F16F7/00

Enhanced damping materials using negative stiffness inserts

In one embodiment, a vibration control apparatus is provided having a pair of face sheets with a core material in between. The core material comprising a positive stiffness material. A stack comprising a positive stiffness structure in series with a negative stiffness structure is located between the pair of face sheets, in parallel with the core material. The stack may be embedded in the core material. Various embodiments may include multiple stacks in parallel with each other. In some embodiments, the stack may include multiple positive stiffness structures in series with multiple negative stiffness structures. The multiple positive stiffness structures and negative stiffness structures may be interleaved.

Shock-absorbing member

A shock absorbing member of the present disclosure is a shock absorbing member including a first hollow member (11) and a second hollow member (12) that are made of aluminum alloy and are weld joined to each other, in which a weld material and weld beads (W) do not project from a side on which a joined surface between the first hollow member (11) and the second hollow member (12) is located.

DAMPING APPARATUS

A damping apparatus includes a damping unit 30 composed of a plurality of damping plates 36 having plasticity, a holding member 31 holding at least one ends of the damping plates 36 in a manner to allow deflection of the damping plates 36 with the damping plates 36 laminated together, and a contact member 33 provided at a position spaced from a holding position of the holding member 31, and attached to an outermost one of the damping plates 36, or extending through and held by the damping plates 36 in such a manner that it can be brought into contact with the outermost one of the damping plates 36 and can be moved in an extending direction thereof. The damping unit 30 is supported by a support mechanism 2 in such a manner that the contact member 33 can be brought into contact with an object W.

DAMPING APPARATUS

A damping apparatus includes a damping unit 30 composed of a plurality of damping plates 36 having plasticity, a holding member 31 holding at least one ends of the damping plates 36 in a manner to allow deflection of the damping plates 36 with the damping plates 36 laminated together, and a contact member 33 provided at a position spaced from a holding position of the holding member 31, and attached to an outermost one of the damping plates 36, or extending through and held by the damping plates 36 in such a manner that it can be brought into contact with the outermost one of the damping plates 36 and can be moved in an extending direction thereof. The damping unit 30 is supported by a support mechanism 2 in such a manner that the contact member 33 can be brought into contact with an object W.

Mobile vibration isolation device
09788446 · 2017-10-10 ·

Mobile vibration isolation devices and methods for reducing vibration transfer to electrical or electronic devices are provided. One such mobile vibration isolation device includes an array of two or more vibration isolation elements, and one or more flexible elements. The array of vibration isolation elements is connected by said one or more flexible elements. Preferably, the vibration isolation elements have at least a portion thereof of a cross linked polymer foam. More preferably, the vibration isolation elements have at least a portion thereof of SORBOTHANE®. A method for reducing vibration transfer to electrical or electronic devices includes the steps of providing a mobile vibration isolation device, and interposing the mobile vibration isolation device between the electrical or electronic device and a vibrating surface, thereby reducing vibration transfer to the electrical or electronic device.

Mobile vibration isolation device
09788446 · 2017-10-10 ·

Mobile vibration isolation devices and methods for reducing vibration transfer to electrical or electronic devices are provided. One such mobile vibration isolation device includes an array of two or more vibration isolation elements, and one or more flexible elements. The array of vibration isolation elements is connected by said one or more flexible elements. Preferably, the vibration isolation elements have at least a portion thereof of a cross linked polymer foam. More preferably, the vibration isolation elements have at least a portion thereof of SORBOTHANE®. A method for reducing vibration transfer to electrical or electronic devices includes the steps of providing a mobile vibration isolation device, and interposing the mobile vibration isolation device between the electrical or electronic device and a vibrating surface, thereby reducing vibration transfer to the electrical or electronic device.

IMPACT-ABSORBING MATERIAL AND METHOD FOR PRODUCING IMPACT-ABSORBING MATERIAL
20170328435 · 2017-11-16 · ·

An impact absorber absorbs impact energy when receiving an impact load. The impact absorber includes a fibrous structure. The fibrous structure includes a tube of which a center axis extends in a direction in which the impact load is applied and a rib that connects opposing inner surfaces of the tube. The fibrous structure is impregnated with a matrix resin. The direction in which the impact load is applied is referred to as an X direction, and a direction in which the rib connects the opposing inner surfaces of the tube is referred to as a Y direction. The tube includes a fiber layer including load direction yarns extending in the X direction and intersecting direction yarns intersecting the load direction yarns. The rib includes yarns extending only in a direction orthogonal to the X direction.

Rotorcraft vibration suppression system in a four corner pylon mount configuration

The vibration suppression system includes a vibration isolator located in each corner in a four corner pylon mount structural assembly. The combination of four vibration isolators, two being forward of the transmission, and two being aft of the transmission, collectively are effective at isolating main rotor vertical shear, pitch moment, as well as roll moment induced vibrations. Each opposing pair of vibration isolators can efficiently react against the moment oscillations because the moment can be decomposed into two antagonistic vertical oscillations at each vibration isolator. A pylon structure extends between a pair of vibration isolators thereby allowing the vibration isolators to be spaced a away from a vibrating body to provide increased control.

Rotorcraft vibration suppression system in a four corner pylon mount configuration

The vibration suppression system includes a vibration isolator located in each corner in a four corner pylon mount structural assembly. The combination of four vibration isolators, two being forward of the transmission, and two being aft of the transmission, collectively are effective at isolating main rotor vertical shear, pitch moment, as well as roll moment induced vibrations. Each opposing pair of vibration isolators can efficiently react against the moment oscillations because the moment can be decomposed into two antagonistic vertical oscillations at each vibration isolator. A pylon structure extends between a pair of vibration isolators thereby allowing the vibration isolators to be spaced a away from a vibrating body to provide increased control.

DEVICE FOR ATTENUATING ENERGY
20220042566 · 2022-02-10 ·

These teachings relate to a device that includes a base having an axis that is centered and perpendicular relative to the base and two or more arms each connected to the base at a base hinge The base hinge rotates the two or more arms away from the axis, and one or more expandable bands are connected with distal ends of the two or more arms. The one or more expandable bands absorb energy from rotating of the two or more arms. The device absorbs energy when an external force is applied along the axis of the base.