DK2962586T3 - Helmet with position feedback - Google Patents

Helmet with position feedback Download PDF

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Publication number
DK2962586T3
DK2962586T3 DK14175695.7T DK14175695T DK2962586T3 DK 2962586 T3 DK2962586 T3 DK 2962586T3 DK 14175695 T DK14175695 T DK 14175695T DK 2962586 T3 DK2962586 T3 DK 2962586T3
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DK
Denmark
Prior art keywords
helmet
rider
xref
sensor unit
sensor
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Application number
DK14175695.7T
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Danish (da)
Inventor
Bruyne Guido De
Alvaro Navarra
Waes Sean Van
Original Assignee
Lazer Sport Nv
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Classifications

    • AHUMAN NECESSITIES
    • A42HEADWEAR
    • A42BHATS; HEAD COVERINGS
    • A42B3/00Helmets; Helmet covers ; Other protective head coverings
    • A42B3/04Parts, details or accessories of helmets
    • A42B3/0406Accessories for helmets
    • A42B3/0433Detecting, signalling or lighting devices
    • AHUMAN NECESSITIES
    • A42HEADWEAR
    • A42BHATS; HEAD COVERINGS
    • A42B3/00Helmets; Helmet covers ; Other protective head coverings
    • A42B3/04Parts, details or accessories of helmets
    • A42B3/0493Aerodynamic helmets; Air guiding means therefor

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  • Physics & Mathematics (AREA)
  • Fluid Mechanics (AREA)
  • Helmets And Other Head Coverings (AREA)

Description

DESCRIPTION
Technical Field [0001] The present invention concerns a sports helmet, in particular a helmet providing feedback to a wearer for improved aerodynamics.
Background for the Invention [0002] Time trial cycling is a very specific cycling discipline wherein aerodynamics is a very important key to success and wherein aerodynamics is highly dependent on the position and posture of a rider on his bike. Time trial helmets are designed specifically for minimizing drag of the rider during cycling and have proven their efficiency, such a helmet is known from DE 10 2012 214 061 A1.
[0003] However, the position of the time trial helmet in view of the riding direction is critical for minimizing drag, as a non-optimal position of the helmet will have a negative impact on the drag of the rider.
[0004] Cyclists specializing in time trial cycling spent a lot of time and effort in improving their position including their head position when on the bike to identify the best position and to develop themselves to adopt and maintain that optimal position vdien riding.
[0005] Exercising is often performed by trial and error methods such as training in a velodrome, recording the ride and subsequently analysing the recorded images with specific image analysis software to compute the optimal position that is communicated to the rider who can adjust his position in a subsequent ride or during training on rolls. Other methods include driving down a hill and adjusting the head position to find the position resulting in the fastest down hill times, whereby the head position is filmed or registered by sensors provided on the cyclist's head. By repeating this exercise over and over again, the cyclist literally customises himself to adopt the most efficient head position. Other methods included training in wind tunnels and measuring the drag by means of sensors provided on the helmet or by means of camera's allowing determining the air movement around the cyclist's head.
[0006] Such exercises are very time consuming, have a slow learning curve and are expensive due to the need of people surveying the cyclist during the exercise to conduct the measurement and interpret the results. On top of the above facts it is necessary to repeat the exercise when changing bike or helmet to customise the cycler to a readjusted position.
[0007] From the above it is clear that there is a need for time trial helmets providing instant feedback to a cyclist for adjusting his heads position for improved aerodynamics.
[0008] US5158089 discloses a headband comprising a sensor for determining and instant informing a wearer of his head's position in view of the saggital plane, to improve his posture and wellbeing.
[0009] US200401 71969 discloses a helmet comprising motion and/or position sensors and an indicator to provide the wearer with a recognizable feedback signal indicative of head or motion position.
Summary of the Invention [0010] The present invention is defined in the independent claims. Preferred embodiments are defined in the dependent claims. In particular the invention concerns a 1. A system for optimizing a rider's head position during riding, said system comprising: a helmet comprising: • an outer casing designed to have a predetermined direction Xref wherein said helmet has a drag (coefficient) lower than the drag (coefficient) of said helmet in any other direction; • a sensor unit integrated in the helmet enabling determining a value corresponding to the angle a between a measured direction Xi and the predetermined direction Xref defined in the plane defined by the field of gravity and the direction X-|; an output unit, providing an output signal to the helmet wearer in function of the value determined by the sensor unit allowing the rider to immediately adapt the head position to regain the optimum position with lowest drag, in which X-| corresponds to XREFand hence the angle a equals 0°.
[0011] The helmet preferably is a cycling helmet; skiing helmet or snow-board helmet, or equestrian or motorcycle helmet and in particular a time trial cycling helmet, road cycling helmet or triathlon helmet [0012] The system further preferably comprises a sensor determining the inclination of the surface whereon the rider rides in the direction of the movement. In a even more preferred embodiment the system comprises at least three sensors, one integrated in the helmet, on to be provided on the rider, separate from the helmet and one to be provided on the vehicle of the rider, allowing determining the relative position of the rider and it's helmet in view of the vehicle.
[0013] Potentially the system further comprises at least one sensor allowing determining the wind direction in view of the helmets position and potentially also the forward speed of the rider.
[0014] The helmet may comprise a signal emitter for emitting an output signal to the output unit providing visual, audio and/or tactile feedback.
[0015] According to an alternative embodiment the system comprises a weight movably mounted in a tail of the helmet and an actuation and guiding means allowing moving the weight in said tail in view of the output of the sensor unit.
Brief Description of the Figures [0016] Figure 1 schematically illustrates a time trial helmet with a system according to the present invention.
Definitions [0017] Drag coefficient: The drag coefficient Cd is defined as:
where:
Fq is the drag force, which is by definition the force component in the direction of the flow velocity, p is the mass density of the fluid, vis the speed of the object relative to the fluid and A is the reference area.
Detailed Description of a Preferred Embodiment [0018] Figure 1 schematically represents a time trial cycling helmet 1 for safeguarding a rider's head from head injury, yet comprising a outer casing designed such as lower the drag of the rider during racing.
[0019] It is known to design such helmet 1 with an outer casing 2 to have a preferential orientation during racing, in which position the casing design has a minimal drag coefficient and improves (lowers) drag of the rider during the race. For optimal effect, the rider should maintain his head in a position corresponding to the best position of the helmet for maximal gain.
[0020] The optimum orientation of the helmet in view of the moving direction thereof is defined by a direction Xref. wherein said helmet has a drag (coefficient) lower than the drag (coefficient) of said helmet in any other direction.
[0021] In order to continuously assist the rider in maintaining his head in a optimal (lowest drag) position, the present invention concerns a system comprising at least one sensor unit 3 integrated in or provided on the helmet. The sensor unit, in its most basic form concerns an inclination sensor (mechanical or electronic) allowing determining a value corresponding to the angle a between the X\ direction and a predetermined direction Xref defined in the plane defined by the field of gravity and the direction X). It is clear that for optimum drag conditions, the helmet should be worn according to the helmet's safety guidelines. The Xref direction in that case points towards the horizon in front of the rider when the helmet is worn according these safety guidelines that are described in eg EN1078:2012, CPSC 1203 or AS-NZS 2063.
[0022] In accordance with the present invention the system also comprises an output unit 4 allowing providing an output signal based on the value determined by use of the sensor, the output unit can be integrated in the helmet or can be separate therefrom and provides direct feedback to the rider allowing the rider to immediately adapt his heads position in view of the output signal to regain his optimum position with lowest drag on the bike, in winich position X-| corresponds to Xref and hence the angle a equals 0°.
[0023] The output signal can be visualised to the rider, eg. on his eyewear or can be provided as an audio signal or a vibration on the rider's skin.
[0024] As represented in figure 3, the sensor 3 unit comprises a housing 5 defining an internal cavity wherein a ball 6 is provided that is free to roll in the cavity. The cavity is delimited by a curved wall section 7 whereon the ball rolls when the helmet is worn according to the safety guidelines in normal conditions (rider sitting on his bike).
[0025] At at least one, but preferably two sides of the internal cavity, in the X-| direction, sensors 8 are provided that generate an output signal on contacting the ball. As such when the helmet tilts in view of the field of gravity in the X-| direction and the angle a between X-| and Xref increases, the ball rolls in that direction and wll contact one of the two sensors 8 thereby actuating one of the sensors to generate a signal that is translated in a real-time output to the rider.
[0026] It is clear that the slope of the curved wall section 7 and position of the sensors 8 in the cavity of the sensor unit 3 will determine the threshold value of the angle a over which X| may tilt in view of Xref before a signal is generated.
[0027] According to other embodiments the sensor unit comprises a gyroscope or an accelerometer allowing measuring tilting of the helmet in a plane defined by the direction X-| and the field of gravity as this is the most difficult angle for a rider to maintain during a race, ie. the inclination of the head in an upward and downward direction. Alternatively the sensor unit comprises IR distance sensors or sound sensors directed to the back of the rider when the helmet is worn according to its safety instructions. Such sensors allow computing the distance and position of the helmet relative to the rider's body, and as such determining or estimating a value corresponding to the angle a between the direction X| and a predetermined direction Xref- [0028] In accordance with another embodiment and as represented in figure 2, the system comprises at least two sensor units 3, 3', the first sensor unit 3 integrated in the helmet and a second sensor unit 3' to be provided on the rider, preferably on his back in close vicinity of the tail of the time trial helmet.
[0029] In this case both sensors units can be distance measuring units determining the distance between both sensor units, whereby the measured distance corresponds to a value indicating the direction X| and a pre-set distance corresponds to the value Xref- An output unit generating an output signal as part of the system will provide real-time feedback to the rider allowing maintaining or regaining his optimal lowest drag position during racing.
[0030] In yet another alternative embodiment the system comprises at least one sensor unit (an inclination sensor) integrated in or provided on the helmet and two sensor units separate from the helmet, one to be provided in a predetermined position on the riders body and one to be provided on a predetermined position on the bike, whereby the two separate sensor units allow indicating the position of the rider on his bike together with his head position. Such embodiment provides more information on the overall position of the rider and allows more detailed and extensive feedback for optimizing the rider's position during a race through the output unit.
[0031] In addition to the different embodiments of the system described above, additional sensor units can be provided on the helmet allowing real-time determining the wind direction and force acting on the helmet during a race and potentially also the forward speed of the rider (independent of the wind speed). The output from these additional sensor units can be processed and compared to test data generated with the helmet to determine the optimum Xref corresponding to the optimum orientation of the helmet under the given circumstances. The measured Xi value is in that case compared to a variable Xref that is most representative for the actual racing conditions and allows for a more precise feedback to the racer.
[0032] Another additional sensor unit that can be integrated in the system is an inclination sensor provided on the bike or a GPS receiver, allowing determining the inclination of the path whereon the rider rides. The values determined by such sensor units again allows for a more accurate determination of the Xref of the helmet in view of the racing conditions.
[0033] In the above described embodiments, the output unit can, apart from the real-time feedback as a visual, audio or vibration signal comprise an additional aid to the rider in terms of a mechanism changing the centre of mass of the helmet. Such output unit comprises an element of weight that is movably along the direction X1, integrated in the tail of the time trial helmet. The actuation of the movement is preferably a motor that is controlled by the sensor units (including a processor) of the system according to the present invention. By changing the centre of mass of the helmet, one can increase the comfort of the rider while maintaining his head in an optimum low drag position during racing.
[0034] The use of a system according to the present invention comprises determining the Xref °f the helmet for a given rider. Such determination will usually be done in a wind tunnel or by extensive on road testing. Once the Xref is determined it is stored in the system for comparison with real time measurements of the X-| direction.
[0035] In case the system comprises a multitude of sensor units allowing determining racing conditions, Xref f°r a specific rider with his helmet is ideally determined under a broad variety of conditions, such that for each of these conditions the optimum Xref is available to the system and can be compared to the real time measured Xj.
[0036] Although described above as a system for optimizing a rider's head position during riding with a time trial helmet, it is clear that the system according to the present invention can be used with a multitude of helmets, such as other types cycling helmets, including triathlon, skiing helmets or snow-boarding helmets.
REFERENCES CITED IN THE DESCRIPTION
This list of references cited by the applicant is for the reader's convenience only. It does not form part of the European patent document. Even though great care has been taken in compiling the references, errors or omissions cannot be excluded and the EPO disclaims all liability in this regard.
Patent documents cited in the description • DE102012214061A1 (00021 • US5158089A [0008] • US2004Q1H969A Γ00091

Claims (10)

1. System til optimering af en rytters hovedposition under kørsel, hvilket system omfatter: en hj elm, der omfatter: et ydre hus designet til at have en forhåndsbestemt retning Xref, hvor hjelmen har en modstand (koefficient), der er lavere end modstanden (koefficient) for hjelmen i en hvilken som helst anden retning; en sensorenhed integreret i hjelmen, der muliggør bestemmelse af en værdi svarende til vinklen α mellem en målt retning Xi og forhåndsbestemt retning Xref defineret i planet defineret af tyngdekraftsfeltet og retningen Xi; en udgangsenhed, der tilvejebringer et udgangssignal til bæreren af hjelmen som en funktion af værdien bestemt af sensorenheden, der gør det muligt for rytteren øjeblikkeligt at tilpasse hovedpositionen for at genfinde den optimale position med laveste modstand, hvori Xi svarer til Xref og vinklen a dermed svarer til 0°.A system for optimizing a rider's head position while driving, which system comprises: a helmet comprising: an outer housing designed to have a predetermined direction Xref, wherein the helmet has a resistance (coefficient) lower than the resistance ( coefficient) for the helmet in any other direction; a sensor unit integrated in the helmet which enables determination of a value corresponding to the angle α between a measured direction Xi and predetermined direction Xref defined in the plane defined by the gravitational field and the direction Xi; an output unit which provides an output signal to the helmet wearer as a function of the value determined by the sensor unit which allows the rider to immediately adjust the head position to find the optimum position with the lowest resistance, wherein Xi corresponds to Xref and the angle a thus corresponds to 0 °. 2. System ifølge krav 1, hvor hjemlen er en sportshjelm.The system of claim 1, wherein the seat is a sports helmet. 3. System ifølge krav 1 og 2, hvor hjemlen er en cykelhjelm; skihjelm eller snowboard-hjelm, eller ride- eller motorcykelhjelm.The system of claims 1 and 2, wherein the seat is a bicycle helmet; ski helmet or snowboard helmet, or riding or motorcycle helmet. 4. System ifølge krav 1, hvor hjemlen er en tidskørselscykelhjeml, triatlonhjelm eller hjelm til landevejscykling.The system of claim 1, wherein the home is a time-travel bicycle brake, triathlon helmet or road bike helmet. 5. System ifølge krav 1, der omfatter en sensor, der bestemmer hældningen af overfladen, hvorpå rytteren kører i bevægelsesretningen.The system of claim 1, comprising a sensor which determines the inclination of the surface upon which the rider is traveling in the direction of motion. 6. System ifølge krav 1, der omfatter mindst tre sensorer, én integreret i hjelmen, én til at blive tilvejebragt på rytteren, adskilt fra hjelmen og én til at blive tilvejebragt på rytterens køretøj, der gør det muligt at bestemme rytterens den relative position for rytteren og hjelmen i forhold til køretøjet.The system of claim 1 comprising at least three sensors, one integrated into the helmet, one to be provided on the rider, separate from the helmet, and one to be provided on the rider's vehicle enabling the rider to determine the relative position of the rider. the rider and helmet in relation to the vehicle. 7. System ifølge krav 1, der omfatter mindst én sensor, der gør det muligt at bestemme vindretningen i forhold til hjelmens position.The system according to claim 1, comprising at least one sensor which allows the wind direction to be determined in relation to the position of the helmet. 8. System ifølge krav 1, hvor hjelmen omfatter en signalemitter til at udsende et udgangssignal til udgangsenheden.The system of claim 1, wherein the helmet comprises a signal emitter for transmitting an output signal to the output device. 9. System ifølge krav 3, der omfatter et vægtelement, der er bevægeligt monteret i et bagområde af hjelmen, og et aktiverings- og styremiddel, der muliggør bevægelse af vægten i bagområdet i forhold til udgangen fra sensorenheden.The system of claim 3, comprising a weight element movably mounted in a rear region of the helmet, and an actuating and controlling means allowing movement of the weight in the rear region relative to the output of the sensor unit. 10. Anvendelse af en hjelm, der omfatter et ydre hus, en sensorenhed og udgangsenhed til at tilvejebringe et udgangssignal til bæreren af hjelmen som en funktion af en værdi bestemt af sensorenheden; og hvor værdien svarer til vinklen mellem en målt retning Xi og en forhåndsbestemt retning Xref defineret i planet defineret af tyngdekraftsfeltet og retningen Xi; og hvor den forhåndsbestemte retning Xref svarer til en position for hjelmen med den laveste modstand.Use of a helmet comprising an outer housing, a sensor unit and an output unit to provide an output signal to the wearer of the helmet as a function of a value determined by the sensor unit; and wherein the value corresponds to the angle between a measured direction Xi and a predetermined direction Xref defined in the plane defined by the gravitational field and the direction Xi; and where the predetermined direction Xref corresponds to a position of the helmet with the lowest resistance.
DK14175695.7T 2014-07-03 2014-07-03 Helmet with position feedback DK2962586T3 (en)

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EP14175695.7A EP2962586B8 (en) 2014-07-03 2014-07-03 Helmet providing position feedback

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* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP3269267B1 (en) * 2016-07-11 2019-03-27 Lazer Sport NV Ventilated helmet

Family Cites Families (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5158089A (en) 1991-07-05 1992-10-27 Swezey Robert L Posture-monitoring headband device
US5425378A (en) 1994-07-11 1995-06-20 Swezey; Robert L. Advanced posture-monitoring device
US6730047B2 (en) 1997-10-24 2004-05-04 Creative Sports Technologies, Inc. Head gear including a data augmentation unit for detecting head motion and providing feedback relating to the head motion
US6920229B2 (en) 1999-05-10 2005-07-19 Peter V. Boesen Earpiece with an inertial sensor
DE102004034469A1 (en) 2004-07-16 2006-02-16 Actimon Gmbh & Co. Kg Sensor system for detecting movement sequences and feedback arrangement
US7383728B2 (en) 2005-07-13 2008-06-10 Ultimate Balance, Inc. Orientation and motion sensing in athletic training systems, physical rehabilitation and evaluation systems, and hand-held devices
KR20110005380A (en) 2009-07-10 2011-01-18 김용언 System for warning sleepiness and eye-glasses installed the same
GB201007466D0 (en) 2010-05-05 2010-06-16 Degolier Eric Systems and methods of real-time calculation of total longitudinal force and areodynamic drag acting on a rider on a vehicle
US20120157243A1 (en) 2010-12-16 2012-06-21 Gallo Christopher J Football training aid and method
DE102012214061B4 (en) 2012-08-08 2015-03-19 Uvex Sports Gmbh & Co. Kg Time Trial Helmet

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EP2962586B8 (en) 2017-06-28
EP2962586B1 (en) 2017-01-25
ES2618356T3 (en) 2017-06-21
EP2962586A1 (en) 2016-01-06

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