.
Although some embodiments of the various methods disclosed herein are described as comprising a certain number of method acts, further embodiments of a given method can comprise more or fewer method acts than are explicitly disclosed herein. In additional embodiments, method acts are performed in an order other than as disclosed herein. In some cases, two or more method acts can be combined into one method act. In some cases, one method act can be divided into two or more method acts.
Having illustrated and described the principles of the disclosed technologies, it will be apparent to those skilled in the art that the disclosed embodiments can be modified in arrangement and detail without departing from such principles. In view of the many possible embodiments to which the principles of the disclosed technologies can be applied, it should be recognized that the illustrated embodiments are only examples of the technologies and should not be taken as limiting the scope of the invention.
In accordance with the provisions of the patent statutes, the present invention has been described in what is considered to represent its preferred embodiment. However, it should be noted that the invention can be practiced otherwise than as specifically illustrated and described without departing from its spirit or scope.
Filing Document | Filing Date | Country | Kind |
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PCT/EP2021/082002 | 11/17/2021 | WO |
Number | Date | Country | |
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63114655 | Nov 2020 | US |