Flying toy

Information

  • Patent Grant
  • 8308522
  • Patent Number
    8,308,522
  • Date Filed
    Friday, January 29, 2010
    14 years ago
  • Date Issued
    Tuesday, November 13, 2012
    12 years ago
Abstract
A flying toy comprises a first wing and a second wing attached to and extending from opposite sides of a fuselage. There is a first propulsion unit, having a first motor and a first propeller system rotated by the first motor, mounted with the first wing; and a second propulsion unit, having a second motor and a second propeller system rotated by the second motor, mounted with the second wing. Each propulsion system has main blades and auxiliary blades which interact with each other. Each of two wings can be angled relative to horizontal independently. The toy can operate as a plane or helicopter.
Description
RELATED APPLICATIONS

This application relates to U.S. patent application Ser. No. 11/465,781 filed on Aug. 18, 2006, which is a Continuation-in-Part of U.S. patent application Ser. No. 11/462,177, filed on Aug. 3, 2006 and entitled HELICOPTER, which claims priority to Belgian Patent Application No. 2006/0043 entitled AUTOSTABIELE HELICOPTER by Alexander VAN DE ROSTYNE, which was filed on Jan. 19, 2006. This application also relates to U.S. patent application Ser. No. 11/736,506 filed Apr. 17, 2007 and entitled FLYING OBJECT WITH TANDEM ROTORS which is a continuation in part of Ser. No. 11/465,781 filed on Aug. 18, 2006, which is a Continuation-in-Part of U.S. patent application Ser. No. 11/462,177. The contents of these applications are incorporated by reference herein.


BACKGROUND

The present disclosure concerns an improved flying toy. Generally, the present disclosure relates to flying model toy structures, and, more particularly, to a propulsion system for a flying model toy.


The disclosure concerns a toy having the characteristics of a helicopter generally and a plane generally. In particular, but not exclusively, it is related to a toy helicopter and toy plane and in particular to a remote-controlled model helicopter, plane or a toy helicopter or plane.


Flying model toys, often also referred to as flying toys, have enjoyed a long-lasting and extensive popularity among children and adults for many years. The continuous development of flying toys has included the development of small scale self-powered toy or flying toys intended for amusement and entertainment. In addition, remotely controlled aircraft using a radio signal transmission link has further improved the realism and enjoyment of flying toys.


It is desirable to have an improved structure and versatility for a flying toys.


SUMMARY

A flying toy comprises a first wing and a second wing attached to and extending from opposite sides of a fuselage. There is a first propulsion unit, having a first motor and a first propeller system rotated by the first motor, mounted with the first wing; and a second propulsion unit, having a second motor and a second propeller system rotated by the second motor, mounted with the second wing. Each propulsion system has main blades and auxiliary blades which interact with each other. Each of two wings can be angled relative to horizontal independently. The toy can operate as a plane or helicopter.


The present disclosure aims to provide a simple and cheap solution to auto stabilize the toy when operating as a helicopter, such that operating in the helicopter mode is simpler. It also permits for simple and effective operation of the toy in the plane mode.


In order to further explain the characteristics of the disclosure, the following embodiments of an improved toy according to the disclosure are given as an example only, without being limitative in any way, with reference to the accompanying drawings.





DRAWINGS

For a more complete understanding of the present disclosure, reference is now made to the following figures, wherein like reference numbers refer to similar items throughout the figures:



FIG. 1 illustrates a front right perspective view of a flying model toy according to an exemplary embodiment of the present disclosure with each of the wings of the flying toy in the nearly vertical position, namely downwardly directed;



FIG. 2 illustrates a top plan view of the toy of FIG. 1;



FIG. 3 illustrates a front left perspective view of the toy of FIG. 1;



FIG. 4 illustrates a different front left perspective view of the toy of FIG. 1;



FIG. 5 illustrates a front view of the toy of FIG. 1;



FIG. 6 illustrates a side view of the toy of FIG. 1;



FIG. 7 illustrates a rear view of the toy of FIG. 1;



FIG. 8 illustrates a rear left perspective view of the toy of FIG. 1;



FIG. 9 illustrates a bottom view of the toy of FIG. 1;



FIG. 10 illustrates a rear left perspective view of the toy of FIG. 1;



FIG. 11 illustrates graphically the servo angle of the motor and lever system and the angles of the left and right wings of the toy of FIG. 1;



FIG. 12 illustrates a side view of the toy of FIG. 1 with the wing in the nearly horizontal position showing the lever system, also illustrated in detail in FIG. 29, for operating the wing positioning in a first position;



FIG. 13 illustrates a side view of the toy of FIG. 1 with the wing in the nearly vertical position showing the lever system, also illustrated in detail in FIG. 29, for operating the wing positioning in a second position;



FIG. 14 illustrates a side view of the toy of FIG. 1 with the wings in an intermediate position showing the lever system, also illustrated in detail in FIG. 29, for operating the wing positioning in an intermediate position. The one wing is in a more angled position than the other wing. In this position the toy operates in the helicopter mode and is positioned to effect a left turn direction;



FIG. 15 illustrates a side view of the toy of FIG. 1 with the wings in an intermediate position showing the lever system, also illustrated in detail in FIG. 29, for operating the wing positioning in an intermediate position. The one wing is in a more angled position than the other wing. In this position the toy operates in the helicopter mode and is positioned to effect a left turn direction. The rotor shafts on each wing, namely of each relative propulsion are shown in different positions relative to the vertical, and this indicates that the two wings are in the two different positions relative to each other;



FIG. 16 illustrates a side view of the toy of FIG. 1 with the wings in an intermediate position showing the lever system, also illustrated in detail in FIG. 29, for operating the wing positioning in an intermediate position. The one wing is in a more angled position than the other wing. In this position the toy operates in the helicopter mode and is positioned to effect a right turn direction;



FIG. 17 illustrates a side view of the toy of FIG. 1 with the wings in an intermediate position showing the lever system, also illustrated in detail in FIG. 29, for operating the wing positioning in an intermediate position. The one wing is in a more angled position than the other wing. In this position the toy operates in the helicopter mode and is positioned to effect a right turn direction. The rotor shafts on each wing, namely of each relative propulsion are shown in different positions relative to the vertical, and this indicates that the two wings are in the two different positions relative to each other;



FIG. 18 illustrates a front right perspective view of a flying model toy according to an exemplary embodiment of the present disclosure with each of the wings of the flying toy in the nearly horizontal position. The propulsion systems shows the main rotor and the auxiliary rotor with the respective angles between the longitudinal axes of each of those rotors;



FIG. 19 illustrates a top plan view of the toy in the mode of FIG. 18;



FIG. 20 illustrates a front left perspective view of the toy in the mode of FIG. 18;



FIG. 21 illustrates a front view of the toy in the mode of FIG. 18;



FIG. 22 illustrates a side view of the toy in the mode of FIG. 18;



FIG. 23 illustrates a rear view of the toy in the mode of FIG. 18;



FIG. 24 illustrates a rear left perspective view of the toy in the mode of FIG. 18;



FIG. 25 illustrates a bottom view of the toy in the mode of FIG. 18;



FIG. 26 illustrates a rear left perspective view of the toy in the mode of FIG. 18;



FIG. 27 is detail view of the lever system working with a servo and for connection to the attachments, namely the pushrods, to each wing;



FIGS. 28A to 28C show the two attachments, being pushrods, in different relative positions, namely angles, according to different positions of the lever bracket, and being such that the ends of the attachments which interact with each respective wing;



FIG. 29 is detail of the lever bracket sensor mechanism;



FIG. 30 is a block diagram of a control system of the receiver for controlling the toy of FIG. 1 by radio control; and



FIG. 31 is a block diagram of a transmitter system to permit a user on the ground to communicate remotely with the control system of FIG. 30.





The exemplification set out herein illustrates particular embodiments, and such exemplification is not intended to be construed as limiting in any manner. The following description and the drawings illustrate specific embodiments sufficiently to enable those skilled in the art to practice the systems and methods described herein. Other embodiments may incorporate structural, method, and other changes. Examples merely typify possible variations.


DETAILED DESCRIPTION

A flying toy comprises a fuselage having a first wing and a second wing attached to and extending from opposite sides of the fuselage. There is also a first propulsion unit, having a first motor and a first propeller system rotated by the first motor, mounted with the first wing. A second propulsion unit is provided and this has a second motor and a second propeller system rotated by the second motor, mounted with the second wing.


The first propeller system and the second propeller system respectively are driven by a respective rotor shaft of respective first and second motors with which a respective set of main blades are mounted.


A first auxiliary rotor is driven by the rotor shaft of the first rotor for rotation in the sense of rotation of the first rotor. The first auxiliary rotor is mounted such that the generally longitudinal axis of the first auxiliary rotor is located at an angle relative to a generally longitudinal axis one of the main blades of the first rotor. The generally longitudinal axis of the first auxiliary rotor is along a center line of the first auxiliary rotor passing to the rotor shaft. The auxiliary rotor is mounted in a swinging relationship on a first oscillatory shaft and the swinging motion about the first auxiliary shaft. The swinging motion of the first auxiliary rotor controls the angle of incidence of at least one of the main blades of the first propeller system.


A second auxiliary rotor is driven by the rotor shaft of the second rotor for rotation in the sense of rotation of the second rotor. The second auxiliary rotor is mounted such that the generally longitudinal axis of the second auxiliary rotor is located at an angle relative to a generally longitudinal axis one of the main blades of the second rotor. The generally longitudinal axis of the second auxiliary rotor is along a center line of the second auxiliary rotor passing to the rotor shaft. The second auxiliary rotor is mounted in a swinging relationship on a second oscillatory shaft and the swinging motion is about the second auxiliary shaft. The swinging motion of the second auxiliary rotor controls the angle of incidence of at least one of the main blades of the second propeller system.


There are mountings for each respective wing with the fuselage. The mountings permit each of the wings to tilt relative to a horizontal position such that each of the wings is locatable in different positions relative to the horizontal position.


In one form of the toy there is a single motor for operating the relative position of each wing. In another form of the toy there are separate motors connected with each respective wing for operating the relative position of each respective wing.


With the wings located in a relatively near vertical position, each wing acts respectively relatively as a stabilizing fin in the near vertical position, and the rotors act as vertical trust generators. The toy operates essentially as a helicopter.


With the wings located in a relatively near horizontal position relative to the rotor shaft, the toy operates essentially as a plane.


The relative near vertical angle is an angle of about 0 and about 25 degrees relative to the rotor axis, and the relative near horizontal angle is an angle of about 0 and about 25 degrees relative to the rotor axis.


When operating a helicopter each wing acts as a stabilizer fin to the flying action of the toy.


The first propeller system and the second propeller system rotate oppositely to each other. The toy further comprises a tail wing mounted with the fuselage.


The relative vertical or horizontal position of each wing is independently controllable, and the relative position of each wing determines the movement of the toy. The movement determined is relative turning and altitude of the toy.


The toy includes a receiver for receiving signals from an RC controller. The RC controller is for operating each of the speeds of the first and second propellers, and the position of each respective wing relative to the fuselage. The processor is coupled to control the first and second motors. The processor is operable to control a rotational speed difference between the first and second propellers to assist the toy in making a turn.


There is a radio receiver coupled to the processor. Also there is a battery mounted in the fuselage and coupled to provide power to operate the radio receiver. The fuselage is formed of a deformable material, selectively a polyfoam.


Each propeller system includes a generally longitudinal axis of the auxiliary rotor, the axis being determined along a center line of the auxiliary rotor passing through the rotor shaft. There is a generally longitudinal axis of one of the main blades of the rotor is from an end area of the blade to the rotor shaft. The angle is an acute angle, for instance less than about 45 degrees, and in some cases between about 30 to about 10 degrees.


For each propeller system, the main rotor includes two propeller blades situated essentially in line with each other. The auxiliary rotor includes two elongated members, selectively vanes, situated essentially in line with each other, preferably there being only the two blades and only the two elongated members, selectively vanes.


There is a lever system, the lever system being movable about a center of rotation, a first attachment for the first wing and a second attachment for the second wing. Each attachment is connected at a different point relative to the center of rotation of the lever, and when the single center of rotation rotates, each attachment moves the respective wing differently thereby to permit the toy to exhibit different yaw motion.


With each attachment is connected at a different angular and distance point relative to the center of rotation of the lever, when the single center of rotation rotates in a first sense of rotation, each attachment moves the respective wing differently. As such the points of fixation of the respective attachments to the wings are moved relatively differently from the center of rotation. This permits the toy to exhibit a first yaw motion. When the single center of rotation rotates in an opposite sense of rotation, each attachment moves the respective wing differently such that the points of fixation of the respective attachments to the wings are moved relatively differently from the center of rotation. This permits the toy to exhibit an opposite yaw motion.


The toy 1 represented in the figures by way of example is a remote-controlled toy which essentially consists of a fuselage body 2 with a landing gear such as 3 spaced wheels 3. There are two wings 4 and 5, and a tail wing 6. There are two propulsion systems 7 and 8. Each system has a main rotor 9; and an auxiliary rotor 10 driven synchronously with the latter.


For each propulsion unit, the main rotor 9 is provided by a rotor head 10 on a first upward directed rotor shaft 11 which is bearing-mounted in the wings 4 and 5 of the toy 1 in a rotating manner and which is driven by means of a motor 12 and a transmission 13. The motor 12 is for example an electric motor which is powered by a battery 13. One or more batteries can power all systems of the toy.


The main rotor 9 in this case has two propeller blades 14 which are in line or practically in line, but which may just as well be composed of a larger number of propeller blades 14.


The tilt or angle of incidence of the propeller blades 14 can be adjusted as, the main rotor 9 is hinge-mounted on this rotor shaft 11 by means of a joint, such that the angle between the plane of rotation of the main rotor 9 and the rotor shaft 11 may freely vary.


In the case of the example of a main rotor 9 with two propeller blades 14, the joint is formed by a spindle of the rotor head 15.


The axis of this spindle is directed transversal to the rotor shaft 11 and essentially extends in the direction of the longitudinal axis of one of the propeller blades 12.


The toy 1 is also provided with an auxiliary rotor 10 which is driven substantially synchronously with the main rotor 9 by the same rotor shaft 11 and the rotor head 15.


The auxiliary rotor 10 in this case has two vanes 16 which are essentially in line with their longitudinal axis, whereby the longitudinal axis, seen in the sense of rotation R of the main rotor 9, is essentially acute or parallel to the longitudinal axis of propeller blades 14 of the main rotor 9 or encloses a relatively small acute angle. Both rotors 9 and 10 extend more or less parallel on top of one another with their propeller blades 14 and vanes 16 when the toy is in a helicopter mode.


The diameter of the auxiliary rotor 10 is preferably smaller than the diameter of the main rotor 9 as the vanes 16 have a smaller span than the propeller blades 14, and the vanes 16 can be rigidly connected to each other. This propeller blades can be relatively rigid to the where the spindle connection is made to the main rotor shaft 11. The auxiliary rotor 10 is provided in a swinging manner on an oscillating shaft which is fixed to the rotor head 15 of the rotor shaft 11. This is directed transversally to the longitudinal axis of the vanes 16 and transversally to the rotor shaft 11. The main rotor 9 and the auxiliary rotor 10 are connected to each other by a mechanical link. In the given example this link is formed of a rod.


This rod is hinge-mounted to a propeller blade 14 of the main rotor 9 with one fastening point by means of a joint and a lever arm and with another second fastening point situated at a distance from the latter. It is hinge-mounted to a vane 16 of the auxiliary rotor 10 by means of a second joint and a second lever arm.


The fastening point on the main rotor 4 is situated at a distance from the axis of the spindle of the propeller blades 14 of the main rotor 9, whereas the other fastening point on the auxiliary rotor 10 is situated at a distance from the axis of the oscillatory shaft of the auxiliary rotor 10.


Also, the longitudinal axis of the vanes 16 of the auxiliary rotor 10, seen in the sense of rotation, encloses an angle with the longitudinal axis of the propeller blades 14 of the main rotor 9, which enclosed angle is in the order, of magnitude of about 10° to 45°, whereby the longitudinal axis of the vanes leads the longitudinal axis of the propeller blades, seen in the sense of rotation R. Different angles in a range of, for example, 5° to less than 90° could also be in order.


The auxiliary rotor 10 can be provided with two stabilizing weights which are each fixed to a vane or radial extension 16 at a distance from the rotor shaft 11.


Further, the toy 1 is provided with a receiver, so that it can be controlled from a distance by means of a remote control transmitter.


The operation of the improved toy 1 in the helicopter mode is according to the disclosure is as follows:


In flight, the rotors 9 and 10 are driven at a certain speed, as a result of which a relative air stream is created in relation to the rotors, as a result of which the main rotor 9 generates an upward force so as to make the toy 1 in helicopter mode rise or descend or maintain it at a certain height. The wings 4 and 5 area are angled relatively nearly vertically downwardly and assists in providing stability as like a fin extending below the downward action of the rotating rotors of both propulsion units 7 and 8 of the toy 1.


It is impossible for the main rotor 4 to adjust itself, and it will turn in the plane 14 in which it has been started, usually the horizontal plane. Under the influence of gyroscopic precession, turbulence and other factors, it will take up an arbitrary undesired position if it is not controlled.


The surface of rotation of the auxiliary rotor 10 may take:


up another inclination in relation to the surface of rotation of the main rotor 9, whereby both rotors 9 and 10 may take up another inclination in relation to the rotor, shaft 11.


This difference in inclination may originate in any internal or external force or disturbance whatsoever.


In a situation whereby the toy 1 in helicopter mode is hovering stable, on a spot in the air without any disturbing internal or external forces, the auxiliary rotor 10 keeps turning in a plane which is essentially perpendicular to the rotor shaft 11.


If, however, the fuselage body 2 is pushed out of balance due to any disturbance whatsoever, and the rotor shaft 11 turns away from its position of equilibrium, the auxiliary rotor 10 does not immediately follow this movement, since the auxiliary rotor 10 can freely move round the oscillatory shaft.


The main rotor 9 and the auxiliary rotor 10 are placed in relation to each other in such a manner that a swinging motion of the auxiliary rotor 10 is translated almost immediately in the pitch or angle of incidence of the propeller blades 14 being adjusted.


For a two-bladed main rotor 9, this means that the propeller blades 14 and the vanes 16 of both rotors 9 and 10 must be essentially parallel or, seen in the sense of rotation, enclose an acute angle with one another between the large main rotor 9 and a smaller auxiliary rotor 10.


This angle can be calculated or determined by experiment for any helicopter 1 or per type of helicopter.


If the axis of rotation takes up another inclination than the one which corresponds to the above-mentioned position of equilibrium in a situation whereby the helicopter 1 is hovering, the following happens:


A first effect is that the auxiliary rotor 10 will first try to preserve its absolute inclination, as a result of which the relative inclination of the surface of rotation of the auxiliary rotor 10 in relation to the rotor shaft 11 changes.


As a result, the rod will adjust the angle of incidence of the propeller blades 14, so that the upward force of the propeller blades 14 will increase on one side of the main rotor 9 and will decrease on the diametrically opposed side of this main rotor.


Since the relative position of the main rotor 9 and the auxiliary rotor 10 are selected such that a relatively immediate effect is obtained. This change in the upward force makes sure that the rotor shaft 11 and the body 2 are forced back into their original position of equilibrium.


A second effect is that, since the distance between the far ends of the vanes 16 and the plane of rotation of the main rotor 9 is no longer equal and since also the vanes 16 cause an upward force, a larger pressure is created between the main rotor 9 and the auxiliary rotor 10 on one side of the main rotor 4 than on the diametrically opposed side.


A third effect plays a role when the toy in helicopter mode begins to tilt over to the front, to the back or laterally due to a disturbance. Just as in the case of a pendulum, the helicopter will be inclined to go back to its original situation. This pendulum effect does not generate any destabilizing gyroscopic forces as with the known helicopters that are equipped with a stabilizer bar directed transversally to the propeller blades of the main rotor. It acts to reinforce the first and the second effect.


The effects have different origins but have analogous natures. They reinforce each other so as to automatically correct the position of equilibrium of the helicopter 1 without any intervention of a pilot.


In practice, the combination of both aspects makes it possible to produce a helicopter which is very stable in any direction and any flight situation and which is easy to control, even by persons having little or no experience.


It is clear that the main rotor 9 and the auxiliary rotor 10 may not necessarily be made as a rigid whole. The propeller blades 14 and the vanes or radial extensions 16 can also be provided on the rotor head such that they are mounted and can rotate relatively separately. In that case, for example, two rods may be applied to connect each time one propeller blade 14 to one vane 16.


It is also clear that, if necessary, the joints and hinge joints may also be realized in other ways than the ones represented, for example by means of torsion-flexible elements.


In the case of a main rotor 4 having more than two propeller blades 12, one should preferably be sure that at least one propeller blade 12 is essentially parallel to one of the vanes 28 of the auxiliary rotor. The joint of the main rotor 4 is preferably made as a ball joint or as a spindle 15 which is directed essentially transversely to the axis of the oscillatory shaft 30 of the auxiliary rotor 5 and which essentially extends in the longitudinal direction of the one propeller blade 12 concerned which is essentially parallel to the vanes 28.


The present disclosure also presents an improved structure and method for powering the flight of a toy so that the propellers and motors of the toy are operable in pane mode.


The flying model toy 1 has wings 4 and 5 which are mounted on a rod 17 with mountings 18 on the wings 4 and 5. The wings are driven by a motor 112 which can change the position from the nearly vertical to the nearly horizontal. In this latter position, the toy operates in a plane mode.


Toy 1 has a fuselage body 2 formed of a break-resistant material such as, for example, a polyfoam or other soft and/or deformable materials so that a crash or hard landing by toy 1 does not cause significant structural damage. The wings 4 and 5 and tail wing 6 of toy 1 are also preferably formed of such a break-resistant material.


The wings 4 and 5 are connected, for example, by one or more struts to the body 2. Each wing 4 and 5 is independently movable relative to the body 2.


Toy 1 may further include a rudder and an elevator as part of the tail wing 6 each coupled to the fuselage 2, for example, by a long, thin rod or other slender member. It should be noted that the width of the wings 4 and 5 may be, for example, about equal to or greater than the height of the tail wing 6 from the fuselage 2.


The body 2 may have a rounded nose or regular nose that tapers gradually away from a leading point on both the bottom and top of the nose.


A receiver unit may be mounted in the bottom of toy 1 to receive control signals (e.g., from a ground-based transmitter unit as discussed below) for use in controlling the flight of toy 1. A charging socket of receiver unit may be used to couple a rechargeable battery mounted in toy 1 to an external charger, e.g., in the transmitter unit.


The processor may be programmed to control a rotational speed difference between the first and second propulsion systems 7 and 8 to assist the toy in making a turn. To control the direction of flight of toy 1 as a plane, the left propeller, for example, should spin faster than the right propeller to make a right turn, and vice versa for a left turn.


As another example, to control the turning of the plane to the left, the up-thrust on the right wing may be increased (i.e., the right propeller may be controlled to spin faster than the left propeller). As a result, the right side will be a bit higher than the left side and the plane will thus turn left. A similar concept may be applied when the plane is to turn right. In other embodiments, turning may also be controlled further or alternatively using a rudder.


A battery may be mounted in the fuselage 2 and coupled to provide power to operate the RF receiver. The battery may be, for example, a lightweight lithium polymer battery. Such a battery may help to maximize the output energy to weight ratio for a small, light toy. Toy 1 may be able to run, for example, about 10 minutes with such a fully-charged battery.


A transmitter system permits a user on the ground to communicate remotely with control system. The transmitter system may be incorporated as part of a transmitter unit. The transmitter system includes an RF transmitter coupled to left/right control stick, throttle control stick, and alignment trimmer by a main control unit. A charger is coupled to charge a battery for powering RF transmitter.


The battery or batteries can be positioned, for example, inside of fuselage 2 at one or more different places. The receiver unit is coupled to receive operating power from the battery.


There are separate motors for each propulsion unit 7 and 8, and one or motors to operate the wings 4 and 5. The motors may be mounted and positioned as needed for the toy 1. There can be some aerodynamic coverings for the motor portions.


It should be noted that the present propulsion structure and method may also be used on toys having different wing configurations on each side. Also, infrared or programmable control may be used as alternatives to radio control. In addition, lithium ion batteries, high-density capacitors, and other power sources may be used on toy 1.


The flying toy, in one form combines the function of a helicopter and a toy. It has a front wing a body, a tail wing, two motors and counter rotating rotors The vanes 16 are considerably smaller in diameter than the diameter of the main rotor blades 14.


The toy has a front wing, split in a right and left wing halves 4 and 5. Each half is pivoting along a wing tip to tip axis. The wings 4 and 5 can take any position between almost or near horizontal and almost or near vertical


The toy 1 has two configurations, which can be switched by the pilot in flight. This means that the operator of the remote controller can operate the toy dynamically.


In the first mode, the helicopter or hovering mode, the wings 4 and 5 are almost vertical, as are the rotor shafts 11. When standing on the wheels 3 and increasing RPM, the toy 2 lifts off like a helicopter. Stability is accomplished through the combination of the rotor system and the wing halves that in a vertical position act as stabilizer fins, namely the downwardly directed wings 4 and 5. Through the use of a special servo, the incidence of one wing 4 or 5 and rotor 9 versus the other wing 4 or 5 and rotor 9 can be changed in such amount that it makes the toy rotate left or right, namely effect the yaw) along a vertical axis.


In the second mode, the plane flight mode of the toy 1, the wings 4 and 5 are in a generally horizontal position with positive incidence to create lift, as are the rotor shafts 11. The toy 1 acts as a plane moves forward. Turning is accomplished by changing the rpm of one rotor 9 versus the other rotor 9. This creates a difference in lift force, so one wing half 4 or 5 is accelerating versus the other wing half 4 or 5, thus initiating a turn. This turning effect can be intensified by using the servo to induce some differential incidence between the wing halves 4 and 5.


A typical sequence is that the toy 1 is at rest on the ground, the pilot using the transmitter puts the wings 4 and 5 in the vertical position, increases RPM. The toy 1 lifts in hovering mode like a helicopter. By moving a stick, or pushing a button, on the transmitter, the wings 4 and 5 rotate into their horizontal position. The toy 1 will take speed and fly around like a plane. The pilot can land as desired in this configuration like a plane or push the buttons again, and having the wings 4 and 5 tilt back vertical, stop into a hover, reduce rpm and land as a helicopter.


The wing halves 4 and 5 can move at the same time in the same direction to go from hover into flight and vice versa. The wing halves 4 and 5 can also change incidence in opposite directions relative to each other to as to cause a YAW turn. All these movements are controlled with a single servo. In other cases two servo motors can be used but this would be heavier and more expensive.


The method used is based on the fact that in a circular movement, different attachment points on a lever/bracket on different angles cause different movements in the linear direction.


The upper and lower pushrods that are connected left side to the wing tilting mechanism, one pushrod for each half 4 or 5, right side to the rotating lever/bracket.


Assume as shown in FIG. 28A, angle1 is the starting position. Both wing half attachment points are aligned, so the wing halves 4 and 5 are aligned too.


Assume as shown in FIG. 28B, angle2 shows that after a counter clock rotation, the Rod 2 has bypassed Rod 1, so the incidence of the wing halves will be different, hence a YAW effect.


Assume as shown in FIG. 28C, angle3 shows that after a clock wise rotation, the Rod 1 has bypassed the Rod 2, so the incidence of the wing halves will be different, hence a YAW effect (opposite to angle2).


This diagram of FIG. 11 shows the travel of one rod versus the other as a function of the servo angle. Where both curves cross, the Rods 1 and 2 attachment points are in the same position and so are thus the wing halves. Around those points, using small angle movements the wing halves can take different relative angles.


The present disclosure is not limited to the embodiments described as an example and represented in the accompanying figures. Many different variations in size and scope and features are possible. For instance, instead of electrical motors being provided others forms of motorized power are possible. A different number of blades may be provided to the rotors. A toy according to the disclosure can be made in all sorts of shapes and dimensions while still remaining within the scope of the disclosure.


By the foregoing disclosure, an improved structure and method for propelling a flying model toy have been described. The foregoing description of specific embodiments reveals the general nature of the disclosure sufficiently that others can modify and/or adapt it for various applications without departing from the generic concept. Therefore, such adaptations and modifications are within the meaning and range of equivalents of the disclosed embodiments. The phraseology or terminology employed herein is for the purpose of description and not of limitation.

Claims
  • 1. A flying toy comprising: a fuselage having a first wing and a second wing attached to and extending from opposite sides of the fuselage;a first propulsion unit, having a first motor and a first propeller system rotated by the first motor, mounted with the first wing;a second propulsion unit, having a second motor and a second propeller system rotated by the second motor, mounted with the second wing;the first propeller system and the second propeller system respectively being driven by a respective rotor shaft of respective first and second motors with which a respective set of main blades are mounted;a first auxiliary rotor driven by the rotor shaft of the first rotor for rotation in the sense of rotation of the first rotor, the first auxiliary rotor being mounted such that the generally longitudinal axis of the first auxiliary rotor is located at an angle relative to a generally longitudinal axis one of the main blades of the first rotor, and wherein the generally longitudinal axis of the first auxiliary rotor is along a center line of the first auxiliary rotor passing to the rotor shaft, and wherein the auxiliary rotor is mounted in a swinging relationship on a first oscillatory shaft and the swinging motion about the first auxiliary shaft, such that the swinging motion of the first auxiliary rotor controls the angle of incidence of at least one of the main blades of the first propeller system;a second auxiliary rotor driven by the rotor shaft of the second rotor for rotation in the sense of rotation of the second rotor, the second auxiliary rotor being mounted such that the generally longitudinal axis of the second auxiliary rotor is located at an angle relative to a generally longitudinal axis one of the main blades of the second rotor, and wherein the generally longitudinal axis of the second auxiliary rotor is along a center line of the second auxiliary rotor passing to the rotor shaft, and wherein the second auxiliary rotor is mounted in a swinging relationship on a second oscillatory shaft and the swinging motion about the second auxiliary shaft, such that the swinging motion of the second auxiliary rotor controls the angle of incidence of at least one of the main blades of the second propeller system,a lever system including a first attachment for the first wing and a second attachment for the second wing, each attachment being for moving the respective wing such that in a first operative form each wing moves in opposite directions relative to each other thereby to permit the toy to exhibit different yaw motion; and in a second operative form each wing moves at the same time in the same direction thereby to permit the toy to move between hover and flight; andthe lever system acting to independently control the relative vertical or horizontal Position of each wing, and wherein the relative position of each wing determines the movement of the toy; and wherein the movement is relative turning and altitude of the toy.
  • 2. The toy of claim 1 further comprising mountings for each respective wing, the mountings permitting each of the wings to tilt relative to a horizontal position such that each of the wings is locatable in different positions relative to the horizontal position.
  • 3. The toy of claim 2 including a single motor for operating the relative position of each wing.
  • 4. The toy of claim 2 including a separate motor connected with each respective wing for operating the relative position of each respective wing.
  • 5. The toy of claim 1 wherein with the wings located in a relatively near vertical position, each wing acts relatively as a stabilizing fin in the near vertical position and the rotors act as vertical trust generators, the toy operates essentially as a helicopter, and with the wings located in a relatively near horizontal position relative to the rotor shaft, the toy operates essentially as a plane.
  • 6. The toy of claim 5 wherein the relative near vertical angle is an angle of about 0 and about 25 degrees relative to the rotor axis, and the relative near horizontal angle is an angle of about 0 and about 25 degrees relative to the rotor axis.
  • 7. The toy of claim 1 wherein when operating a helicopter each wing acts as a stabilizer fin to the flying action of the toy.
  • 8. The toy of claim 1 wherein the first propeller system and the second propeller system rotate oppositely to each other.
  • 9. The toy of claim 1 further comprising a tail wing mounted with the fuselage.
  • 10. The toy of claim 1 including a receiver for receiving signals from an RC controller, the RC controller being for operating each of the speeds of the first and second propellers, and the position of each respective wing relative to the fuselage.
  • 11. The toy of claim 10 further comprising a processor coupled to control the first and second motors.
  • 12. The toy of claim 11 wherein the processor is operable to control a rotational speed difference between the first and second propellers to assist the toy in making a turn.
  • 13. The toy of claim 12 further comprising a radio receiver coupled to the processor.
  • 14. The toy of claim 13 further comprising a battery mounted in the fuselage and coupled to provide power to operate the radio receiver.
  • 15. The toy of claim 1 wherein the fuselage is formed of a deformable material, selectively a polyfoam.
  • 16. A toy of claim 1 wherein for each propeller system there is a generally longitudinal axis of the auxiliary rotor, the axis being determined along a center line of the auxiliary rotor passing through the rotor shaft, and there is a generally longitudinal axis of one of the main blades of the rotor is from an end area of the blade to the rotor shaft, and the angle is less than about 45 degrees, and preferably between about 30 to about 10 degrees.
  • 17. A toy of claim 1 wherein for each propeller system there is a generally longitudinal axis of the auxiliary rotor, the axis being determined along a center line of the auxiliary rotor passing through the rotor shaft, and there is a generally longitudinal axis of one of the main blades of the rotor is to the rotor shaft, and the angle is an acute angle.
  • 18. A toy of claim 1 wherein for each propeller system, the main rotor includes two propeller blades situated essentially in line with each other, and the auxiliary rotor includes two elongated members, selectively vanes, situated essentially in line with each other, preferably there being only the two blades and only the two elongated members, selectively vanes.
  • 19. A toy of claim 1 including having the lever system be movable about a center of rotation, the first attachment for the first wing and the second attachment for the second wing, each attachment being connected at a different point relative to the center of rotation of the lever system, and wherein when the single center of rotation rotates, each attachment moves the respective wing differently thereby to permit the toy to exhibit different yaw motion.
  • 20. A toy of claim 19 wherein each attachment is connected at a different angular and distance point relative to the center of rotation of the lever, wherein when the single center of rotation rotates in a first sense of rotation, each attachment moves the respective wing differently such that points of fixation of the respective attachments to the wings are moved relatively differently from the center of rotation thereby to permit the toy to exhibit a first yaw motion, and wherein when the single center of rotation rotates in an opposite sense of rotation, each attachment moves the respective wing differently such that points of fixation of the respective attachments to the wings are moved relatively differently from the center of rotation thereby to permit the toy to exhibit an opposite yaw motion.
  • 21. A flying toy comprising: a fuselage having a first wing and a second wing attached to and extending from opposite sides of the fuselage;a first propulsion unit, having a first motor and a first propeller system rotated by the first motor, mounted in a fixed non-movable relationship with the first wing;a second propulsion unit, having a second motor and a second propeller system rotated by the second motor, mounted in a fixed non-movable relationship with the second wing;the first propeller system and the second propeller system respectively being driven by a respective rotor shaft of respective first and second motors with which a respective set of main blades are mounted;a first auxiliary rotor driven by the rotor shaft of the first rotor for rotation in the sense of rotation of the first rotor, the first auxiliary rotor being mounted such that the generally longitudinal axis of the first auxiliary rotor is located at an angle relative to a generally longitudinal axis one of the main blades of the first rotor, and wherein the generally longitudinal axis of the first auxiliary rotor is along a center line of the first auxiliary rotor passing to the rotor shaft, and wherein the auxiliary rotor is mounted in a swinging relationship on a first oscillatory shaft and the swinging motion about the first auxiliary shaft, such that the swinging motion of the first auxiliary rotor controls the angle of incidence of at least one of the main blades of the first propeller system;a second auxiliary rotor driven by the rotor shaft of the second rotor for rotation in the sense of rotation of the second rotor, the second auxiliary rotor being mounted such that the generally longitudinal axis of the second auxiliary rotor is located at an angle relative to a generally longitudinal axis one of the main blades of the second rotor, and wherein the generally longitudinal axis of the second auxiliary rotor is along a center line of the second auxiliary rotor passing to the rotor shaft, and wherein the second auxiliary rotor is mounted in a swinging relationship on a second oscillatory shaft and the swinging motion about the second auxiliary shaft, such that the swinging motion of the second auxiliary rotor controls the angle of incidence of at least one of the main blades of the second propeller system,a lever system including a first attachment for the first wing and a second attachment for the second wing, each attachment being for moving the respective wing such that in a first operative form each wing moves in opposite directions relative to each other thereby to permit the toy to exhibit different yaw motion; andthe lever system acting to independently control the relative vertical or horizontal position of each wing, and wherein the relative position of each wing determines the movement of the toy; and wherein the movement is relative turning and altitude of the toy.
  • 22. A toy of claim 21 including a second operative form wherein in the second operative form each wing moves at the same time in the same direction thereby to permit the toy to move between hover and flight.
  • 23. A toy of claim 21 including having the lever system be movable about a center of rotation, the first attachment for the first wing and the second attachment for the second wing, each attachment being connected at a different point relative to the center of rotation of the lever system, and wherein when the single center of rotation rotates, each attachment moves the respective wing differently thereby to permit the toy to exhibit different yaw motion.
  • 24. A toy of claim 23 wherein each attachment is connected at a different angular and distance point relative to the center of rotation of the lever system, wherein when the single center of rotation rotates in a first sense of rotation, each attachment moves the respective wing differently such that points of fixation of the respective attachments to the wings are moved relatively differently from the center of rotation thereby to permit the toy to exhibit a first yaw motion, and wherein when the single center of rotation rotates in an opposite sense of rotation, each attachment moves the respective wing differently such that points of fixation of the respective attachments to the wings are moved relatively differently from the center of rotation thereby to permit the toy to exhibit a an opposite yaw motion.
  • 25. A flying toy comprising: a fuselage having a first wing and a second wing attached to and extending from opposite sides of the fuselage;a first propulsion unit, having a first motor and a first propeller system rotated by the first motor, mounted with the first wing;a second propulsion unit, having a second motor and a second propeller system rotated by the second motor, mounted with the second wing;the first propeller system and the second propeller system respectively being driven by a respective rotor shaft of respective first and second motors with which a respective set of main blades are mounted;a first auxiliary rotor driven by the rotor shaft of the first rotor for rotation in the sense of rotation of the first rotor, the first auxiliary rotor being mounted such that the generally longitudinal axis of the first auxiliary rotor is located at an angle relative to a generally longitudinal axis one of the main blades of the first rotor, and wherein the generally longitudinal axis of the first auxiliary rotor is along a center line of the first auxiliary rotor passing to the rotor shaft, and wherein the auxiliary rotor is mounted in a swinging relationship on a first oscillatory shaft and the swinging motion about the first auxiliary shaft, such that the swinging motion of the first auxiliary rotor controls the angle of incidence of at least one of the main blades of the first propeller system;a second auxiliary rotor driven by the rotor shaft of the second rotor for rotation in the sense of rotation of the second rotor, the second auxiliary rotor being mounted such that the generally longitudinal axis of the second auxiliary rotor is located at an angle relative to a generally longitudinal axis one of the main blades of the second rotor, and wherein the generally longitudinal axis of the second auxiliary rotor is along a center line of the second auxiliary rotor passing to the rotor shaft, and wherein the second auxiliary rotor is mounted in a swinging relationship on a second oscillatory shaft and the swinging motion about the second auxiliary shaft, such that the swinging motion of the second auxiliary rotor controls the angle of incidence of at least one of the main blades of the second propeller system,a lever system movable about a center of rotation, the first attachment for the first wing and the second attachment for the second wing, each attachment being connected at a different point relative to the center of rotation of the lever system, and wherein when the single center of rotation rotates, each attachment moves the respective wing differently thereby effecting different yaw motion, a single motor for operating the lever system to cause movement of both the first attachment and the second attachment to effect the different yaw motion, and wherein different attachment points on a lever at different angles cause different movements in the linear direction.
  • 26. A toy of claim 25 wherein each attachment is connected at a different angular and distance point relative to the center of rotation of the lever system, wherein when the single center of rotation rotates in a first sense of rotation, each attachment moves the respective wing differently such that points of fixation of the respective attachments to the wings are moved relatively differently from the center of rotation thereby effecting a first yaw motion, and wherein when the single center of rotation rotates in an opposite sense of rotation, each attachment moves the respective wing differently such that points of fixation of the respective attachments to the wings are moved relatively differently from the center of rotation thereby effecting an opposite yaw motion.
  • 27. A toy of claim 25 wherein rotation of the lever system in a first direction causes a first yaw effect and rotation in an opposite direction causes a different yaw effect.
US Referenced Citations (280)
Number Name Date Kind
934771 Turnbull Sep 1909 A
1403909 Moir Jan 1922 A
1446522 Smith Feb 1923 A
1446718 Newbauer Feb 1923 A
1470017 Lougheed Oct 1923 A
1557789 Bane Oct 1925 A
1773281 Scott Aug 1930 A
1793368 Johnson Feb 1931 A
1800470 Oehmichen Apr 1931 A
1828783 Oehmichen Oct 1931 A
1925156 Vaughn Sep 1933 A
2030578 Flettner Feb 1936 A
2110563 Thaon Mar 1938 A
2272643 Peters et al. Feb 1942 A
2275094 Taylor Mar 1942 A
2307381 Bess Jan 1943 A
D140480 Maycen Feb 1945 S
2368698 Young Feb 1945 A
2384516 Young Sep 1945 A
2411596 Shapiro Nov 1946 A
2413831 Jordan Jan 1947 A
2429502 Young Oct 1947 A
D149130 Katenberter et al. Mar 1948 S
2439143 Nemeth Apr 1948 A
D153314 Piasecki Apr 1949 S
D153315 Piasecki Apr 1949 S
D153316 Piasecki Apr 1949 S
D153317 Piasecki Apr 1949 S
2466821 Owen Apr 1949 A
2469144 Baggott May 1949 A
2481750 Hiller, Jr. et al. Sep 1949 A
2486059 Pentecost Oct 1949 A
2487020 Gilcrease Nov 1949 A
2514822 Wolfe, Jr. Jul 1950 A
2532683 Traver Dec 1950 A
2554938 Catalano May 1951 A
D163938 Douglas Jul 1951 S
2563731 Masterson Aug 1951 A
2599957 Walker Jun 1952 A
2614637 Landgraf Oct 1952 A
2629568 Croshere, Jr. et al. Feb 1953 A
2629570 Carnahan Feb 1953 A
2633924 Young Apr 1953 A
2639874 Stalker May 1953 A
2646848 Young Jul 1953 A
D171569 Apostolescu Mar 1954 S
2708081 Dobson May 1955 A
2725494 Anderson Nov 1955 A
D178081 Papadakos Jun 1956 S
2750131 Thomson Jun 1956 A
2801494 Ernst Aug 1957 A
D181643 Graham Dec 1957 S
2818123 Hiller, Jr. Dec 1957 A
2822994 Warto Feb 1958 A
D184501 Wlaschin et al. Feb 1959 S
2923494 Strong Feb 1960 A
D187625 Apostolescu Apr 1960 S
D187895 Douglas May 1960 S
2950074 Apostolescu Aug 1960 A
2980187 Smyth-Davila Apr 1961 A
2987848 Neuhaus et al. Jun 1961 A
3029048 Brooks et al. Apr 1962 A
3035643 Kelley et al. May 1962 A
3068611 Lauderdale Dec 1962 A
3080001 Culver et al. Mar 1963 A
3093929 Robbins et al. Jun 1963 A
3106964 Culver et al. Oct 1963 A
3116896 Sigler et al. Jan 1964 A
3135334 Culver Jun 1964 A
3180424 Serriades Apr 1965 A
3213944 Nichols et al. Oct 1965 A
3228478 Edenborough Jan 1966 A
3231222 Scheutzow Jan 1966 A
D205326 Postelson-Apostolescu Jul 1966 S
3321022 Oguri May 1967 A
3370809 Leoni Feb 1968 A
3371886 Schertz Mar 1968 A
3391746 Cardoso Jul 1968 A
3409249 Bergquist et al. Nov 1968 A
3448810 Vogt Jun 1969 A
3450374 Moore Jun 1969 A
3460628 Tankersley Aug 1969 A
3481559 Apostolescu Dec 1969 A
3554467 Yowell Jan 1971 A
3558081 Williams Jan 1971 A
3572616 Ulisnik Mar 1971 A
3592559 Ward Jul 1971 A
D221453 Swamberg Aug 1971 S
3625631 Covington, Jr. et al. Dec 1971 A
3662487 Seefluth May 1972 A
3759629 Abramopaulos Sep 1973 A
3771924 Buchstaller Nov 1973 A
D232168 Leoni Jul 1974 S
D232170 Diamond et al. Jul 1974 S
D234350 Beckert et al. Feb 1975 S
3905565 Kolwey Sep 1975 A
3933324 Ostrowski Jan 1976 A
D239930 Ulisnik May 1976 S
4025230 Kastan May 1977 A
4053123 Chadwick Oct 1977 A
4073086 Ogawa Feb 1978 A
4084345 Tanaka Apr 1978 A
4099687 Roberts et al. Jul 1978 A
4118143 Kavan Oct 1978 A
4142697 Fradenburgh Mar 1979 A
D253003 Tanaka Sep 1979 S
4173321 Eickmann Nov 1979 A
4195439 Kramer Apr 1980 A
4227856 Verrill et al. Oct 1980 A
4307533 Sims et al. Dec 1981 A
4519746 Wainauski et al. May 1985 A
4522563 Reyes et al. Jun 1985 A
4629440 McKittrick et al. Dec 1986 A
D287738 Bollinger et al. Jan 1987 S
4674361 Parsons Jun 1987 A
D294605 Matsumoto Mar 1988 S
4759514 Burkam Jul 1988 A
4880355 Viullet et al. Nov 1989 A
4941803 Wainauski et al. Jul 1990 A
4981456 Sato et al. Jan 1991 A
5015187 Lord May 1991 A
5096140 Dornier et al. Mar 1992 A
5108043 Canavaspe Apr 1992 A
5141176 Kress et al. Aug 1992 A
5151014 Greenwald et al. Sep 1992 A
5190242 Nichols Mar 1993 A
5203520 Przygodski et al. Apr 1993 A
5209429 Doolin et al. May 1993 A
5240204 Kunz Aug 1993 A
5252100 Osawa et al. Oct 1993 A
5255871 Ikeda Oct 1993 A
5259729 Fujihira et al. Nov 1993 A
5304090 Vanni Apr 1994 A
5370341 Leon Dec 1994 A
5388785 Rollet et al. Feb 1995 A
5395275 Johnson et al. Mar 1995 A
D357894 Arnold et al. May 1995 S
2720928 Warto Oct 1995 A
5505407 Chiapetta Apr 1996 A
5511947 Schmuck Apr 1996 A
D372741 Tsai Aug 1996 S
D378606 Tamagnini Mar 1997 S
5609312 Arlton et al. Mar 1997 A
5628620 Arlton May 1997 A
D388048 Taylor et al. Dec 1997 S
D390942 Mei Feb 1998 S
5749540 Arlton May 1998 A
5836545 Arlton et al. Nov 1998 A
5879131 Arlton et al. Mar 1999 A
5906476 Arlton May 1999 A
5915649 Head Jun 1999 A
5971320 Jermyn et al. Oct 1999 A
6000911 Toulmay et al. Dec 1999 A
D421279 Tsai Feb 2000 S
6030177 Hager Feb 2000 A
6032899 Mondet et al. Mar 2000 A
6039541 Parker et al. Mar 2000 A
D425853 Caporaletti May 2000 S
6086016 Meek Jul 2000 A
6302652 Roberts Oct 2001 B1
6367736 Pancotti Apr 2002 B1
6398618 Wu Jun 2002 B1
6435453 Carter, Jr. Aug 2002 B1
6460802 Norris Oct 2002 B1
6467726 Hosoda Oct 2002 B1
D467861 Lee Dec 2002 S
6499690 Katayama et al. Dec 2002 B1
6543726 Illingworth Apr 2003 B2
6632119 Chernek et al. Oct 2003 B2
6659395 Rehkemper et al. Dec 2003 B2
6659721 Parker et al. Dec 2003 B1
6688936 Davis Feb 2004 B2
6702552 Harman Mar 2004 B1
6719244 Gress Apr 2004 B1
6732973 Rehkemper May 2004 B1
6745977 Long et al. Jun 2004 B1
6749401 Vanmoor Jun 2004 B2
6758436 Rehkemper et al. Jul 2004 B2
D496695 Davis Sep 2004 S
6789764 Bass et al. Sep 2004 B2
6843699 Davis Jan 2005 B2
6884034 Parker et al. Apr 2005 B1
6886777 Rock May 2005 B2
6896221 Einarsson May 2005 B1
6899586 Davis May 2005 B2
6929215 Arlton Aug 2005 B2
6938853 Pines et al. Sep 2005 B2
6960112 Helmlinger et al. Nov 2005 B2
6978969 Neal Dec 2005 B1
D524227 Stille et al. Jul 2006 S
D524228 Scott et al. Jul 2006 S
D524229 Stille et al. Jul 2006 S
D524230 Stille et al. Jul 2006 S
D524718 Scott et al. Jul 2006 S
7100866 Rehkemper et al. Sep 2006 B2
7147182 Flanigan Dec 2006 B1
7178757 Breese et al. Feb 2007 B1
7178758 Rehkemper Feb 2007 B2
7188803 Ishiba Mar 2007 B2
7198223 Phelps, III et al. Apr 2007 B2
7204453 Muren Apr 2007 B2
D544825 Van de Rostyne et al. Jun 2007 S
D545755 Van de Rostyne et al. Jul 2007 S
D546269 Van de Rostyne et al. Jul 2007 S
7246769 Yoeli Jul 2007 B2
D548803 Zimet Aug 2007 S
7255623 Davis Aug 2007 B2
7264199 Zientek Sep 2007 B2
7273195 Golliher Sep 2007 B1
D552531 Van de Rostyne et al. Oct 2007 S
D554040 Van de Rostyne et al. Oct 2007 S
7306186 Kusic Dec 2007 B2
D559764 Wai Jan 2008 S
D561084 Wai Feb 2008 S
D561085 Wai Feb 2008 S
D561676 Wai Feb 2008 S
D561677 Wai Feb 2008 S
D561678 Wai Feb 2008 S
D561679 Wai Feb 2008 S
D568947 Van de Rostyne et al. May 2008 S
D576215 Van de Rostyne et al. Sep 2008 S
7422505 Van de Rostyne Sep 2008 B2
7425167 Van de Rostyne Sep 2008 B2
7425168 Van de Rostyne Sep 2008 B2
D579403 Van de Rostyne et al. Oct 2008 S
D580343 Van de Rostyne et al. Nov 2008 S
D580344 Wai Nov 2008 S
D580845 Van de Rostyne et al. Nov 2008 S
D581341 Van de Rostyne et al. Nov 2008 S
D581856 Van de Rostyne et al. Dec 2008 S
D582336 Van de Rostyne et al. Dec 2008 S
D582833 Van de Rostyne et al. Dec 2008 S
D583297 Van de Rostyne et al. Dec 2008 S
7467984 Van de Rostyne Dec 2008 B2
D585810 Van de Rostyne et al. Feb 2009 S
7494397 Van de Rostyne Feb 2009 B2
7497759 Davis Mar 2009 B1
7802754 Karem Sep 2010 B2
7861967 Karem Jan 2011 B2
7997526 Greenley Aug 2011 B2
20020008759 Hoyos Jan 2002 A1
20020049518 Yamamoto Apr 2002 A1
20020109044 Rock Aug 2002 A1
20020134883 Stamps et al. Sep 2002 A1
20040087241 Agostini et al. May 2004 A1
20040162001 Davis Aug 2004 A1
20040184915 Kunii et al. Sep 2004 A1
20040222329 Kuhns et al. Nov 2004 A1
20040245376 Muren Dec 2004 A1
20050061909 Winston Mar 2005 A1
20050121552 Rehkemper Jun 2005 A1
20050121553 Isawa et al. Jun 2005 A1
20060102777 Rock May 2006 A1
20060121819 Isawa Jun 2006 A1
20060231677 Zimet et al. Oct 2006 A1
20070012818 Miyazawa et al. Jan 2007 A1
20070017724 Rajasingham Jan 2007 A1
20070105475 Gotou et al. May 2007 A1
20070158494 Burrage Jul 2007 A1
20070164148 Van De Rostyne Jul 2007 A1
20070164149 Van de Rostyne Jul 2007 A1
20070164150 Van de Rostyne et al. Jul 2007 A1
20070178798 Lai Aug 2007 A1
20070181742 Van de Rostyne et al. Aug 2007 A1
20070187549 Owen Aug 2007 A1
20070215750 Shantz et al. Sep 2007 A1
20070262197 Phelps et al. Nov 2007 A1
20080067284 Bakker Mar 2008 A1
20080111399 Zierten May 2008 A1
20080112808 Schmaling et al. May 2008 A1
20080207079 Corsiglia et al. Aug 2008 A1
20080265088 Choi Oct 2008 A1
20080299867 Van de Rostyne et al. Dec 2008 A1
20090008497 Corsiglia et al. Jan 2009 A1
20090047861 Van de Rostyne et al. Feb 2009 A1
20090047862 Van de Rostyne et al. Feb 2009 A1
20090104836 Van de Rostyne et al. Apr 2009 A1
20090117812 Van de Rostyne et al. May 2009 A1
20090163110 Van de Rostyne et al. Jun 2009 A1
20100120321 Rehkemper et al. May 2010 A1
Foreign Referenced Citations (57)
Number Date Country
338599 Dec 1926 BE
1016960 Nov 2007 BE
1496923 May 2004 CN
1 270 408 Jun 1968 DE
24 09 227 Sep 1975 DE
40 17 402 Dec 1991 DE
94 14 652 Nov 1994 DE
203 14 041 Apr 2004 DE
102 56 916 Sep 2004 DE
20 2007 000987 Apr 2007 DE
0 250 135 Dec 1987 EP
0 727 350 Aug 1996 EP
000111869-0001 Mar 2004 EP
1462362 Sep 2004 EP
P0233821 Aug 1957 ES
P0234258 Sep 1957 ES
P0245313 Apr 1959 ES
P0283794 Jan 1963 ES
490715 Apr 1980 ES
275141 Jul 1982 ES
0298826 Jan 1989 ES
0464158 Jan 1992 ES
2 074 010 Aug 1995 ES
0727350 Aug 1996 ES
1238185 Sep 2002 ES
2172362 Sep 2002 ES
2251668 Sep 2004 ES
1 040 719 Oct 1953 FR
1 265 789 May 1961 FR
255936 Jul 1926 GB
272871 May 1927 GB
281721 Aug 1928 GB
916894 Jan 1963 GB
956536 Apr 1964 GB
958536 May 1964 GB
1081341 Aug 1967 GB
1533251 Nov 1978 GB
2 436 258 Sep 2007 GB
S30-7668 Oct 1930 JP
S32-003535 Jun 1932 JP
1269699 Oct 1989 JP
5192452 Aug 1993 JP
8150818 Jun 1996 JP
9048398 Feb 1997 JP
9512515 Dec 1997 JP
10076996 Mar 1998 JP
2000-272594 Oct 2000 JP
2003-103066 Apr 2003 JP
2003-220999 Aug 2003 JP
2004-121798 Apr 2004 JP
2004-121798 Apr 2004 JP
2005-193905 Jul 2005 JP
2005-193905 Jul 2005 JP
2006-051217 Feb 2006 JP
WO03080433 Oct 2003 WO
WO2004080556 Sep 2004 WO
WO2006075096 Jul 2006 WO
Related Publications (1)
Number Date Country
20100124865 A1 May 2010 US