The present invention relates to a ventilating apparatus for a vehicle such as a passenger car, which apparatus ventilates a passenger compartment of the vehicle when there is no occupant in the passenger compartment.
A ventilating apparatus has been proposed that includes a gas concentration detector, which detects the gas concentration in the passenger compartment, in particular, the concentration of carbon dioxide (CO2). The ventilating apparatus operates to ventilate the passenger compartment when a detection value of the carbon dioxide concentration detected by the gas concentration detector exceeds a predetermined value. Such a gas concentration detector used in the vehicle ventilating apparatus includes, for example, one infrared emitter and two infrared sensors as disclosed in Patent Document 1 and Patent Document 2. The two infrared sensors detect different wavelength components of infrared radiation output from the infrared emitter. The detection results of the two infrared sensors are compared with each other to cancel changes over time (time degradation) of the infrared emitter and the infrared sensors, so that the gas concentration detector reliably detects the carbon dioxide concentration in the passenger compartment.
However, in addition to the two infrared sensors, the gas concentration detector needs to be provided with interferometer mirrors or filters for transmitting, to the infrared sensors, infrared radiation having wavelength components each corresponding to one of the infrared sensors. Thus, the gas concentration detector has a complicated structure and a large number of components. This increases the manufacturing costs of the vehicle ventilating apparatus.
Patent Document 1: Japanese Laid-Open Patent Publication No. 2006-220623
Patent Document 2: Japanese Laid-Open Patent Publication No. 2006-38721
Accordingly, it is an objective of the present invention to provide a vehicle ventilating apparatus that has a simple structure and a reduced number of components.
To achieve the above objective, the present invention provides a vehicle ventilating apparatus, which includes temperature detecting means, determining means, and a duct. The temperature detecting means detects a temperature in a passenger compartment of a vehicle. The determining means determines whether there is any occupant in the passenger compartment. The duct connects the inside and the outside of the passenger compartment. The duct is provided with a fan located inside the duct. When the temperature in the passenger compartment exceeds a specified value in a state where there is no occupant in the passenger compartment, the fan is operated so that the air in the passenger compartment is discharged to the outside of the vehicle through the duct. The vehicle ventilating apparatus further includes a concentration sensor, deciding means, detection command means, and setting means. The concentration sensor detects carbon dioxide concentration in the passenger compartment. The deciding means decides the operation of a device mounted on the vehicle in accordance with a detection result of the carbon dioxide concentration detected by the concentration sensor. The detection command means causes the concentration sensor to perform operation when the fan has been operated for a certain period of time or longer. The setting means sets an output value output from the concentration sensor operated by the detection command means as a reference value for carbon dioxide concentration.
A first embodiment of the present invention will now be described with reference to
A vehicle 11 shown in
An exhaust fan 18 is arranged in the exhaust duct 14 in the vicinity of the outlet opening 14b. When the exhaust fan 18 is rotated by means of an exhaust fan motor 19 shown in
A carbon dioxide concentration sensor 21, which detects the carbon dioxide (CO2) concentration of the air in the passenger compartment 12, is arranged at the lower part of the passenger compartment 12, for example, underneath a front seat 20. The detection result of the passenger compartment carbon dioxide concentration detected by the concentration sensor 21 is output to a control device 31 shown in
As shown in
When the ignition switch, which is not shown, is off, a switching damper motor 25 shown in
As shown in
The electric circuit configuration for controlling the vehicle ventilating apparatus 13 having the structure as described above will now be described.
As shown in
The control device 31 functions as determining means for determining whether there is any occupant in the passenger compartment 12. If it is determined that there is an occupant in the passenger compartment 12 based on that the ignition switch is on, the control device 31 receives the detection result of the passenger compartment carbon dioxide concentration detected by the concentration sensor 21, and outputs an operation command to the switching damper motor 25 such that the switching damper 24 is arranged at the position shown in
The control device 31 also functions as deciding means, which decides operation of a specific device 33 mounted on the vehicle 11 such as an air conditioning system or a window opening device in accordance with the detection result of the passenger compartment carbon dioxide concentration detected by the concentration sensor 21.
Furthermore, when it is determined that there is no occupant in the passenger compartment 12, and that the fan 18 has been operating for a predetermined time period or longer (in other words, the level of the carbon dioxide concentration of the air in the passenger compartment around the concentration sensor 21 is at the level of normal air appropriate for setting the reference value for the carbon dioxide concentration), the control device 31 functions also as detection command means, which causes the concentration sensor 21 to perform operation.
The structure of the main part of the vehicle ventilating apparatus 13 according to the present embodiment will now be described with reference to
As shown in
The control device 31 functions as setting means, which sets the output value (voltage value) from the concentration sensor 21 as a reference value for carbon dioxide concentration. The set reference value is stored in the memory 32. The method for setting the reference value will be described with reference to
The operation of the ventilating apparatus 13 configured as described above will now be described.
When the ignition switch is off, for example, when the vehicle 11 is parked, the switching damper 24 is switched to the position shown in
When the ignition switch is on, for example, when the vehicle 11 is travelling, the switching damper 24 is switched to the position shown in
The procedure for updating the reference value for the carbon dioxide concentration stored in the memory 32 will now be described with reference to the flowchart of
First, in step S1, the control device 31 determines whether the ignition switch is off, that is, whether there is an occupant in the passenger compartment 12. If it is determined that there is no occupant in the passenger compartment 12 based on that the ignition switch is off, the control device 31 determines in step S2 whether a predetermined time period (for example, five minutes) has elapsed from when driving of the exhaust fan 18 has been started, that is, whether the level of the carbon dioxide concentration of the air in the passenger compartment around the concentration sensor 21 is equal to the level of the normal air appropriate for setting the reference value for carbon dioxide concentration. If it is determined that the predetermined time period has elapsed from when driving of the exhaust fan 18 has been started, the control device 31 activates the concentration sensor 21 in step S3. If it is determined in step S2 that the predetermined time period has not elapsed from when driving of the exhaust fan 18 has been started, the control device 31 maintains the concentration sensor 21 off and does not update the reference value.
After activating the concentration sensor 21 in step S3, the control device 31 determines in step S4 whether a predetermined time period (for example, 60 seconds) has elapsed from when the concentration sensor 21 has been activated. The predetermined time period in step S4 is set to the length longer than or equal to the time required for operation of the concentration sensor 21 to stabilize. If it is determined in step S4 that the predetermined time period has elapsed from when the concentration sensor 21 is activated, the control device 31 determines in step S5 whether the ambient temperature around the concentration sensor 21 measured by the temperature sensor 27 is within the predetermined temperature range (for example, 55° C. or lower). The predetermined temperature range in step S5 is the temperature range in which the concentration sensor 21 performs operation properly, preferably, for example, 10° C. or higher. If it is determined in step S5 that the ambient temperature around the concentration sensor 21 is within the predetermined temperature range, the control device 31 updates in step S6 the reference value for carbon dioxide concentration stored in the memory 32 to the output value (voltage value) currently output from the concentration sensor 21. If the decision outcome of step S4 or step S5 is negative, that is, if it is determined in step S4 that the predetermined time period has not elapsed from when the concentration sensor 21 is activated, or if it is determined in step S5 that the ambient temperature around the concentration sensor 21 is not within the predetermined temperature, the control device 31 does not update the reference value in step S6.
Since the reference value for carbon dioxide concentration stored in the memory 32 is updated in this manner, the detection accuracy of the carbon dioxide concentration detected by the concentration sensor 21 is maintained properly. As a result, the exhaust fan motor 19 or another device 33, such as the air conditioning system or the window opening device, that operates in accordance with the detection result of the carbon dioxide concentration detected by the concentration sensor 21 operates properly.
The first embodiment has the following advantages.
The concentration sensor 21 precisely detects the carbon dioxide concentration in the passenger compartment 12 regardless of the changes over time (time degradation) of the light emitting source 36 and the light receiving element 37 since the reference value for carbon dioxide concentration stored in the memory 32 is updated as needed. Thus, it is not necessary to provide the conventionally required two infrared sensors, which detect different wavelength components, the interferometer mirrors, or the filters. The structure of the concentration sensor 21 is therefore simple and the number of the components is reduced. This reduces the manufacturing costs of the vehicle ventilating apparatus 13.
The reference value for carbon dioxide concentration is updated only after the predetermined time period has elapsed from when the concentration sensor 21 is activated. Thus, the reference value is prevented from being updated using the output value of the concentration sensor 21 when the operation is unstable, which permits the reference value to be updated properly.
The reference value for carbon dioxide concentration is updated when the ambient temperature around the concentration sensor 21 is within the predetermined temperature range. Thus, the reference value is prevented from being updated using the output value of the concentration sensor 21 at the temperature at which operation cannot be performed normally, which permits the reference value to be updated properly.
The reference value for carbon dioxide concentration is updated when there is no occupant in the passenger compartment 12. Thus, the occupant is prevented from being affected by the series of operations performed to update the reference value.
When the carbon dioxide concentration in the passenger compartment 12 is increased, air in the passenger compartment 12 is discharged to the outside of the vehicle 11 without introducing the outside air into the passenger compartment 12 in a positive manner, so as to lower the carbon dioxide concentration. Thus, for example, when the outside air is contaminated such as when the vehicle 11 is travelling through a tunnel, comfort in the passenger compartment 12 is prevented from being decreased by the contaminated air that is introduced into the passenger compartment 12 rapidly by a large amount.
Since the inlet opening 14a of the exhaust duct 14 is arranged underneath the rear seat 15, the carbon dioxide accumulated in the lower part of the passenger compartment 12 is efficiently drawn into the exhaust duct 14 from the inlet opening 14a. This permits the carbon dioxide concentration in the passenger compartment 12 to be efficiently reduced when the carbon dioxide concentration in the passenger compartment 12 is increased.
When the temperature in the passenger compartment 12 is increased over a predetermined upper limit value such as when the vehicle 11 is parked for a long time, and when the carbon dioxide concentration in the passenger compartment 12 is increased over a predetermined upper limit value such as when the vehicle 11 is travelling, the air in the passenger compartment 12 is discharged by the operation of the common exhaust fan 18. This simplifies the structure of the ventilating apparatus 13.
A second embodiment of the present invention will now be described with reference to
The vehicle ventilating apparatus according to the second embodiment differs from the vehicle ventilating apparatus 13 of the first embodiment in that the ventilating apparatus of the second embodiment includes contamination degree detecting means, which is a smog sensor 41 in the second embodiment, in the vehicle engine compartment as shown in
Therefore, the second embodiment has the following advantage in addition to the advantages of the above-mentioned first embodiment.
The reference value for carbon dioxide concentration is updated when the outside air is clean. Thus, the reference value is prevented from being updated using the output value of the concentration sensor 21 when the carbon dioxide concentration of the air in the passenger compartment is affected by the contaminated outside air, which allows the reference value to be more properly updated.
The above embodiments may be modified as follows.
The exhaust duct 14 and the branch duct 22 may be located at positions different from the above embodiments. For example, the exhaust duct 14 and the branch duct 22 may be arranged along the ceiling of the passenger compartment 12.
Instead of the concentration sensor 21 shown in
Number | Date | Country | Kind |
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2007-293456 | Nov 2007 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/JP2008/070465 | 11/11/2008 | WO | 00 | 8/4/2009 |