Ventilated cabin ensuring a constant air flow
The ventilation system maintains a constant air flow rate by using a pressure difference sensor and control unit to adjust fan speed, addressing filter clogging issues and ensuring consistent airflow and temperature in passenger compartments.
Patent Information
- Application Number
- FR2023007619
- Authority / Receiving Office
- FR · FR
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2023-07-17
- Publication Date
- 2025-10-24
- Estimated Expiration
- 2043-07-17
AI Technical Summary
Existing ventilation systems in passenger compartments, such as those in railway vehicles, struggle with maintaining a constant air flow rate due to issues like filter clogging, which can lead to passenger discomfort and temperature fluctuations, as they require precise sensor positioning to avoid sending erroneous flow rate adjustments.
A ventilation system with a pressure difference sensor measuring between two points in the closed-loop air circuit, coupled with a control unit that adjusts fan speed based on pressure difference measurements to maintain a constant set flow rate, using stored operation and characteristic curves to adapt to changes in filter condition and system wear.
Ensures a constant air flow rate, maintaining passenger comfort by preventing flow rate loss and temperature fluctuations, thus optimizing ventilation performance and reducing discomfort.
Smart Images

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Abstract
Description
Title of the invention: Ventilated passenger compartment ensuring a constant air flow
[0001] The present invention relates to a ventilated passenger compartment ensuring a constant air flow rate, of the type comprising an interior ventilated space and a ventilation device, in which the ventilated passenger compartment comprises at least one closed-loop air circuit defined through the ventilation device and the interior ventilated space and the ventilation device comprises a fan for moving the air in the closed-loop air circuit and a fan speed control unit, the control unit being capable of varying the fan speed to ensure a constant set flow rate.
[0002] To ensure passenger comfort within a passenger compartment, airflow and interior temperature are important factors. These parameters are tested regularly and modified during an intervention in the event of a significant defect. Defects that may appear are damage to equipment such as a fan or a clogged filter.
[0003] Heating, ventilation and air conditioning systems are checked on new trains when all filters are clean and no faults have yet appeared in the system. But before the next intervention, the filters have time to become clogged or the system to deteriorate and then passenger comfort decreases.
[0004] A solution is described for example in document EP3156302B1.
[0005] In [Fig.2] of document EP3156302B1, the air conditioning device is composed of an air circuit passing through a filter and a fan. Flow and temperature sensors transmit information about the air condition to a control unit. The control unit monitors the heat exchanger and the fan based on the temperature and flow information received.
[0006] The flow rate is adjusted according to the filter clogging observed by the difference between the flow sensor measurement and a target value. The flow rate and temperature are then adjusted to ensure passenger comfort.
[0007] However, this device must be calibrated and developed in order to determine the precise position of the flow sensors in order to have measurements representative of the overall clogging of the filter. Indeed, an inappropriate position of the sensors presents the risk of sending back erroneous information which will therefore involve an incorrect flow setting leading to discomfort for the passengers.
[0008] The aim of the invention is to propose a ventilated passenger compartment comprising a more reliable ventilation device, making it possible to improve passenger comfort.
[0009] To this end, the invention relates to a ventilated passenger compartment comprising an interior ventilated space and a ventilation device, in which the ventilated passenger compartment comprises at least one closed-loop air circuit defined through the ventilation device and the interior ventilated space and in which the ventilation device comprises a fan for moving the air in the closed-loop air circuit and a fan speed control unit, the control unit being capable of varying the fan speed to ensure a constant set flow rate, of the aforementioned type. According to the invention, the ventilation device comprises a sensor for measuring a pressure difference between two measurement points of the closed-loop air circuit, the control unit being capable of setting the fan speed as a function of the pressure difference measurement.
[0010] According to particular embodiments, the passenger compartment comprises one or more of the following characteristics:
[0011] - The ventilation device comprises at least one filter in the air circuit in closed loop.
[0012] - The pressure difference measuring sensor is suitable for measuring this pressure difference between the inlet and outlet of the ventilation device fan.
[0013] - The control unit comprises a memory storing function curves fan operation giving the pressure difference between the same two measuring points of the closed-loop air circuit as a function of the air flow rate for different constant fan rotation speeds and circuit characteristic curves giving the pressure difference between the same two measuring points of the closed-loop air circuit as a function of the air flow rate imposed by the fan for different operating states of the ventilation device.
[0014] - The control unit is suitable for, when the measured pressure difference varies beyond a predetermined variation range from a reference pressure difference value: - define the characteristic curve of the circuit corresponding to the current operating state which, for the measured pressure difference, gives a theoretical flow rate equal to the flow rate given by the current operating curve of the fan corresponding to the current speed for the measured pressure difference; then - define the target operating curve of the fan corresponding to a target speed which, for the set flow rate, gives a target pressure difference equal to the pressure difference given by the updated characteristic curve of the circuit corresponding to the current operating state for the set flow rate; then - set the value of the reference pressure difference to the value given by the target operating curve of the fan for the target speed for the set flow rate; then
[0015] setting the current fan rotation speed to the target speed corresponding to the target operating curve of the fan. - The ventilated space is part of a railway vehicle.
[0016] The invention also relates to a method for ventilating a ventilated passenger compartment comprising an interior ventilated space and a ventilation device, in which the ventilated passenger compartment comprises at least one closed-loop air circuit defined through the ventilation device and the interior ventilated space and in which the ventilation device comprises a fan for moving the air in the closed-loop air circuit, the method comprising the steps of:
[0017] - vary the fan speed to ensure a constant set flow rate from a fan speed control unit, characterized in that the method comprises the following steps:
[0018] - measure a pressure difference between two measuring points of the air circuit in closed loop; and
[0019] - set the fan speed based on the pressure difference measurement.
[0020] According to particular embodiments, the method comprises one or more of the following characteristics:
[0021] - The control unit comprises a memory storing function curves operation of the fan giving the pressure difference between the same two measuring points of the closed-loop air circuit as a function of the air flow rate for different constant fan rotation speeds and characteristic curves of the circuit giving the pressure difference between the same two measuring points of the closed-loop air circuit as a function of the air flow rate imposed by the fan for different operating states of the ventilation device and characterized in that, when the measured pressure difference varies beyond a predetermined variation range from a reference pressure difference value, the method comprises the steps of: - define the characteristic curve of the circuit corresponding to the current operating state which, for the measured pressure difference, gives a theoretical flow rate equal to the flow rate given by the current operating curve of the fan corresponding to the current speed for the measured pressure difference; then - define the target operating curve of the fan corresponding to a target speed which, for the set flow rate, gives a target pressure difference equal to the pressure difference given by the characteristic curve ac technicalization of the circuit corresponding to the current operating state for the set flow rate; then - set the value of the reference pressure difference to the value given by the target operating curve of the fan for the target speed for the set flow rate; then - set the current fan rotation speed to the target speed corresponding to the target fan operating curve.
[0022] The invention will be better understood on reading the following description, given solely by way of example and with reference to the drawings in which:
[0023] - [Fig.l] [Fig.l] is a schematic view of the ventilated passenger compartment;
[0024] - [Fig.2] [Fig.2] is a graph grouping operating curves and characteristic curves of the ventilated passenger compartment;
[0025] - [Fig.3] [Fig.3] is a flowchart of the operating steps of the passenger compartment ventilated.
[0026] [Fig.l] shows a ventilated passenger compartment 10 inside a vehicle, in particular a railway vehicle. The ventilated passenger compartment 10 comprises an interior ventilated space 12, adapted to accommodate passengers, and a device 14 for ventilating this space.
[0027] The ventilation device 14 is connected at the outlet to the interior ventilated space 12 by ventilation ducts 16 provided with ventilation outlets 18. The ventilation outlets 18 are arranged along the length of the ventilation ducts 16.
[0028] The ventilation device 14 is also connected at the inlet to the interior ventilated space 12 by a ventilation inlet 20. In this embodiment, the ventilation inlet 20 is extended by a ventilation channel 22.
[0029] The ventilation device 14 comprises a fan 23 for moving the air from its inlet 20 to its outlets 18. The fan 23 is advantageously a motor-driven fan or more particularly a motor-driven fan with integrated variable frequency.
[0030] In another embodiment, the ventilation device 14 comprises an integrated variable frequency compressor.
[0031] The ventilated passenger compartment 10 thus defines a closed-loop air circuit 24 passing through the ventilation device 14 and the interior ventilated space 12. Following this closed-loop air circuit, the air is injected through the outlets 18 into the space 12 from which it emerges through the inlet 20 to enter the ventilation device 14 where it circulates through the channel 22 to the fan 23 which reinjects the air into the ducts 16.
[0032] Advantageously, a refrigeration and / or heating system is integrated into the circuit 24 in the ventilation device 14.
[0033] The ventilation device 14 comprises a fresh air inlet 26. The fresh air inlet 26 opens into the channel 22 upstream of the fan 23 and downstream of the inlet 20. The fresh air inlet 26 is in particular in communication with the exterior of the railway vehicle.
[0034] The fan 23 is therefore supplied, on the one hand, from the fresh air inlet 26 and, on the other hand, from the ventilation inlet 20 in communication with the ventilated space 12.
[0035] The ventilation device 14 comprises at least one filter 27 in the closed-loop air circuit 24. The filter 27 is positioned, for example, at the ventilation inlet 20. A filter 28 is also advantageously positioned at the fresh air inlet 26.
[0036] Each filter 27, 28 is made of a material that limits the passage of certain particles, in particular dust particles. The filter 27 is one of the main causes of fouling of the ventilation device 14.
[0037] The fan 23 is electrically connected to a unit 30 for controlling the speed of the fan 23. The control unit 30 comprises a storage memory and a microprocessor capable of implementing the algorithm which will be described later with reference to [Fig. 3].
[0038] The ventilation device 14 also comprises an electrical converter 32 electrically connected between the control unit 30 and the fan 23 allowing the control unit 30 to control the rotation speed of the fan 23.
[0039] The ventilation device 14 comprises a sensor 34 for measuring the pressure difference APm between two points of the loop air circuit 24. The measuring sensor 34 is connected to the control unit 30.
[0040] The pressure difference sensor 34 comprises, for example, two pressure probes 34A and 34B placed respectively at the inlet and outlet of the fan 23 and a subtractor for calculating the difference between the values obtained by the probes 34A, 34B.
[0041] The control unit 30 is capable of defining and imposing the speed of the fan 23 via the converter 32. The control unit 30 is capable of defining the speed of the fan 23 to ensure a constant set flow rate Qvc, as a function of the measurement of the measured pressure difference APm measured by the sensor 34.
[0042] When the measured pressure difference APm varies beyond a predetermined variation range from a reference pressure difference value APa, the control unit 30 is able to determine a new rotation speed of the fan 23 ensuring the constant set flow rate Qvc.
[0043] In one embodiment, the predetermined variation range is of the order of 5%. Indeed, it is appropriate to define a range that is sufficiently precise to adapt the flow rate in a relevant manner without, however, being too fine, which would result in the flow rate being adapted too closely together. This would lead to over-stressing the fan 23 and therefore reducing its lifespan.
[0044] The memory of the control unit 30 comprises curves Cva, Cvb of operation of the fan 23 expressing the pressure difference AP between the inlet and the outlet of the fan as a function of the air flow rate Qv for a constant speed of rotation of the fan 23.
[0045] The memory also includes curves Ci, Q characteristic of the circuit 24 expressing the pressure difference AP measured between the inlet and the outlet of the fan 23 as a function of the air flow rate Qv for the same operating state of the circuit 24.
[0046] An operating state of the ventilation device 14 is characterized by the state of wear or fouling at the level of the entire air circuit 24.
[0047] [Fig. 2] shows examples of curves stored in the memory of the control unit 30. The graph represents the pressure difference AP between the inlet and the outlet of the fan as a function of the flow rate Qv, the flow rate Qv being variable due to the variation in speed of the fan and the operating state of the circuit. The operating curves Cva, Cvb of the fan 23 correspond to a constant speed Va and Vb respectively and the characteristic curves Ci, Q of the circuit 24 each correspond to a lasting operating state i, j.
[0048] These curves are obtained experimentally by measurements carried out on the circuit after the manufacture of the ventilated passenger compartment and on the fan before assembly.
[0049] A method of operating the ventilated passenger compartment 10 is now described with reference to [Fig.3].
[0050] The pressure difference measuring sensor 34 provides information on the pressure difference to the control unit 30.
[0051] The measuring sensor 34 operates continuously and provides new pressure difference values at a predetermined frequency.
[0052] From the operating curves of the fan 23 and the characteristic curves of the circuit 24 stored in the memory of the control unit 30, the control unit 30 adjusts the speed of the fan 23 to a target speed.
[0053] These adjustments are made only when the measured pressure difference APm goes outside the predetermined variation range so that successive operating phases follow one another, during each of which the fan 23 is controlled to rotate at a constant speed Va specific to the phase considered and with a constant reference pressure difference APa.
[0054] The term "current" characterizes the elements at the present time during the process in the current phase. The term "target" corresponds to the elements in the next phase.
[0055] It is assumed as indicated in step 96, that the fan 23 rotates at the constant speed Va under the control of the control unit 30 and the reference pressure difference APa is stored.
[0056] The speed Va was defined from the stored curves C; and Cva, which led at the start of the current phase to a set flow rate Qvc for a reference pressure difference APa as illustrated by point A in [Fig.2].
[0057] In step 98, the difference between the measured pressure difference APm and the current reference pressure difference APa is compared to the reference pressure difference APa.
[0058] As long as the current measured pressure difference APm is contained within a predetermined variation range around the reference pressure difference value APa, and in particular as long as the measured pressure difference APm exhibits an increase of less than 5% compared to the reference pressure difference value APa, the fan 23 maintains its rotation speed.
[0059] When the measured pressure difference APm goes outside the predetermined variation range depending on the pressure difference reference value APa, and in particular when the measured pressure difference APm has an increase of more than 5% compared to the pressure difference reference value APa, the control unit 30 successively performs the following steps illustrated in [Fig.3].
[0060] In step 100, the characteristic curve Cj of the circuit 24 corresponding to the current reference operating state is defined. For this purpose, a point B is defined on the current operating curve Cva corresponding to the rotation speed of the fan Va. Point B is the point on the current operating curve Cva corresponding to the current measured pressure difference APm.
[0061] Point B represents an intermediate state in which the ventilation device 14 operates at a theoretical flow rate Qvt.
[0062] The so-called updated characteristic curve Cj defined in step 100 is the stored characteristic curve passing through point B or the characteristic curve closest to point B which, for the measured pressure difference APm, gives a theoretical flow rate Qvt equal to the flow rate given by the current operating curve Cva of the fan 23 corresponding to the current speed Va for the measured pressure difference APm.
[0063] In step 200, a target operating curve Cvb of the fan 23 is defined. For this purpose, the operating point C is defined on the updated characteristic curve Cj for the set flow rate Qvc. The defined target operating curve Cvb is the stored operating curve which passes through point C or the operating curve closest to point C.
[0064] The target operating curve Cvb thus corresponds to the target speed Vb which, for the set flow rate Qvc, gives a target pressure difference APb equal to the pressure difference given by the updated characteristic curve of the circuit Cj corresponding to the current operating state for the set flow rate Qvc.
[0065] In step 300, the target rotation speed Vb of the fan 23 corresponding to the target operating curve Cvb of the fan is identified from the information stored in the memory of the control unit 30.
[0066] In step 400, the target pressure difference APb corresponding to the value given by the target operating curve Cvb of the fan 23 for the target speed Vb and for the set flow rate Qvc is identified.
[0067] In step 500, an update of the information contained in the memory of the control unit 30 is carried out.
[0068] The reference value of the pressure difference APa in the memory of the control unit 30 is updated and replaced by the value of the target pressure difference APb corresponding to the value given by the target operating curve Cvb for the set flow rate Qvc.
[0069] The value of the current rotation speed Va of the fan 23 in the memory of the control unit 30 is also updated and replaced by the value of the target speed Vb corresponding to the target operating curve Cvb of the fan 23.
[0070] The control unit 30 then controls the rotation of the fan 23 at the new current speed Go to step 96.
[0071] The ventilated passenger compartment 10 has the advantage of permanently ensuring a constant flow rate allowing passenger comfort.
[0072] The pressure measurement at the terminals of the fan 23 makes it possible to monitor the entire air circuit while limiting external disturbances.
[0073] The implementation of this system will guarantee optimum passenger comfort. Indeed, the blown air flow will remain constant, avoiding loss of flow, which will avoid compensating for the loss of flow by variations in blowing temperature. The temperature gradients will therefore not be degraded over time. In addition, in the event of a significant pressure drop, the loss of flow could no longer be compensated by adjusting the blowing temperature, which would reduce the available power and therefore lead to a drift in the average interior temperature, thus moving away from the ideal temperature, creating discomfort, unlike the system described previously.
Claims
Claims
1. Ventilated passenger compartment (10) comprising an interior ventilated space (12) and a ventilation device (14), wherein the ventilated passenger compartment (10) comprises at least one closed-loop air circuit (24) defined through the ventilation device (14) and the interior ventilated space (12) and wherein the ventilation device (14) comprises a fan (23) for moving the air in the closed-loop air circuit (24) and a control unit (30) for the speed of the fan (23), the control unit (30) being capable of varying the speed of the fan (23) to ensure a constant set flow rate (Qvc), characterized in that the ventilation device (14) comprises a sensor (34) for measuring a pressure difference (APm) between two measurement points of the closed-loop air circuit (24),the control unit (30) being capable of setting the speed of the fan (23) as a function of the pressure difference measurement (APm) and in that the control unit (30) comprises a memory storing operating curves of the fan (23) giving the pressure difference between the same two measuring points of the closed-loop air circuit (24) as a function of the air flow rate for different constant rotation speeds of the fan (23) and characteristic curves of the circuit (24) giving the pressure difference between the same two measuring points of the closed-loop air circuit (24) as a function of the air flow rate imposed by the fan (23) for different operating states of the ventilation device (14).,
2. A ventilated passenger compartment (10) according to claim 1, wherein the ventilation device (14) comprises at least one filter (27) in the closed-loop air circuit (24).
3. Ventilated passenger compartment (10) according to any one of the preceding claims, in which the sensor (34) for measuring the pressure difference is capable of measuring this pressure difference (APm) between the inlet and the outlet of the fan (23) of the ventilation device (14).
4. Ventilated passenger compartment (10) according to any one of the preceding claims, in which the control unit (30) is capable of, when the measured pressure difference (APm) varies beyond a predetermined variation range from a reference pressure difference value (APa): - defining the characteristic curve (Q) of the circuit (24) cor- corresponding to the current operating state which, for the measured pressure difference (APm) gives a theoretical flow rate (Qvt) equal to the flow rate given by the current operating curve (Cva) of the fan (23) corresponding to the current speed (Va) for the measured pressure difference (APm); then - define the target operating curve (Cvb) of the fan (23) corresponding to a target speed (Vb) which, for the set flow rate (Qvc) gives a target pressure difference (APb) equal to the pressure difference given by the updated characteristic curve (Q) of the circuit (24) corresponding to the current operating state for the set flow rate (Qvc); then - set the value of the reference pressure difference to the value (APb) given by the target operating curve (C vb) of the fan (23) for the target speed (Vb) for the set flow rate (Qvc);then - set the current rotation speed of the fan (23) to the target speed (Vb) corresponding to the target operating curve (Cvb) of the fan (23).;
5. A ventilated passenger compartment (10) according to any preceding claim, wherein the ventilated space (12) is part of a railway vehicle.
6. A method of ventilating a ventilated passenger compartment (10) comprising an interior ventilated space (12) and a ventilation device (14), wherein the ventilated passenger compartment (10) comprises at least one closed-loop air circuit (24) defined through the ventilation device (14) and the interior ventilated space (12) and wherein the ventilation device (14) comprises a fan (23) for moving the air in the closed-loop air circuit (24),and wherein the control unit (30) comprises a memory storing operating curves of the fan (23) giving the pressure difference between the same two measuring points of the closed-loop air circuit (24) as a function of the air flow rate for different constant rotation speeds of the fan (23) and characteristic curves of the circuit (24) giving the pressure difference between the same two measuring points of the closed-loop air circuit (24) as a function of the air flow rate imposed by the fan,
7. (23) for different operating states of the ventilation device (14), the method comprising the steps of: - varying the speed of the fan (23) to ensure a constant set flow rate (Qvc) from a control unit (30) of the speed of the fan (23), characterized in that the method comprises the following steps: - measure a pressure difference (APm) between two measuring points of the closed-loop air circuit (24); and - set the fan speed (23) according to the pressure difference measurement (APm). Ventilation method according to claim 6, characterized in that, when the measured pressure difference (APm) varies beyond a predetermined variation range from a reference pressure difference value (APa), the method comprises the steps of: - define the characteristic curve (Q) of the circuit (24) corresponding to the current operating state which, for the measured pressure difference (APm) gives a theoretical flow rate (Qvt) equal to the flow rate given by the current operating curve (Cva) of the fan (23) corresponding to the current speed (Va) for the measured pressure difference (APm); then - define the target operating curve (Cvb) of the fan (23) corresponding to a target speed (Vb) which, for the set flow rate (Qvc) gives a target pressure difference (APb) equal to the pressure difference given by the updated characteristic curve (Q) of the circuit (24) corresponding to the current operating state for the set flow rate (Qvc); then - set the value of the reference pressure difference to the value (APb) given by the target operating curve (C vb) of the fan (23) for the target speed (Vb) for the set flow rate (Qvc); then - set the current rotation speed of the fan (23) to the target speed (Vb) corresponding to the target operating curve (Cvb) of the fan (23).