The present invention relates to a connector assembly for a low profile rocket launcher that reduces erosion, is reusable, and provides a blind mating engagement feature.
Conventional launcher connectors are typically bulky making it difficult to position launchers close to one another. Conventional low profile electrical connectors used with small diameter rocket launching systems typically degrade or erode due to the environment in which the connector components are used. Additionally, the components of low profile launching systems are not designed to be reusable. Moreover, it is often difficult to assemble corresponding mating pairs of conventional connectors because of the inability to view the components in the launcher, and the inability of the components to self-align.
Therefore, a need exists for a rocket launcher connector assembly that has a low profile, reduces erosion, has reusable components, facilitates blind mating of the components, and has a low profile.
Accordingly, the present invention provides a contact member that comprises a dielectric body that has opposite first and second ends and opposite first and second sides that extend between the first and second ends, and the first side is a mating interface for engaging a mating contact. The dielectric body has at least first and second steps and a sloped surface therebetween. The sloped surface slopes in a direction from the first end to the second end such that a depth of the first side at the first end is smaller than a depth of the first side at the second end. At least first and second contacts are supported by the dielectric body in the first and second steps, respectively. Each of the first and second contacts have a substantially flat pad at one end and a tail at an opposite end, wherein the pads are exposed at the first side of the dielectric body and the tails extend thru the second side of the dielectric body.
The present invention may also provide a contact member that comprises a frame and at least first and second inserts supported in the frame such that the first insert is offset from the second insert. Each of the first and second inserts has an interface side, and each of the first and second inserts supports at least one conductive spring member. Each spring member has a stationary end disposed inside of the first and second inserts, respectively, and a resilient end opposite the stationary end. The resilient end of each spring member has a rounded portion. The rounded portions extend thru the interface side of the first and second inserts, respectively, such that the rounded portions are exposed, thereby allowing the rounded portions to engage mating contacts.
The present invention may further provide a connector assembly that comprises at least a first connector component and a housing that has an inner receiving area and a connector holding portion at a perimeter of the receiving area for holding the first connector component. The connector holding portion defines an alignment channel. An alignment member supports the first connector component and the alignment member has a cross-sectional shape substantially the same as a cross-sectional shape of the alignment channel of the connector holding portion. The alignment member is slidably received in the alignment channel in an insert direction. A tolerance member is engaged with both the alignment member and the connector holding portion of the housing, wherein as the alignment member slides in the alignment channel, the tolerance member biases the alignment member in a direction opposite the insert direction
The present invention may yet further provide a rocket launcher connector assembly that comprises a first connector component coupled to a launch tube and the first connector component includes a dielectric body that has at least first and second steps and a sloped surface therebetween at a mating interface of the dielectric body. The at least first and second contacts are supported by the dielectric body in the first and second steps, respectively. Each of the first and second contacts have a substantially flat pad at one end and a tail at an opposite end, wherein the pads are exposed at the mating interface of the dielectric body and the tails that extends through a side of the dielectric body opposite the mating interface. A second connector component is coupled to a rocket. The second connector component includes a frame and at least first and second inserts supported in the frame such that the first and second inserts are offset from one another. Each of the first and second inserts have an interface side configured to engage the mating interface of the first connector component and each of the first and second inserts support at least one conductive spring member. Each spring member has a stationary end and a resilient end opposite the stationary end. The resilient end has a rounded portion. The rounded portions extend thru the interface sides of the first and second inserts, respectively, such that the rounded portions are exposed, thereby allowing the rounded portions to engage the pads of the first connector component. A housing has an inner receiving area and a connector holding portion at a perimeter of the receiving area for holding the first and second connector components. The connector holding portion defines an alignment channel. The alignment member supports the first connector component and the alignment member is slidably received in the alignment channel in an insert direction. A tolerance member is engaged with both the alignment member and the connector holding portion of the housing, wherein as the alignment member slides in the alignment channel, the tolerance member biases the alignment member in a direction opposite the insert direction.
Other objects, advantages and salient features of the invention will become apparent from the following detailed description, which, taken in conjunction with the annexed drawings, discloses a preferred embodiment of the present invention.
A more complete appreciation of the invention and many of the attendant advantages thereof will be readily obtained as the same becomes better understood by reference to the following detailed description when considered in connection with the accompanying drawings, wherein:
a is a perspective view of the contact member illustrated in
b is an end view of the contact member and alignment member illustrated in
a is a perspective view of an insert of the contact member illustrated in
b is an exploded perspective view of the insert illustrated in
a is a cross-sectional view of the rocket launcher illustrated in
b is a cross-sectional view similar to
Referring to
The connector assembly 100 in accordance with an exemplary embodiment of the present invention generally includes a first connector component 110 coupled to a housing 112, such as launch tube of the rocket launcher, and a second connector component 120 that may be coupled to a rocket 122, for example, as best seen in
As seen in
The first side 306 of the body 300 preferably includes a plurality of steps, such as first, second and third steps 320, 322, and 324. A first sloped surface 330 is located between the body's first end 302 and the first step 320, a second sloped surface 332 is located between the first and second steps 320 and 322, and a third sloped surface 334 is located between the second and third steps 322 and 324. The steps 320, 322, and 324 and the sloped surfaces 330, 332, and 334 create a stepped mating interface; wherein the sloped surfaces 330, 332, and 334 generally slope in a direction from the first end 302 to the second end 304 such that the depth of the side 306 at the second end 304 is larger than the depth of the side 306 at the first end 302. Disposed in each step 320, 322 and 324 of the body is a row of openings 340a, 340b, and 340c, respectively, for receiving the contacts 310.
As best seen in
As seen in
As seen in
Each insert 510 and 512 may be formed of a main part 530 and a secondary part 532 that couples to the main part 530, as seen in
As seen in
To assemble the first connector component 110 with the housing 112 and specifically the connector holding portion 220, the lead-in end portion 412 of the alignment member 400 is inserted into the open end of the alignment channel 222. Once inserted, the first side 306 of the connector component 110 faces inside of the housing 112 and the second side 308 extends though an opening 230 (
The tolerance member 140 is preferably a compression or extension spring that is coupled both to the alignment member 400 and the connector holding portion 220 of the housing 112 by first and second brackets 902 and 904, respectively, as seen in
When the rocket 122 is installed in the launcher housing 112, the rocket is inserted through the housing's launch end 212 and into the receiving area 210. In doing so, the attachment member 502 of the second or rocket connector component 120 is aligned with the alignment member 400 of the first or launcher connector component 110 such that the component 120 slides in the inner channel area 420 until the rows of spring members 550 in the second insert 512 engage the pads 312 in the second step 322 of component 110 and the rows of spring members 550 in the first insert 510 engage the pads 312 in the first step 320 of component 110, as best seen in
The stepped configuration of the dielectric body 300 allows a multitude of contacts to be arranged such that they exist in a minimal space relative to the circumference of the housing or launch tube. It is advantageous for the connector assembly 100 to exist in a minimal space, thus allowing the launch tubes in multi-tube launcher systems to clustered more tightly, further allowing more launch tubes to be present in a prescribed multi-tube launcher volume.
In particular, the rounded portions 556 of the spring members 550 of the component 120 individually engage the substantially flat pads 312 of the component 110, as seen in
Once the rocket 122 is inserted and the components 110 and 120 are mated, the tolerance member 140 allows the assembly 100 of the components 110 and 120 to slide or float axially between forward and aft positions, as seen in
In the front position, the tolerance member 140 is not compressed and the movable bracket 902, which is connected to the first connector component 110, is located near the launch end 212 of the housing 112. As the rocket is inserted into the housing 112, the tolerance member 140 allows axial movement to the aft position as the rocket component connector 120 engages with the launcher connector component 110. In the aft position, the moveable bracket 902 moves toward the stationary bracket 904 and the tolerance member 140 is compressed to provide axial float while also preventing the connector components from being over-inserted too far into the housing 112. The dielectric body 300 of the first connector component 110 moves within the opening 230 of the housing's connector holding portion 220 as the tolerance member 140 is compressed and released.
While particular embodiments have been chosen to illustrate the invention, it will be understood by those skilled in the art that various changes and modifications can be made therein without departing from the scope of the invention as defined in the appended claims.