TECHNICAL FIELD OF THE INVENTION
[0001] In general, the present invention relates to toy bow and arrow systems, where a toy
bow is used to launch a toy arrow projectile into flight.
BACKGROUND ART
[0002] Bow and arrow sets that are designed for children's play have existed throughout
recorded history. In the modern era, toy bow and arrow sets typically have a plastic
molded bow, a string and safety-tipped arrows. To ensure safety, the functional design
of a toy bow is also commonly altered. In a real bow, the string has a fixed length.
The spring force used to launch an arrow comes from the flexing of the arms of the
bow. The problem with this design is its failure mode. If a bow is drawn beyond its
limit, then the arms or the string of the bow may break. Depending upon where the
breakage occurs, the broken string and/or bow may fly toward the person holding the
bow as the stored energy is accidentally released.
[0003] To reduce the likelihood of this hazard from occurring, many toy bows are manufactured
as static structures. An elastic string is used to create the arrow launching force.
If such a bow is overdrawn, there is no significant chance of the bow breaking. Rather,
the elastic string will break and will most likely move in a direction away from the
person drawing the bow. The failure mode of a string breaking is far less dangerous
than the failure mode of the bow breaking. However, the failure mode of a broken string
does present some danger depending upon where the elastic string breaks and how much
energy is stored in the elastic string at the time it breaks.
[0005] US2012060807 A1 represents the closest prior art for the present invention.
[0006] Many toy bows that have elastic strings use elastic strings that are made from a
synthetic polymer, such as silicon, TPR or some other synthetic rubber. On the toy,
such elastic strings are constantly under tension. As such, if the material of the
string creeps or degrades, the elastic string will break. This stops the toy bow from
being functional.
[0007] Most all plastic degrades in some fashion over time. However, it has been found that
one of the fastest ways to degrade the preferred polymers used for the bowstring is
to expose the bowstring to UV light. A bowstring that can last for months inside a
home may only last for a few days if taken outside and left in sunlight. A toy that
lasts for months is acceptable. A toy that last for days is not. Damage caused by
exposure to light has therefore caused products to be returned and/or consumer's dissatisfaction
with the toy manufacturer.
[0008] A need therefore exists for a toy bow and arrow design that inhibits degradation
in the elastic string caused by exposure to light. This need is met by the present
invention as described and claimed below.
DISCLOSURE OF THE INVENTION
[0009] The above objects are achieved by a toy bow assembly according to the appended independent
claim 1.
[0010] The present invention is a toy bow assembly that is used to launch toy projectiles.
The toy bow assembly includes a bow structure having a first arm section and a second
arm section. Both the first arm section and the second arm section have sheathed areas
that are protected from ambient light. A central area is disposed between the first
arm section and the second arm section.
[0011] A first elastic element is anchored to the first arm section. The first elastic element
extends through the first sheathed area into the central area, wherein the first sheathed
area shields the first elastic element from exposure to ambient light. Likewise, a
second elastic element is anchored to the second arm section. The second elastic element
extends through the second sheathed area and into the central area, wherein the second
sheathed area shields the second elastic element from exposure to ambient light. This
prevents the elastic elements from degrading due to exposure of UV light contained
in ambient light.
[0012] A toy projectile is provided that has extending hooks. The hooks on the projectile
engage the elastic elements. When the projectile is drawn back, the elastic elements
stretch and provide the spring energy needed to launch the projectile into flight
when it is released.
BRIEF DESCRIPTION OF THE DRAWINGS
[0013] For a better understanding of the present invention, reference is made to the following
description of an exemplary embodiment thereof, considered in conjunction with the
accompanying drawings, in which:
FIG. 1 is a perspective view of an exemplary embodiment of a toy bow and toy projectile
in combination;
FIG. 2 is a side cross-sectional view of the toy bow shown in Fig. 1;
FIG. 3 is a cross-sectional view of a pivot post shown in section 3 of Fig. 2; and
FIG. 4 shows a toy projectile engaging the loading loops within the central region
of the toy bow.
DETAILED DESCRIPTION FOR BEST MODE OF CARRYING OUT THE INVENTION
[0014] Although the present invention toy bow and arrow system can be embodied in many ways,
only one exemplary embodiment of the present invention system is illustrated. This
embodiment is selected in order to set forth the best mode contemplated for the invention.
The illustrated embodiment, however, is merely exemplary and should not be considered
a limitation when interpreting the scope of the appended claims.
[0015] Referring to Fig. 1, a bow and arrow system 10 is shown. The bow and arrow system
10 includes a bow structure 12 and at least one arrow projectile 14. The bow structure
12 is rigid. The force used to propel the arrow projectile 14 is provided by two separate
and distinct loading loops 16. The arrow projectile 14 has hook projections 20 that
engage both of the loading loops 16. Elastic elements 18 extend through the loading
loops 16. As a person engages an arrow projectile 14 with the loading loops 16 and
pulls on the arrow projectile 14, the elastic elements 18 in the loading loops 16
stretch. Since there are two loading loops 16, the elastic element 18 in each of the
loading loops 16 need only provide half the force needed to propel the arrow projectile
14 into flight. The elastic elements 18 are therefore difficult to overstretch in
the proper operation of the toy. Furthermore, should either of the elastic elements
18 or loading loops 16 suddenly break, the orientation of the broken elastic elements
18 prevents the elastic elements 18 or the loading loops 16 from whipping toward the
user. This dynamic is explained later in greater detail. Lastly, since the arrow projectile
14 engages two separate and distinct loading loops 16, the chances of the elastic
elements 18 in both loading loops 16 breaking simultaneously are highly improbable.
Accordingly, if one elastic element 18 breaks, the arrow projectile 14 will still
be engaged by the other loading loop 16 and the person pulling the arrow projectile
14 back will not pull the arrow projectile 14 into himself upon the breakage of the
one loading loop 16.
[0016] Referring to Fig. 2 in conjunction with Fig. 1, it can be seen that the bow structure
12 is a rigid molding. The bow structure 12 has a first end 22, a second end 24 and
a handle 26 in its central region. The handle 26 has a top end 25 and a bottom end
27. A first arm section 28 is supported above the top end 25 of the handle 26. Likewise,
a second arm section 30 is supported below the bottom end 27 of the handle 26. The
first arm section 28 and the second arm section 30 are oriented in a common vertical
plane. The handle 26 is offset from the common vertical plane so as not to interfere
with the path of the arrow projectile 14. This creates an open central region 15 between
the first and second arm sections 28, 30.
[0017] The first arm section 28 contains a sheath structure 35 that defines a first internal
compartment 37. The first internal compartment 37 has a bottom end 39 that faces toward
the open central region 15. Likewise, the second arm section 30 contains a sheath
structure 41 that defines a second internal compartment 43. The second internal compartment
43 is has a top end 45 that faces toward the open central region 15. Both sheath structures
35, 41 are opaque.
[0018] Two pivot post structures 31, 32 are mounted to the bow structure 12 outside the
bottom opening 39 of the first sheath structure 35 and the top opening 45 of the bottom
sheath structure 41. Referring now to Fig. 2 in conjunction with Fig. 3, it will be
understood that although Fig. 3 shows only one of the pivot post structures 31, the
description offered stands for both pivot post structures 31, 32 equally. Each pivot
post structure 31, 32 defines two narrow channels 40. In Fig. 3, only one channel
40 is shown. It will be understood that a second channel lay below the shown channel
40 in a parallel configuration.
[0019] Each of the loading loops 16 is a loop structure of an elastic element 18 that creates
two runs 47, 48. The runs 47, 48 of each elastic element 18 extend through the sheath
structures 35, 41 and through the two pivot posts 31, 32. Each elastic element 18
has two ends. Both ends of each elastic loop 18 are affixed to anchored posts 44,
46 within the sheath structure 35, 41. Since the runs 47, 48 of each elastic element
18 extend through the sheath structures 35, 41, it will be understood that the material
of the elastic elements 18 is shielded from any external light exposure until the
elastic elements 18 are stretched out of the channels 40 in the pivot post structures
31, 32.
[0020] The length of the elastic element 18 has a cross section that is smaller than the
diameter of the channels 40 in the pivot post structures 31, 32. In this manner, a
separate run 47, 48 of the elastomeric element 18 can pass through each of the openings
40, therein keeping the two runs 47, 48 of the loop apart.
[0021] As the runs 47, 48 of the elastic element 18 pass out of the pivot post structures
31, 32, the elastic element 18 immediately passes into reinforcement tubes 50 to form
the loading loops 16. The diameters of the reinforcement tubes 50 are larger than
the channels 40 in the pivot post structures 31, 32. Consequently, the reinforcement
tubes 50 cannot pass through the pivot post structures 31, 32. As a result, each length
of the elastic element 18 is divided into two runs 47, 48. The first run 47 extends
between an anchor post and the reinforcement tube 50 on the far side of the pivot
post structure. The second run 48 extends from the reinforcement tube 50 back to the
anchor post. The looping of the elastic element 18 between the two runs 47, 48 curves
the reinforcement tubes 50 and creates the two loading loops 16.
[0022] Additionally, the presence of the reinforcement tubes 50 protects the elastic element
18 inside the loading loops 16 from exposure to light. Consequently, when the elastic
elements 18 are at rest, the entire length of each of the elastic elements 18 is shielded
from ambient light.
[0023] Due to the offset of the handle 26, an open central region 15 exists between the
two pivot post structures 31, 32. The loading loops 16 each extend into the open central
region 15 from opposite sides.
[0024] Referring to Fig. 4 in conjunction with Fig. 1, it can be seen that the arrow projectile
14 has two hook elements 20 extending from opposite sides. The hook elements 20 are
sized and shaped to engage the two loading loops 16 as the hook elements 20 are pulled
through the open central region 15. To load the arrow projectile 14, the arrow projectile
14 is positioned within the open central region 15 so that the hook elements 20 engage
the loading loops 16. Once engaged with the loading loops 16, the arrow projectile
14 is pulled in the manner of a traditional bow and arrow. As the arrow projectile
14 is pulled away from the open central region 15, the elastic elements 18 stretch.
The elastic elements 18 bend around the pivot post structures 31, 32, therein enabling
the loading loops 16 to move with the arrow projectile 14. This is the only time that
parts of the elastic elements 18 are exposed to ambient light. This exposure lasts
only for as long as the elastic elements 18 are stretched. Thus, the exposure to ambient
light only lasts for a few seconds during each shot cycle.
[0025] As the elastic elements 18 stretch, they store energy. When the arrow projectile
14 is released, the elastic elements 18 retract and the arrow projectile 14 is accelerated
toward the open central region 15. At the open central region 15, the loading loops
16 retract against the pivot post structures 31, 32. The momentum of the arrow projectile
14 causes the arrow projectile 14 to continue its forward movement beyond the open
central region 15. This launches the arrow projectile 14 into flight as the hook elements
20 disengage the loading loops 16.
[0026] When the elastic elements 18 are stretched, they are most vulnerable to breakage.
If one of the runs 47, 48 of an elastic element 18 breaks before passing through a
pivot post structure 31, 32, then the speed of the contracting broken elastic element
18 is slowed by its passage through the pivot post structure 31, 32. This prevents
a broken run from whipping toward a user. Furthermore, if the elastic element 18 were
to break after it passes the pivot post structure 31, 32, most of the potential energy
serves to move the broken elastic element 18 back toward the pivot post structure
31, 32 and away from the user.
[0027] It will be understood that the embodiment of the present invention that is illustrated
and described is merely exemplary and that a person skilled in the art can make many
variations to that embodiment. For instance, the bow structure can have many different
ornamental shapes. The bow structure can also take the form of a crossbow. Likewise,
the arrow projectiles can be configured as airplanes, rocket ships or any other flying
projectile. All such embodiments are intended to be included within the scope of the
present invention as defined by the claims.
1. A toy bow assembly (10) used to launch toy projectiles (14), said toy bow assembly
(10) comprising:
a bow structure (12) having a first arm section (28) with a first sheathed area (37),
a second arm section (30) with a second sheathed area (43), and a central area (15)
disposed between said first arm section (28) and said second arm section (30);
a first reinforcement tube (50);
a first elastic element (18) that extends through said first reinforcement tube (50),
said first elastic element (18) having two opposite ends that are anchored to said
first arm section (28), said first elastic element (18) extending through said first
sheathed area (37) and forming a first loading loop (16) that extends out of said
first sheathed area (37) into said central area (15), wherein said first sheathed
area (37) shields said first elastic element (18) extending therethrough from exposure
to ambient light, and wherein said first reinforcement tube (50) shields said first
loading loop (16) in said central area (15) from exposure to ambient light;
a second reinforcement tube (50);
a second elastic element (18) that extends through said second reinforcement tube
(50), said second elastic element (18) having two opposite ends that are anchored
to said second arm section (30), said second elastic element (18) extending through
said second sheathed area (43) and forming a second loading loop (16) that extends
out of said second sheathed area (43) into said central area (15), wherein said second
sheathed area (43) shields said second elastic element (18) extending therethrough
from exposure to ambient light;
wherein said first loading loop (16) and said second loading loop (16) are separate
and distinct elements that are spaced apart within said central area (15), and the
ends of the first elastic element (18) are affixed to a first anchor post (44) within
the first sheathed area (37) and the ends of the second elastic element (18) are affixed
to a second anchor post (46) within the second sheathed area (43).
2. The assembly (10) according to Claim 1, further comprising a first pivot structure
(31) and a second pivot structure (32) located proximate said central area (15) on
opposite sides of said central area (15).
3. The assembly (10) according to Claim 2, wherein said first elastic element (18) extends
from said first anchor post (44) to said first loading loop (16), and wherein said
first elastic element (18) contacts said first pivot structure (32) proximate said
first loading loop (16).
4. The assembly (10) according to Claim 3, further comprising first channels (40) at
said first pivot structure (31) through which said first elastic element (18) passes,
wherein said first loading loop (16) is sized to be too large to pass through said
first channels (40) at said first pivot structure (31).
5. The assembly (10) according to Claim 4, wherein said second elastic element (18) extends
from said second anchor post (46) to said second loading loop structure (16), and
wherein said second elastic element (18) contacts said second pivot structure (32)
proximate said second loading loop (16).
6. The assembly (10) according to Claim 5, further comprising second channels (40) at
said second pivot structure (32) through which said second elastic element (18) passes,
wherein said second loading loop (16) is sized to be too large to pass through said
second channel (40) at said second pivot structure (32).
7. The assembly (10) according to Claim 1, further comprising a handle (26) that is offset
from said central area (15) and is coupled to both said first arm section (28) and
said second arm section (30), wherein said handle (26), said first arm section (28)
and said second arm section (30) form a rigid bow structure.
1. Spielzeugbogen-Konstruktion (10), die benutzt wird, um Spielzeugprojektile (14) abzuschießen,
wobei die Spielzeugbogen-Konstruktion (10) Folgendes umfasst:
eine Bogenstruktur (12) aufweisend einen ersten Armabschnitt (28) mit einem ersten
umhüllten Bereich (37), einen zweiten Armabschnitt (30) mit einem zweiten umhüllten
Bereich (43) und einen mittleren Bereich (15), der zwischen dem ersten Armabschnitt
(28) und dem zweiten Armabschnitt (30) angeordnet ist;
ein erstes Verstärkungsrohr (50);
ein erstes elastisches Element (18), das sich durch das erste Verstärkungsrohr (50)
erstreckt, wobei das erste elastische Element (18) zwei gegenüberliegende Enden aufweist,
die am ersten Armabschnitt (28) verankert sind, wobei sich das erste elastische Element
(18) durch den ersten umhüllten Bereich (37) erstreckt und eine erste Einlegeschlaufe
(16) bildet, die sich aus dem ersten umhüllten Bereich (37) heraus in den mittleren
Bereich (15) erstreckt, wobei der erste umhüllte Bereich (37) das erste elastische
Element (18), das sich hindurch erstreckt, vor Exposition an Umgebungslicht schützt,
und wobei das erste Verstärkungsrohr (50) die erste Einlegeschlaufe (16) im mittleren
Bereich (15) vor Exposition an Umgebungslicht schützt;
ein zweites Verstärkungsrohr (50);
ein zweites elastisches Element (18), das sich durch das zweite Verstärkungsrohr (50)
erstreckt, wobei das zweite elastische Element (18) zwei gegenüberliegende Enden aufweist,
die am zweiten Armabschnitt (30) verankert sind, wobei sich das zweite elastische
Element (18) durch den zweiten umhüllten Bereich (43) erstreckt und eine zweite Einlegeschlaufe
(16) bildet, die sich aus dem zweiten umhüllten Bereich (43) heraus in den mittleren
Bereich (15) erstreckt, wobei der zweite umhüllte Bereich (43) das zweite elastische
Element (18), das sich hindurch erstreckt, vor Exposition an Umgebungslicht schützt;
wobei die erste Einlegeschlaufe (16) und die zweite Einlegeschlaufe (16) separate
und unterschiedliche Elemente sind, die innerhalb des mittleren Bereichs (15) beabstandet
sind, und die Enden des ersten elastischen Elements (18) an einem ersten Ankerpfosten
(44) innerhalb des ersten umhüllten Bereichs (37) befestigt sind und die Enden des
zweiten elastischen Elements (18) an einem zweiten Ankerpfosten (46) innerhalb des
zweiten umhüllten Bereichs (43) befestigt sind.
2. Konstruktion (10) nach Anspruch 1, ferner umfassend eine erste Schwenkstruktur (31)
und eine zweite Schwenkstruktur (32), die nahe dem mittleren Bereich (15) auf gegenüberliegenden
Seiten des mittleren Bereichs (15) befindlich sind.
3. Konstruktion (10) nach Anspruch 2, wobei sich das erste elastische Element (18) vom
ersten Ankerpfosten (44) zur ersten Einlegeschlaufe (16) erstreckt und wobei das erste
elastische Element (18) die erste Schwenkstruktur (32) nahe der ersten Einlegeschlaufe
(16) berührt.
4. Konstruktion (10) nach Anspruch 3, ferner umfassend erste Kanäle (40) an der ersten
Schwenkstruktur (31), durch die das erste elastische Element (18) verläuft, wobei
die erste Einlegeschlaufe (16) so dimensioniert ist, dass sie zu groß ist, um durch
die ersten Kanäle (40) an der ersten Schwenkstruktur (31) zu verlaufen.
5. Konstruktion (10) nach Anspruch 4, wobei sich das zweite elastische Element (18) vom
zweiten Ankerpfosten (46) zur zweiten Einlegeschlaufenstruktur (16) erstreckt und
wobei das zweite elastische Element (18) die zweite Schwenkstruktur (32) nahe der
zweiten Einlegeschlaufe (16) berührt.
6. Konstruktion (10) nach Anspruch 5, ferner umfassend zweite Kanäle (40) an der zweiten
Schwenkstruktur (32), durch die das zweite elastische Element (18) verläuft, wobei
die zweite Einlegeschlaufe (16) so dimensioniert ist, dass sie zu groß ist, um durch
den zweiten Kanal (40) an der ersten Schwenkstruktur (32) zu verlaufen.
7. Konstruktion (10) nach Anspruch 1, ferner umfassend einen Griff (26), der vom mittleren
Bereich (15) versetzt ist und sowohl mit dem ersten Armabschnitt (28) als auch dem
zweiten Armabschnitt (30) verbunden ist, wobei der Griff (26), der erste Armabschnitt
(28) und der zweite Armabschnitt (30) eine starre Bogenstruktur bilden.
1. Ensemble (10) d'arc-jouet utilisé pour lancer des projectiles-jouets (14), ledit ensemble
(10) d'arc-jouet comprenant :
une structure (12) d'arc comportant une première section de bras (28) dotée d'une
première zone gainée (37), une seconde section de bras (30) dotée d'une seconde zone
gainée (43), et une zone centrale (15) disposée entre ladite première section de bras
(28) et ladite seconde section de bras (30) ;
un premier tube de renfort (50) ;
un premier élément élastique (18) qui s'étend dans ledit premier tube de renfort (50),
ledit premier élément élastique (18) comportant deux extrémités opposées qui sont
ancrées à ladite première section de bras (28), ledit premier élément élastique (18)
s'étendant dans ladite première zone gainée (37) et formant une première boucle de
chargement (16) qui s'étend hors de ladite première zone gainée (37) dans ladite zone
centrale (15), dans lequel ladite première zone gainée (37) protège ledit premier
élément élastique (18) s'étendant à travers cette dernière contre une exposition à
la lumière ambiante, et dans lequel ledit premier tube de renfort (50) protège ladite
première boucle de chargement (16) qui se trouve dans ladite zone centrale (15) contre
une exposition à la lumière ambiante ;
un second tube de renfort (50) ;
un second élément élastique (18) qui s'étend dans ledit second tube de renfort (50),
ledit second élément élastique (18) comportant deux extrémités opposées qui sont ancrées
à ladite seconde section de bras (30), ledit second élément élastique (18) s'étendant
dans ladite seconde zone gainée (43) et formant une seconde boucle de chargement (16)
qui s'étend hors de ladite seconde zone gainée (43) dans ladite zone centrale (15),
dans lequel ladite seconde zone gainée (43) protège ledit second élément élastique
(18) s'étendant à travers cette dernière contre une exposition à la lumière ambiante
;
dans lequel ladite première boucle de chargement (16) et ladite seconde boucle de
chargement (16) sont des éléments séparés et distincts qui sont espacés à l'intérieur
de ladite zone centrale (15), et les extrémités du premier élément élastique (18)
sont fixées à un premier tenon d'ancrage (44) à l'intérieur de la première zone gainée
(37), et les extrémités du second élément élastique (18) sont fixées à un second tenon
d'ancrage (46) à l'intérieur de la seconde zone gainée (43).
2. Ensemble (10) selon la revendication 1, comprenant en outre une première structure
de pivot (31) et une seconde structure de pivot (32) situées à proximité de ladite
zone centrale (15) sur les côtés opposés de ladite zone centrale (15).
3. Ensemble (10) selon la revendication 2, dans lequel ledit premier élément élastique
(18) s'étend dudit premier tenon d'ancrage (44) vers ladite première boucle de chargement
(16), et dans lequel ledit premier élément élastique (18) contacte ladite première
structure de pivot (32) à proximité de ladite première boucle de chargement (16).
4. Ensemble (10) selon la revendication 3, comprenant en outre des premiers canaux (40),
au niveau de ladite première structure de pivot (31), à travers lesquels passe ledit
premier élément élastique (18), dans lequel ladite première boucle de chargement (16)
est dimensionnée avec une taille trop grande pour passer à travers lesdits premiers
canaux (40) au niveau de ladite première structure de pivot (31).
5. Ensemble (10) selon la revendication 4, dans lequel ledit second élément élastique
(18) s'étend dudit second tenon d'ancrage (46) vers ladite seconde structure de boucle
de chargement (16), et dans lequel ledit second élément élastique (18) contacte ladite
seconde structure de pivot (32) à proximité de ladite seconde boucle de chargement
(16).
6. Ensemble (10) selon la revendication 5, comprenant en outre des seconds canaux (40),
au niveau de ladite seconde structure de pivot (32), à travers lesquels passe ledit
second élément élastique (18), dans lequel ladite seconde boucle de chargement (16)
est dimensionnée avec une taille trop grande pour passer à travers ledit second canal
(40) au niveau de ladite seconde structure de pivot (32).
7. Ensemble (10) selon la revendication 1, comprenant en outre une poignée (26) qui est
décalée de ladite zone centrale (15) et qui est couplée à la fois à ladite première
section de bras (28) et à ladite seconde section de bras (30), dans lequel ladite
poignée (26), ladite première section de bras (28) et ladite seconde section de bras
(30) forment une structure d'arc rigide.