Aspects and embodiments of the present disclosure are directed generally to child restraint systems, for example, child car seats, and to a side impact protection mechanism for car seats.
In accordance with some aspects of the present disclosure, there is provided a child restraint system. The child restraint system may include a shell including an upper portion and a lower portion. The upper portion of the shell may have an aperture formed therein. The child restraint system further may include a head support member disposed within at least a part of the upper portion. The child restraint system may include a bumper extending through the aperture in the upper portion.
In some embodiments, the bumper may be configured to contact a part of the head support member.
In some embodiments, the bumper embodies a rectangular-shaped cuboid in cross section. In some embodiments, the bumper includes a rigid material, a resilient material, a plastically deformable material, or a combination thereof. The bumper may have a length of about 3 inches to about 5 inches.
In some embodiments, the bumper is secured to the shell of the child restraint system. In particular embodiments, the bumper is secured to the shell by a component having at least one dimension greater than a dimension of the aperture of the shell. In further embodiments, the bumper is secured to the shell using a tether.
In some embodiments, the bumper includes an inner face and an outer face. The inner face may extend beyond an inner surface of the shell and the outer face may extend beyond an outer surface of the shell. In certain embodiments, the inner face and the outer face of the bumper may be connected by a shaft extending through the aperture. In some embodiments, the inner face of the bumper includes at least one linear dimension greater than the aperture of the shell.
In some embodiments, the inner face of the bumper protrudes about 0.5 inches to about 3 inches from the inner surface of the shell. In some embodiments, the inner face of the bumper is no more than about 0.2 inches from the head support member. In particular embodiments, the inner face of the bumper is not in contact with the portion of the head support member. In further embodiments, the outer face of the bumper may protrude about 1 inch to about 3 inches from the outer surface of the shell. The bumper may be configured to translate within the aperture of the shell to allow the inner face of the bumper to contact the head support member.
In some embodiments, the head support member may include wings disposed on opposing sides of a central portion, the wings having a front zone, a center zone, and a rear zone. The inner face of the bumper may be configured to contact any one of the front zone, center zone, and rear zone of one wing of the head support member. In further embodiments, the zone of the wing contactable by the inner face of the bumper may include a projection that substantially matches a profile of the inner face of the bumper.
In accordance with some aspects of the present disclosure, there is provided a child restraint system. The child restraint system may include a shell including an upper portion and a lower portion, the upper portion having an aperture formed therethrough. The child restraint system further may include a head support member disposed within the upper portion, the head support member including at least one wing. The child restraint system additionally may include a bumper disposed through the aperture and configured to contact a part of the at least one wing of the head support member.
In further embodiments, the bumper includes an inner face, an outer face, and shaft connecting the inner face to the outer face.
In accordance with some aspects of the present disclosure, there is provided a child restraint system. The child restraint system may include a shell including an aperture formed therein. The child restraint system further may include a head support member disposed within at least a portion of the shell. The child restraint system additionally may include a bumper configured to extend through the aperture and contact a part of the head support member when a force is applied to the bumper.
In further embodiments, the bumper may include an inner face, an outer face, and shaft connecting the inner face to the outer face.
The accompanying drawings are not intended to be drawn to scale. In the drawings, each identical or nearly identical component that is illustrated in various figures is represented by a like numeral. For purposes of clarity, not every component may be labeled in every drawing. In the drawings:
This disclosure is not limited in its application to the details of construction and the arrangement of components set forth in the following description or illustrated in the drawings. The disclosure is capable of other embodiments and of being practiced or of being carried out in various ways. Also, the phraseology and terminology used herein is for the purpose of description and should not be regarded as limiting. The use of “including,” “comprising,” “having,” “containing,” “involving,” and variations thereof herein is meant to encompass the items listed thereafter and equivalents thereof as well as additional items.
Conventional seat belt systems in most motor vehicles are typically not appropriate for properly restraining infants or small children. Accordingly, parents or caregivers of infants or small children often transport the infants or small children in a child restraint system, commonly referred as a car seat or child vehicle safety seat, when travelling in a motor vehicle, the use of which is required by law for children below a certain age or weight in many jurisdictions. The child restraint system may be secured to the back seat of a motor vehicle with a seat belt, for example, a three-point safety belt and/or other connectors such as ISOFIX® connectors or LATCH® systems. The child restraint system may be padded with different forms of energy absorbing resilient materials, which may reduce forces that a child riding in the child restraint system may be exposed to during a motor vehicle collision. Conventional child restraint systems have proven highly effective in reducing injuries to children which may otherwise have been sustained as a result of a motor vehicle collision. It has been recognized, however, that the side impact protection offered by many conventional child restraint system may be inadequate or at least may be improved upon. Regulations setting forth standards for side impact protection in child restraint systems have recently been enacted in Europe and similar regulations are expected to be enacted in the United States of America.
Current solutions for side impact protection in conventional child restraint systems have been shown to be ineffective at reducing the forces exerted on a child during a side impact event, particularly on a child's head and neck region. In a typical side impact event, the impacted door of the car contacts the shell of the conventional child restraint system, transferring those forces directly to the child. Thus, even for current child restraint systems with side impact protection, there is an insufficient reduction in the forces transferred to the head and neck of the child secured in said system, thus leading to injury. Provision of adequate levels of side impact protection in child restraint systems to meet such regulations has thus become of increasing importance, and it is an object of the present disclosure to provide a child restraint system which overcomes some or all of the known shortcomings in currently available systems.
Aspects and embodiments disclosed herein include a child restraint system including a structural element constructed and arranged to provide for side impact protection. In accordance with an aspect, a child restraint system may include a shell having an aperture, a head support member disposed with at least a portion of the shell, and a bumper configured to extend through the aperture. The bumper may be configured to contact part of the head support member when a force is applied to the bumper. Some embodiments of the system may include a bumper of unitary, i.e., single-piece, construction. Further embodiments of the system may include a bumper constructed of multiple components, each component being dimensioned to permit the bumper to translate in the aperture without coming free from the aperture or the shell of the child restraint system.
One embodiment of a child restraint system is illustrated in front and rear perspective views generally at 100 in
The shell 102 may be defined into an upper portion 102a through which aperture 103 is located therethrough and a lower portion 102b. As further illustrated in
Without wishing to be bound by any particular theory, the portions of the bumper 106 extending from the shell 102 may be impacted during a motor vehicle impact, causing it to translate within the aperture 103. The translation of the bumper 106 transfers all or part of the force from the impact to the head support member 104 rather than to the shell 102 of the child restraint system. In this configuration, the head of the child positioned in the child restraint system 100 begins to slow down in the earlier stages of the impact, distributing the force and subsequent pressure on the head support member 104. This distribution of force and pressure reduces the buildup of energy before the impact reaches the head support member 104.
As illustrated in
In some embodiments, the aperture 103 through the shell may have any suitable size and shape to accommodate the bumper 106. In general, the dimensions, e.g., diameter, of the aperture are sized to permit the bumper 106 or a portion of the bumper 106 to pass through without binding or interference of the bumper with the portions of the shell 102 forming the aperture 103. In this configuration, the aperture 103 may have a largest dimension that is up to about 10% larger than an outer dimension of the bumper 106. For example, the aperture 103 may have a dimension that is about 10% larger, about 9% larger, about 8% larger, about 7% larger, about 6% larger, about 5% larger, about 4% larger, about 3% larger, about 2% larger, or about 1% larger, than the corresponding dimension of the bumper 106 or portion of the bumper 106 passing through the aperture 103. In some embodiments, the aperture 103 may have an opening size of about 3 inches to about 5 inches. For example, the aperture may have an opening size of about 3 inches, about 3.25 inches, about 3.5 inches, about 3.75 inches, about 4 inches, about 4.25 inches, about 4.5 inches, about 4.75 inches, or about 5 inches.
In some embodiments, the aperture 103 and bumper 106 may be provided on both lateral sides of a child restraint 100, for example, as illustrated in
In some embodiments, the bumper 106 may include an outer face 106a and an inner face 106b. The outer face 106a may extend beyond an outer surface of the shell 102 and the inner face 106b may extend beyond an inner surface of the shell 102, e.g., towards the head support member 104. A bumper 106 of this configuration is illustrated in
In some embodiments, the head support member 104 may include wings 104a, 104b disposed on opposing sides of a central portion 104c of the head support member 104. The wings 104a, 104b may be configured to be contacted by the bumper 106 during a side impact collision. As described herein, during a side impact, the outer face 106a of the bumper 106 may be contacted by a portion of the vehicle, causing it to translate within the aperture 103. The translation causes the inner face 106b of the bumper 106 to contact the wing 104a or 104b of the head support member 104. Each wing 104a, 104b may include a front zone, a center zone, and a rear zone, and the bumper 106 and aperture 103 may be substantially aligned with one or more zones of the wings 104a, 104b of the head support member 104. Embodiments where the bumper 106 is configured to contact different zones of the head support member 104 are illustrated in
In some embodiments, the inner face of the bumper is no more than about 0.2 inches from the head support member. Without wishing to be bound by any particular theory, reducing the travel distance of the bumper before contact with the head support member reduces the force stack up on the head support member. Thus, in some embodiments, the inner face of the bumper is no more than about 0.05 inches, about 0.1 inches, about 0.15 inches, or about 0.2 inches from the head support member. Alternatively, the bumper in a rest position may be in contact with the head support member, i.e., 0 inches from the head support member. In this configuration, the bumper does not travel to contact the head support member when its opposing face is contacted during a side impact collision.
The bumper 106 may be of any size and shape that permits contact with a part of the head support member 104 to distribute the forces applied to the bumper 106 during a side impact collision. As illustrated in
Bumpers 106 disclosed herein may be manufactured from any number of different materials. In some embodiments, the bumper 106 may be manufactured from a rigid material, a resilient material, a plastically deformable material, or a combination thereof. Rigid materials include, but are not limited to, rigid polymers, rigid polymer blends, e.g., rigid copolymers, or metals and metal alloys. Resilient materials may include, but are not limited to, paper stock, e.g., corrugated cardboard, polymeric foams, e.g., expanded polypropylene (EPP), polymer blends, and rubber, which have resilient properties varying with material composition. A bumper 106 may be manufactured from a single material. Alternatively, a bumper 106 may be manufactured from combination of one or more materials, and different materials may be selected for different locations on the bumper 106.
As disclosed herein, the bumper 106 may be of unitary, i.e., single piece, construction that may have substantially constant dimensions along its length and/or width. An embodiment of a single piece bumper is illustrated in
In some embodiments, the inner face of bumper 106 may have a size and/or shape that substantially matches or corresponds to a point of contact or zone on the head support member 104. An example of such an embodiment is illustrated in
The bumper 106 may be secured to the shell 102 such that it cannot be removed from the shell 102. In some cases, the bumper 106 may be secured to the shell 102 using a tethered connection, such as by one or more pieces of fabric or an elastomeric material fastened to both the bumper 106 and shell 102. Alternatively, or in addition, the bumper 106 may be secured to the shell 102 by using the relative differences in size between one or more components of the bumper 106 and the aperture 103 of the shell 102, e.g., by an interference or friction fit. As described herein, and as illustrated in
Having thus described several aspects of at least one embodiment, it is to be appreciated various alterations, modifications, and improvements will readily occur to those skilled in the art. Any feature described in any embodiment may be included in or substituted for any feature of any other embodiment. Such alterations, modifications, and improvements are intended to be part of this disclosure and are intended to be within the scope of the invention. Accordingly, the foregoing description and drawings are by way of example only. Those skilled in the art should appreciate that the parameters and configurations described herein are exemplary and that actual parameters and/or configurations will depend on the specific application in which the disclosed methods and materials are used. Those skilled in the art should also recognize or be able to ascertain, using no more than routine experimentation, equivalents to the specific embodiments disclosed.
Number | Name | Date | Kind |
---|---|---|---|
7125073 | Yoshida | Oct 2006 | B2 |
7232182 | Yoshida | Jun 2007 | B2 |
7293828 | Yoshida | Nov 2007 | B2 |
7959223 | Marsden et al. | Jun 2011 | B2 |
8038209 | Marsden et al. | Oct 2011 | B2 |
8056971 | Marsden | Nov 2011 | B2 |
8056972 | Marsden | Nov 2011 | B2 |
8496293 | Gaudreau, Jr. | Jul 2013 | B2 |
9174555 | Rajasingham | Nov 2015 | B2 |
9211820 | Allen | Dec 2015 | B2 |
9908444 | Haas | Mar 2018 | B2 |
10118510 | McRoberts | Nov 2018 | B2 |
10500990 | Cohen | Dec 2019 | B2 |
10807721 | Bakhsh | Oct 2020 | B2 |
10829013 | Cohen | Nov 2020 | B2 |
20020153753 | Kassai | Oct 2002 | A1 |
20090008913 | Breuninger | Jan 2009 | A1 |
20100295344 | Marsden et al. | Nov 2010 | A1 |
20100295347 | Marsden et al. | Nov 2010 | A1 |
20110047685 | Ferrara | Mar 2011 | A1 |
20140117729 | Allen | May 2014 | A1 |
20160152164 | Hass | Jun 2016 | A1 |
20160304004 | Sandbothe | Oct 2016 | A1 |
20170065098 | Taylor et al. | Mar 2017 | A1 |
20170151894 | McRoberts et al. | Jun 2017 | A1 |
20170349065 | Pleiman | Dec 2017 | A1 |
20200130848 | Bakhsh | Apr 2020 | A1 |
Number | Date | Country |
---|---|---|
2368752 | Sep 2011 | EP |
2368753 | Sep 2011 | EP |
2570299 | Mar 2013 | EP |
2907692 | Aug 2015 | EP |
2575642 | Jan 2020 | GB |
2018109177 | Jun 2018 | WO |
Entry |
---|
International search Report and Written Opinion from corresponding PCT Application No. PCT/US2022/021534 dated Jun. 23, 2022. |
Number | Date | Country | |
---|---|---|---|
20220305974 A1 | Sep 2022 | US |