Technical Field
[0001] The present disclosure relates to a safe return program and a control apparatus with
the program installed. More particularly, the present disclosure relates to a safe
return program for a hybrid boat and a control apparatus with the program installed,
wherein the program computes in real time a distance to empty of a hybrid boat powered
by a battery and a hydrogen fuel cell together and displays the distance to empty
on an electronic map so that the navigator navigating the boat is able to return safely.
Background Art
[0002] Worldwide environmental regulations have been strengthened to reduce emission of
greenhouse gases and air pollutants, and various measures have been enacted accordingly.
In addition, there is a growing need for effective and reasonable energy-saving methods
along with minimization of environmental pollution.
[0003] As the regulations on emission of greenhouse gases entered into force in the United
Nations Framework Convention on Climate Change, the International Maritime Organization
legislated regulations on factors in marine environment destruction caused by boats.
Accordingly, the regulations will be strengthened aiming for a 30 % reduction of the
greenhouse gas emission by 2025 compared to the current situation. In addition, in
the International Convention for the Prevention of Pollution from Ships, Annex VI
strengthens regulations on emission of nitrogen oxides and sulfur oxides, so the need
for effective and reasonable energy-saving methods has gradually increased.
[0004] Boats have been developed focusing on a diesel electric propulsion system, but recently,
there has been an effort to develop an eco-friendly hybrid boat using a battery or
a hydrogen fuel cell as a power source.
[0005] In the meantime, a hybrid boat operates using a battery charged on the land and a
hydrogen fuel cell together, but when the battery goes dead or the hydrogen runs out
during the operation, the hybrid boat cannot return. Therefore, it is particularly
important to check the remaining charge of the battery and the remaining hydrogen
in real time.
[0006] Although the remaining charge of the battery and the remaining hydrogen are determined,
it is difficult to accurately compute a distance to empty in real time.
Disclosure
Technical Problem
[0007] Accordingly, the present disclosure has been made keeping in mind the above problems
occurring in the related art, and the present disclosure is directed to providing
a safe return program that is capable of accurately computing a distance to empty
of a hybrid boat in operation, wherein the hybrid boat uses a battery and a hydrogen
fuel cell as a power source.
[0008] In addition, the present disclosure is directed to providing a safe return program
that is capable of displaying a safe return distance so that the operator can intuitively
recognize the safe return distance.
Technical Solution
[0009] In order to achieve the above-described objectives, the present disclosure provides
a safe return program stored in a computer-readable recording medium and allowing
a computer to function as the following means: an information input means configured
to receive information on a remaining battery life from a battery of a boat, information
on a remaining hydrogen from a hydrogen fuel cell of the boat, and information on
a current speed from a speedometer of the boat; a distance-to-empty computation means
configured to compute in real time a distance to empty that the boat is capable of
returning in a current condition, from the information on the remaining battery life,
the information on the remaining hydrogen, and the information on the current speed;
and a distance-to-empty display means configured to display, on an electronic map
output on a display of the boat, a current position of the boat and a circle of which
a radius is the distance to empty, with the current position of the boat in a center
of the circle.
[0010] In an exemplary embodiment, the safe return program may further allow the computer
to function as the following means: a reference torque value storage means configured
to store therein reference torque values according to a speed change of the boat;
and a distance-to-empty correction means configured to receive the current speed and
a current torque of the boat, and decrease the distance to empty when the current
torque is higher than the reference torque value corresponding to the current speed
or increase the distance to empty when the current torque is lower that the reference
torque value corresponding to the current speed.
[0011] In an exemplary embodiment, the safe return program may further allow the computer
to function as a weather information receiving means configured to receive weather
information including a wave height, a wind direction, and a wind speed over a communication
network, wherein the distance-to-empty correction means may be configured to decrease
the distance to empty when the wave height received currently is higher than a reference
wave height or increase the distance to empty when the wave height received currently
is equal to or lower than the reference wave height; to increase the distance to empty
when the wind direction received currently is toward a return position or decrease
the distance to empty when the wind direction received currently is toward a direction
opposite to the return position; and to adjust a degree of increase or decrease according
to the wind speed received currently when increasing or decreasing the distance to
empty according to the wind direction received currently.
[0012] In addition, the present disclosure further provides a control apparatus having the
safe return program installed thereon, wherein the control apparatus is installed
in the boat and displays the distance to empty of the boat on the electronic map output
on the display of the boat.
Advantageous Effects
[0013] The present disclosure has the following effects.
[0014] First, according to the safe return program of the present disclosure, a distance
to empty of the boat is computed using the remaining battery life, the remaining hydrogen,
and the current speed, and the distance to empty is displayed in a circle on the electronic
map so that the operator can recognize the distance to empty intuitively and can return
safely.
[0015] In addition, according to the safe return program of the present disclosure, the
distance to empty is corrected according to the current torque value of the boat,
so that the distance to empty is computed by accurately determining the speed as well
as the actual power consumption.
[0016] In addition, according to the safe return program of the present disclosure, weather
information, such as a wave height, a wind direction, and a wind speed, is used to
correct the distance to empty more accurately.
Description of Drawings
[0017]
FIG. 1 is a diagram illustrating display of a distance to empty on a display by a
safe return program according to an embodiment of the present disclosure.
FIG. 2 is a diagram illustrating a control apparatus on which a safe return program
is installed, according to an embodiment of the present disclosure.
FIG. 3 is a diagram illustrating functions of a safe return program according to an
embodiment of the present disclosure.
FIG. 4 is a diagram illustrating correction of a distance to empty depending on a
current speed and a torque by a safe return program according to an embodiment of
the present disclosure.
FIG. 5 is a diagram illustrating correction of a distance to empty depending on a
wind direction by a safe return program according to an embodiment of the present
disclosure.
Best Mode
[0018] As the terms used in the present disclosure, general terms that are widely used at
present are selected, but terms that are arbitrarily selected by the applicant are
used in particular cases. In this case, these terms should be interpreted as not the
titles of the terms but the meaning described in the detailed description for implementing
the disclosure or the meaning of the terms.
[0019] Hereinafter, a technical configuration of the present disclosure will be described
in detail with reference to preferred embodiments illustrated in the accompanying
drawings.
[0020] However, the present disclosure is not limited to the embodiment described herein
and may be embodied in various forms. Throughout the whole specification, the same
reference numerals designate the same elements.
[0021] FIG. 1 is a diagram illustrating display of a distance to empty on a display by a
safe return program according to an embodiment of the present disclosure.
[0022] Referring to FIG. 1, the safe return program according to the embodiment of the present
disclosure is a program for displaying a distance to empty on a display 10 provided
in a boat so that the operator of the boat is able to recognize the distance to empty
intuitively.
[0023] That is, the safe return program performs a function of assisting the boat in returning
safely without drifting due to battery dead or running out of a hydrogen fuel during
operation.
[0024] In addition, the distance to empty is displayed on an electronic map 11 output from
the display 10, and is indicated by a circle c of which the radius denotes the distance
to empty, with the current position of a boat 20 in the center of the circle.
[0025] That is, it is recognized at a glance whether the boat 20 navigating on the sea 11b
is able of returning safely to a return position P on the land 11a.
[0026] In addition, the safe return program of the present disclosure is installed on the
control apparatus, such as a computer, an embedded system, or a smart device, and
performs the functions of the safe return program. The safe return program may be
provided separately, or may be installed on the control apparatus and provided with
the control apparatus.
[0027] In addition, when the safe return program is provided separately, the safe return
program provided being stored in a recording medium. The recording medium may be specially
designed and configured for the present disclosure, or may be known to those skilled
in the field of computer software and usable by them.
[0028] For example, the recording medium may be a hardware device that is specially configured
to store and perform program commands by a single one or a combination of the following:
magnetic recording media, such as hard disks, floppy disks and magnetic tapes, optical
recording media, such as CDs and DVDs, magneto-optical recording media for both magnetic
and optical recording, ROM, RAM, flash memory, etc.
[0029] In addition, the safe return program may be a program composed of program commands,
local data files, or local data structures, or a combination thereof. Alternatively,
the safe return program may be a program written in a mechanical language code formatted
by a compiler as well as in a high level language code that may be implemented by
a computer using an interpreter.
[0030] In addition, the safe return program may be stored in a server system capable of
transmitting data over a communication network, and the control apparatus may access
the server system and download and install the safe return program.
[0031] FIG. 2 is a diagram illustrating a control apparatus on which a safe return program
is installed, according to an embodiment of the present disclosure.
[0032] Referring to FIG. 2, the safe return program 100 is installed on the control apparatus
200. The control apparatus 200 is connected to a battery 30, a hydrogen fuel cell
40, a speedometer 50, a motor 60, a weather center server 70, and a smart device 80
of a navigator. By receiving information from the battery 30, the hydrogen fuel cell
40, the speedometer 50, the motor 60, the weather center server 70, and the smart
device 80, the control apparatus 200 computes a distance to empty and displays the
distance to empty on the display 10 of the boat.
[0033] In addition, referring to FIG. 3, the safe return program 100 makes the control apparatus
200 function as an information input means 110, a distance-to-empty computation means
120, a distance-to-empty display means 130, a reference torque value storage means
140, a distance-to-empty correction means 150, and a weather information receiving
means 160 to compute a distance to empty, and displays the distance to empty on the
display 10.
[0034] The information input means 110 receives remaining battery life information from
the battery 30, remaining hydrogen information from the hydrogen fuel cell 40, and
current speed information from the speedometer 50.
[0035] From the remaining battery life information, the remaining hydrogen information,
and the current speed information, the distance-to-empty computation means 120 computes
in real time a distance to empty that the boat 20 is capable of returning in a current
condition.
[0036] In addition, the distance to empty may be computed in various ways. A total power
remaining now is computed using the remaining battery life information and the remaining
hydrogen information, the time period for which the boat is operable is determined
by computing the power consumed per hour at the current speed, and the speed multiplied
by the time period is the distance to empty.
[0037] The distance-to-empty display means 130 displays the circle c of which the radius
r is the distance to empty, with the position of the boat 20 in the center of the
circle on the electronic map 11 output on the display 10, so that the operator of
the boat recognizes the distance to empty at a glance.
[0038] That is, the operator recognizes that the boat is able to return safely when the
return position P is inside the circle c. When the return position P is outside the
circle c, the boat is unable to return safely, so the operator asks for help from
outside or increases the distance to empty by reducing power consumption in order
to return safely.
[0039] In the meantime, even when the boat is in operation at the same speed on the sea,
torque values vary according to a change in an environment such as a wave height,
a wind direction, or a wind speed. Therefore, the distance to empty needs to be corrected
by applying the change in the torque value.
[0040] The reference torque value storage means 140 stores reference torque values therein
that are average torque values according to a speed change as shown in FIG. 4.
[0041] The distance-to-empty correction means 150 receives a current speed and a current
torque from the speedometer 60 and the motor 60, respectively. When the current torque
t1 is higher than the reference torque value corresponding to the current speed s1,
the distance-to-empty correction means 150 decreases the distance to empty. When the
current torque t2 is lower than the reference torque value corresponding to the current
speed s2, the distance-to-empty correction means 150 increases the distance to empty.
[0042] That is, when the wave is high or the wind blows in the direction opposite to the
return position P and the torque value increases at the same speed, power consumption
increases and thus the distance to empty is decreased. When the wave is low or the
wind blows in the direction of the return position P and the torque value decreases
at the same speed, the power consumption decreases and thus the distance to empty
is increased.
[0043] In the meantime, the current torque value of the boat is affected by weather conditions
as well as various states of the boat. Therefore, in the present disclosure, the distance
to empty is corrected using weather information additionally to compute a distance
to empty precisely.
[0044] The weather information receiving means 160 is connected to the weather center server
70 or the smart device 80 of the operator over the communication network. The weather
information receiving means 160 receives weather information directly from the weather
center server 70 or receives weather information indirectly through the smart device
80.
[0045] In addition, the weather information includes a wave height, a wind direction, and
a wind speed.
[0046] In addition, the distance-to-empty correction means 150 decreases the distance to
empty when the current wave height is higher than a reference wave height. The distance-to-empty
correction means 150 increases the distance to empty when the current wave height
is equal to or lower than the reference wave height.
[0047] In addition, referring to FIG. 5, when the current wind direction w1 is toward the
return position P, the distance-to-empty correction means 150 increases the distance
to empty to change the size from the previously displayed circle r to the diameter-increased
circle r1. When the current wind direction w2 is toward the direction opposite to
the return position P, the distance-to-empty correction means 150 decreases the distance
to empty to change the size from the previously displayed circle r to the diameter-decreased
circle r2.
[0048] In addition, the distance-to-empty correction means 150 may adjust the degree to
which the circle r increases or decreases, according to the current wind speed.
[0049] Accordingly, the operator is able to intuitively recognize the distance to empty
varying according to weather conditions, and to return safely.
[0050] As described above, while the present disclosure has been illustrated and described
in conjunction with the preferred embodiment, the present disclosure is not limited
to the aforementioned embodiment. The embodiment can be changed and modified in various
forms by those skilled in the art without departing from the spirit of the disclosure.