CN211494222U - 3D prints back knuckle, suspension system and car - Google Patents

3D prints back knuckle, suspension system and car Download PDF

Info

Publication number
CN211494222U
CN211494222U CN202021675935.7U CN202021675935U CN211494222U CN 211494222 U CN211494222 U CN 211494222U CN 202021675935 U CN202021675935 U CN 202021675935U CN 211494222 U CN211494222 U CN 211494222U
Authority
CN
China
Prior art keywords
arm
shaft hole
knuckle
mounting
connecting seat
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Active
Application number
CN202021675935.7U
Other languages
Chinese (zh)
Inventor
蒯振
田博士
葛俊
武胜军
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Beijing Electric Vehicle Co Ltd
Original Assignee
Beijing Electric Vehicle Co Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Beijing Electric Vehicle Co Ltd filed Critical Beijing Electric Vehicle Co Ltd
Priority to CN202021675935.7U priority Critical patent/CN211494222U/en
Application granted granted Critical
Publication of CN211494222U publication Critical patent/CN211494222U/en
Active legal-status Critical Current
Anticipated expiration legal-status Critical

Links

Images

Abstract

The utility model provides a 3D prints back knuckle, suspension system and car, the 3D who has shaft hole connecting seat and linking arm wherein prints back knuckle includes: the reinforcing ribs are arranged on the connecting arms, and are formed into reinforcing ribs with different thicknesses and irregularities along the stress path so as to connect part of the connecting arms with the shaft hole connecting seat and/or the other connecting arm; the hollow weight-reducing structure is arranged on the connecting arm; a hollow structure; a plurality of supporting plates are arranged between the inner wall surfaces of the partial hollow structures. The utility model discloses a 3D prints back knuckle is through setting up the strengthening rib along the atress route on the linking arm to the combination has backup pad hollow structure and fretwork to subtract the setting of heavy structure, on guaranteeing that 3D prints back knuckle has sufficient stress intensity's basis, the weight of 3D printing back knuckle that has significantly reduced is favorable to realizing the lightweight of suspension system and car, and guarantees the maneuverability and the travelling comfort of car.

Description

3D prints back knuckle, suspension system and car
Technical Field
The utility model relates to an automobile parts technical field, in particular to 3D prints back knuckle, suspension system and car.
Background
The rear suspension system is an important component of the chassis structure. The design of the rear suspension system not only influences the stability and comfort of the chassis, but also influences the structural design of the vehicle body. The rear steering knuckle is one of main parts on an automobile rear suspension system, is complex in shape, integrates the structural characteristics of four parts such as a shaft, a sleeve, a disc ring and a fork frame, and mainly comprises three parts, namely a support shaft neck, a flange plate and a fork frame. The main function of the device is to connect each swing arm, a hub bearing and a brake caliper of the multi-link independent suspension to bear the load transmitted by the wheel. And simultaneously bears the impact load transmitted by the tire, the rear trailing arm, the rear strut and the rear suspension transverse control arm. In order to ensure accurate positioning of the rear wheel during driving, the rear wheel is generally required to have high strength, size and position accuracy. And light weight is required for ensuring the ride-through and economy of the automobile. Therefore, the structural design of the steering knuckle comprehensively considers the stress condition of each connecting part, and the weight is reduced on the premise of meeting the stress strength. The common steering knuckle has a simple structure and is heavy under the condition of meeting the strength requirement.
The geometrical shape and the stress condition of the rear steering knuckle are complex, and in order to ensure the strength and the durability, the rear steering knuckle is obtained by adopting a nodular cast iron process at present. The existing rear steering knuckle is heavy in structure and poor in four-wheel drive expansibility due to the limitation of arrangement space and bearing characteristics of the rear steering knuckle. The product has poor process feasibility, assembly convenience and structural reliability.
Disclosure of Invention
The embodiment of the utility model provides a technical purpose that will reach provides a 3D prints back knuckle, suspension system and car for solve present back knuckle and be subject to the manufacturing process, arrange the space and bear the weight of characteristics, have the structure heavy, the poor scheduling problem of technology feasibility.
In order to solve the technical problem, the embodiment of the utility model provides a 3D prints back knuckle, include: the middle part is provided with the shaft hole connecting seat in shaft hole and a plurality of linking arm by the outside extension of shaft hole connecting seat, and it is provided with a plurality of mounting holes to encircle the shaft hole on the shaft hole connecting seat, is provided with the installation department that is used for connecting corresponding vehicle part on the linking arm, and integrated into one piece's 3D prints the back knuckle, still includes:
the reinforcing ribs are arranged on the connecting arms, the reinforcing ribs form irregular three-dimensional structures with different thicknesses along stress paths, and at least part of the connecting arms are connected with the shaft hole connecting seat and/or the other connecting arm through the reinforcing ribs;
the hollow weight-reducing structure is arranged on the connecting arm;
at least one connecting arm and/or reinforcing rib is provided with a hollow structure;
a plurality of supporting plates are arranged between the inner wall surfaces of the partial hollow structures.
Preferably, in the 3D printed knuckle as described above, the support plates have a predetermined thickness, and the spacing distance between adjacent support plates is within a predetermined distance range.
Specifically, as above-mentioned 3D prints back knuckle, the quantity of mounting hole is four, includes: the first mounting hole, the second mounting hole, the third mounting hole and the fourth mounting hole are sequentially arranged corresponding to four corners of the preset square, wherein the middle point of the preset square is positioned on the axis of the shaft hole;
the plurality of connecting arms includes:
the first connecting arm corresponds to the first mounting hole and extends along a preset direction, an H-arm connecting rod mounting part is arranged at one end, close to the shaft hole connecting seat, of the first connecting arm, an upper end arm mounting part is arranged at one end, far away from the shaft hole connecting seat, of the first connecting arm, and the preset direction is parallel to the axial direction of the shaft hole;
a second connecting arm which corresponds to the second mounting hole and extends along the preset direction, wherein a toe-in pull rod mounting part is arranged at one end, far away from the shaft hole connecting seat, of the second connecting arm; and the number of the first and second groups,
and the third connecting arm corresponds to the third mounting hole and extends along the preset direction, and an H-arm mounting part is arranged at one end, far away from the shaft hole connecting seat, of the third connecting arm.
Preferably, as described above for the 3D post-printing knuckle, the plurality of reinforcing ribs include:
the first reinforcing rib is connected with the toe-in pull rod mounting part and the H-arm mounting part;
the second reinforcing rib is formed into a net structure and is respectively connected with the toe-in pull rod mounting part, the first connecting arm and the shaft hole connecting seat;
and the third reinforcing rib is connected with the side wall or the end surface of the H-shaped arm mounting part and the shaft hole connecting seat, which corresponds to the third mounting hole.
Further, as above, the 3D printing rear knuckle has the hollow structure in both the first reinforcing rib and the third reinforcing rib.
Specifically, as described above for the 3D post-printing knuckle, the plurality of connecting arms further include:
the two caliper connecting arms extend outwards and are perpendicular to the side wall of the shaft hole connecting seat, and a caliper mounting part is arranged at one end, far away from the shaft hole connecting seat, of each caliper connecting arm;
wherein, the first calliper linking arm of two calliper linking arms corresponds the third mounting hole setting, and the second calliper linking arm corresponds the fourth mounting hole setting.
Preferably, as described above for the 3D post-printing knuckle, the plurality of reinforcing ribs include:
and the fourth reinforcing rib is connected with the caliper mounting part on the second caliper connecting arm and one end, far away from the shaft hole connecting seat, of the first connecting arm.
Specifically, as for the 3D post-printing knuckle as described above, the first connecting arm, the second connecting arm and the third connecting arm are all provided with brake disc mounting structures protruding away from the preset direction.
Yet another preferred embodiment of the present invention provides a suspension system, including: go up swing arm, H arm connecting rod, toe-in pull rod, wheel hub bearing, calliper, brake disc and as above 3D print back knuckle, wherein, 3D print back knuckle respectively with go up swing arm, H arm connecting rod, toe-in pull rod, wheel hub bearing, calliper and brake disc and be connected.
The utility model discloses a still another preferred embodiment provides an automobile, include: a suspension system as described above.
Compared with the prior art, the embodiment of the utility model provides a pair of 3D prints back knuckle, suspension system and car has following beneficial effect at least:
the embodiment of the utility model provides an in, the linking arm that has the installation department through extending the setting on the shaft hole connecting seat, be connected with automobile parts, and through setting up the hollow structure who has the backup pad on the linking arm, and set up the strengthening rib along the atress route, on guaranteeing that 3D prints the basis that the back knuckle has sufficient atress intensity, through reducing the entity volume that 3D printed the back knuckle, the weight of 3D printing back knuckle has significantly reduced, be favorable to realizing the lightweight of suspension system and car, and guarantee the maneuverability and the travelling comfort of car.
Drawings
Fig. 1 is a front view of a 3D printed knuckle according to an embodiment of the present invention;
fig. 2 is a front oblique view of a 3D printed rear knuckle according to an embodiment of the present invention;
fig. 3 is a back oblique view of a 3D printed knuckle according to an embodiment of the present invention;
fig. 4 is a left side view of the 3D printed knuckle according to the embodiment of the present invention;
fig. 5 is a right side view of a 3D post-printing knuckle according to an embodiment of the present invention;
fig. 6 is a top oblique view of a 3D post-printing knuckle according to an embodiment of the present invention;
fig. 7 is a bottom oblique view of the 3D printed rear knuckle provided by the embodiment of the present invention;
fig. 8 is a bottom view of a 3D post-printing knuckle according to an embodiment of the present invention;
fig. 9 is a cross-sectional view of a 3D post-printing knuckle according to an embodiment of the present invention;
FIG. 10 is an enlarged view of a portion of FIG. 9 at A;
FIG. 11 is an enlarged view of a portion of FIG. 9 at B;
fig. 12 is a schematic structural diagram of a suspension system according to an embodiment of the present invention;
fig. 13 is a second schematic structural view of a suspension system according to an embodiment of the present invention;
fig. 14 is a schematic structural diagram of a rear brake assembly according to an embodiment of the present invention;
fig. 15 is a schematic structural view of an upper swing arm according to an embodiment of the present invention;
fig. 16 is a schematic structural diagram of an H-arm according to an embodiment of the present invention;
fig. 17 is a schematic structural view of an H-arm link according to an embodiment of the present invention;
fig. 18 is a schematic structural view of a toe-in pull rod according to an embodiment of the present invention;
fig. 19 is a schematic structural view of a hub bearing provided by an embodiment of the present invention.
[ description of reference ]
1. The shaft hole connecting seat; 101. a shaft hole; 102. mounting holes; 1021. a first mounting hole; 1022. a second mounting hole; 1023. a third mounting hole; 1024. a fourth mounting hole; 201. a first connecting arm; 2011. an H-arm link mounting section; 2012. an upper end arm mounting section; 202. a second connecting arm; 2021. a toe-in pull rod mounting section; 203. a third connecting arm; 2031. an H-arm mounting section; 204. a caliper connecting arm; 2041. a first caliper connecting arm; 2042. a second caliper connecting arm; 301. a first reinforcing rib, 302, a second reinforcing rib; 303. a third reinforcing rib; 304. a fourth reinforcing rib; 4. a brake disc mounting structure; 5. a hollow structure; 6. a support plate; 100. 3D printing a rear knuckle; 200. an upper swing arm; 2001. an upper swing arm fixing part; 2002. a first fixed part; 300. an H arm; 3001. a first body portion; 30011. an H-arm link fixing portion; 30012. a first subframe fixing portion; 3002. a second body portion; 30021. an H-arm fixing part; 30022. a second subframe fixing portion; 30023. a recessed structure; 400. an H-arm connecting rod; 4001. a second fixed part; 4002. a third fixed part; 500. a toe-in pull rod; 5001. a toe-in tension rod fixing part; 5002. a fourth fixing part; 600. a hub bearing; 6001. a first flange; 6002. a second flange; 700. a caliper; 800. a brake disc; 900. a rear fender; 1000. the half shaft is driven.
Detailed Description
In order to make the technical problems, technical solutions and advantages to be solved by the present invention clearer, the following detailed description will be given with reference to the accompanying drawings and specific embodiments. In the following description, specific details are provided, such as specific configurations and components, merely to facilitate a thorough understanding of embodiments of the invention. Thus, it will be apparent to those skilled in the art that various changes and modifications may be made to the embodiments described herein without departing from the scope and spirit of the invention. In addition, descriptions of well-known functions and constructions are omitted for clarity and conciseness.
It should be appreciated that reference throughout this specification to "one embodiment" or "an embodiment" means that a particular feature, structure or characteristic described in connection with the embodiment is included in at least one embodiment of the present invention. Thus, the appearances of the phrases "in one embodiment" or "in an embodiment" in various places throughout this specification are not necessarily all referring to the same embodiment. Furthermore, the particular features, structures, or characteristics may be combined in any suitable manner in one or more embodiments.
In various embodiments of the present invention, it should be understood that the sequence numbers of the following processes do not mean the execution sequence, and the execution sequence of the processes should be determined by the functions and the internal logic, and should not constitute any limitation to the implementation process of the embodiments of the present invention.
It should be understood that the term "and/or" herein is merely one type of association relationship that describes an associated object, meaning that three relationships may exist, e.g., a and/or B may mean: a exists alone, A and B exist simultaneously, and B exists alone. In addition, the character "/" herein generally indicates that the former and latter related objects are in an "or" relationship.
In the embodiments provided herein, it should be understood that "B corresponding to a" means that B is associated with a from which B can be determined. It should also be understood that determining B from a does not mean determining B from a alone, but may also be determined from a and/or other information.
Referring to fig. 1 to 11, a preferred embodiment of the present invention provides a 3D printed rear knuckle, including: the middle part is provided with shaft hole connecting seat 1 of shaft hole 101 and a plurality of linking arm by the outside extension of shaft hole connecting seat 1, and shaft hole connecting seat 1 goes up to encircle shaft hole 101 and is provided with a plurality of mounting holes 102, is provided with the installation department that is used for connecting corresponding vehicle part on the linking arm, and integrated into one piece's 3D prints the back knuckle, still includes:
the reinforcing ribs are arranged on the connecting arms, the reinforcing ribs form irregular three-dimensional structures with different thicknesses along stress paths, and at least part of the connecting arms are connected with the shaft hole connecting seat 1 and/or the other connecting arm through the reinforcing ribs;
the hollow weight-reducing structure is arranged on the connecting arm;
at least one connecting arm and/or reinforcing rib is provided with a hollow structure 5;
a plurality of support plates 6 are provided between the inner wall surfaces of the partially hollow structure 5.
In a specific embodiment of the utility model, based on the function of the rear knuckle of the automobile, the 3D printed rear knuckle of the utility model comprises a shaft hole connecting seat 1 for connecting with a hub bearing, wherein the outer ring of the hub bearing is inserted into a shaft hole 101 of the shaft hole connecting seat 1, and a flange of the hub bearing can be fixedly connected with the shaft hole connecting seat 1 through a plurality of mounting holes 102 arranged around the shaft hole 101, so that the connection of the hub bearing is ensured, and the installation of a driving half shaft is further facilitated; a plurality of connecting arms extending from the outer side wall or the end face of the shaft hole connecting seat 1 are provided with mounting parts for connecting corresponding vehicle parts, and the plurality of vehicle parts are connected with a 3D printed steering knuckle to form a suspension system; the extending direction of the connecting arm is set according to the stress path of the installation part after stress analysis, and is perpendicular to the axial direction of the shaft hole 101 or forms a preset angle with the axial direction.
Still be provided with the strengthening rib on the linking arm, the quantity of strengthening rib can be set for according to actual demand, at least part linking arm can directly pass through the strengthening rib with shaft hole connecting seat 1 and be connected, and/or, at least part linking arm is connected with other strengthening rib of accessible between another linking arm, realize the transmission of power between the linking arm, through constituting the polygon including space triangle-shaped, be favorable to improving the structural strength and the rigidity of linking arm and whole 3D printing back knuckle, guarantee that 3D prints the realization of the function that other vehicle parts are connected and constitute suspension system to the knuckle, be favorable to reducing the entity volume of linking arm and shaft hole connecting seat 1 simultaneously. The reinforcing ribs are arranged along the stress path and are in a three-dimensional structure with different thicknesses and irregular shapes, the three-dimensional structure is different from the conventional regular reinforcing ribs, the characteristics of the 3D printing technology are utilized, the structural strength of the connecting arm is improved, meanwhile, the unnecessary solid parts for keeping the shapes of the reinforcing ribs are reduced, and the light weight of the 3D printed steering knuckle is facilitated.
Be provided with the fretwork on the linking arm and subtract heavy structure, preferably, the position that the fretwork subtracts heavy structure is located the linking arm and carries out the non-atress route after the atress analysis, through reducing unnecessary solid structure, is favorable to realizing the lightweight of 3D printing back knuckle, and can not lead to the fact the influence to transmission etc. of power under the prerequisite that subtracts heavy.
Preferably, at least one connecting arm and/or reinforcing rib is provided with a hollow structure 5, and under the condition that the connecting strength is ensured, the hollow structure 5 is favorable for further reducing the weight of the whole 3D printed steering knuckle.
Be provided with a plurality of backup pads 6 between partial hollow structure 5's the internal face, be favorable to strengthening the structural strength of hollow structure 5 department, avoid taking place because of the too big condition that makes the central control structure invagination even breakage of atress, promote the fatigue durability of linking arm or strengthening rib, simultaneously, provide strong support to linking arm or strengthening rib, avoid appearing subsiding and melting problem when adopting the additive manufacturing technique such as 3D to print the preparation, and then the product size that leads to is inaccurate.
To sum up, in the embodiment of the utility model discloses a in the embodiment, through set up the strengthening rib along the atress route on the linking arm to combine hollow structure 5 and fretwork to subtract the setting of heavy structure, and set up backup pad 6 along atress inner wall atress direction in hollow structure, on guaranteeing that 3D prints the basis that the back knuckle has sufficient atress intensity, the weight of the back knuckle is printed in 3D that has significantly reduced, be favorable to realizing the lightweight of suspension system and car, and guarantee maneuverability and the travelling comfort of car.
Preferably, the knuckle after 3D prints in the above-mentioned embodiment adopts the vibration material disk technique to utilize aluminum alloy powder to make the shaping, has guaranteed the realization of above-mentioned structural design, has avoided setting up unnecessary auxiliary structure simultaneously, has reduced the entity volume of essential structure, and adopts light aluminum alloy, further has reduced the weight of 3D printing back knuckle, makes the utility model discloses a 3D prints back knuckle and subtracts 35% to 45% in 3D printing back knuckle that adopts light material to make equally, makes the mechanical properties, intensity, rigidity and the fatigue durability of 3D printing back knuckle improve about 5% simultaneously.
The utility model discloses a specific embodiment provides a predetermine aluminum alloy powder material, wherein specifically carries out the scope to the weight percent of various components and has limited, include: 9% -11% silicon; 0.2-0.45% magnesium; less than or equal to 0.55% iron; less than or equal to 0.05% copper; less than or equal to 0.45% manganese; less than or equal to 0.1% zinc; less than or equal to 0.15% titanium; less than or equal to 0.05% nickel; less than or equal to 0.05% lead; less than or equal to 0.05% tin; the balance being aluminum. The indexes such as tensile strength, yield strength and the like of the 3D printing steering knuckle are guaranteed. It should be noted that the predetermined aluminum alloy powder material in this embodiment is ideal, and in actual production, there may be some impurities other than the above-mentioned components, which are not removable, and the weight percentage of the impurities in the predetermined aluminum alloy powder material is less than or equal to 0.15%. Specifically, each component of the non-removable impurities is less than or equal to 0.05% by weight in the predetermined aluminum alloy powder material. Adopt other light materials to replace the aluminum alloy also belong to the protection scope of the utility model.
Specifically, the mounting portion is formed in an annular structure or provided with a spherical hole; preferably, the mounting part is also provided with a rubber bushing for buffering, which is beneficial to reducing the abrasion, vibration and noise of the equipment, has an anti-corrosion effect, and can also facilitate the maintenance of mechanical equipment and simplify the structure and the manufacturing process of the equipment.
Referring to fig. 9 to 11, preferably, in the 3D printed knuckle as described above, the supporting plates 6 have a predetermined thickness, and the spacing distance between adjacent supporting plates 6 is within a predetermined distance range.
In a specific embodiment of the present invention, in order to avoid the influence of the thickness, the extension length and the distance of the plurality of supporting plates 6 on the supporting function and the weight reduction function of the hollow structure 5, wherein the preset thickness is in the range of 1mm to 1.5mm, preferably 1.2mm, the structural strength of each supporting plate 6 is ensured; the preset distance range is between 1mm and 3mm, and the number of the supporting plates 6 is ensured to meet the requirements of the hollow structure 5 on strength and weight reduction. Alternatively, to ensure the rationality of providing the support plates, the extension length of the support plates 6 may be set between a predetermined width range, for example 15mm to 25 mm.
Referring to fig. 1 to 9, in particular, as described above for the 3D post-printing knuckle, the number of the mounting holes 102 is four, including: a first mounting hole 1021, a second mounting hole 1022, a third mounting hole 1023 and a fourth mounting hole 1024 which are sequentially arranged corresponding to four corners of a preset square, wherein the middle point of the preset square is positioned on the axis of the shaft hole 101;
the plurality of connecting arms includes:
a first connecting arm 201 corresponding to the first mounting hole 1021 and extending along a preset direction, wherein an H-arm connecting rod mounting part 2011 is arranged at one end of the first connecting arm 201 close to the shaft hole connecting seat 1, an upper end arm mounting part 2012 is arranged at one end of the first connecting arm 201 far away from the shaft hole connecting seat 1, and the preset direction is parallel to the axial direction of the shaft hole 101;
a toe-in pull rod mounting part 2021 is arranged at one end, away from the axle hole connecting seat 1, of the second connecting arm 202 corresponding to the second mounting hole 1022 and extending along the preset direction; and the number of the first and second groups,
and an H-arm mounting portion 2031 is provided at one end of the third connecting arm 203 far from the axle hole connecting base 1, corresponding to the third mounting hole 1023 and extending along the preset direction.
The quantity of mounting hole 102 on the shaft hole connecting seat 1 is mainly confirmed with arranging according to the quantity of the hole that the ring flange corresponds on the wheel hub bearing with arranging the utility model discloses a in a concrete embodiment, arrange along the square with a plurality of mounting holes 102 and carry out concrete explanation, wherein, the quantity of mounting hole 102 is four and corresponds with four angles of square respectively, and the mid point of square falls on the axis in shaft hole 101 for be connected the back through ring flange and shaft hole connecting seat 1, restrict the wheel hub bearing, be favorable to guaranteeing 3D and print back knuckle and wheel hub bearing's stability of being connected.
In an embodiment of the present invention, the four mounting holes 102 are exemplified, wherein a plurality of connecting arms are specifically disclosed to include: correspond first connecting arm 201 of first mounting hole 1021, second connecting arm 202 that corresponds the setting of second mounting hole 1022 and third connecting arm 203 that corresponds the setting of third mounting hole 1023, and first connecting arm 201, first connecting arm 201 and third connecting arm 203 all extend along the Z axle forward, and be provided with H arm connecting rod installation department 2011 respectively, upper end arm installation department 2012, toe-in pull rod installation department 2021 and H arm installation department 2031, make the H arm connecting rod that corresponds on the car, the upper end arm, toe-in pull rod and H arm all are located same one side of shaft hole connecting seat 1, be convenient for install. Specifically, when first connecting arm 201, second connecting arm 202 and third connecting arm 203 are extended forward along the Z-axis by the lateral wall of shaft hole connecting seat 1, at first confirm the quantity of installation department and the installation position of each installation department on this connecting arm, and then synthesize according to the atress route of each installation department and confirm connecting arm extension route and cross sectional shape for the entity volume of connecting arm after confirming is minimum, and then is favorable to alleviateing the weight of whole 3D printing back knuckle.
It should be noted that, the aforesaid extend along predetermineeing the direction and only carry out the injecing of broad scope to the orientation of linking arm, according to the atress route behind the position relation between installation department and the shaft hole connecting seat 1 and the atress analysis of installation department, the linking arm has certain displacement in the axial direction of perpendicular to when extending along predetermineeing the direction also belongs to the utility model discloses a protection scope.
Referring to fig. 1 to 8, preferably, as the 3D post-printing knuckle described above, the plurality of reinforcing ribs include:
a first rib 301, the first rib 301 connecting the toe-in lever mounting portion 2021 and the H-arm mounting portion 2031;
the second reinforcing ribs 302 are formed into a net structure, and are respectively connected with the toe-in pull rod mounting part 2021, the first connecting arm 201 and the shaft hole connecting seat 1;
and the third reinforcing rib 303, the third reinforcing rib 303 connects the side wall or the end surface corresponding to the third mounting hole 1023 on the H-arm mounting part 2031 and the shaft hole connecting base 1.
In an embodiment of the present invention, the toe-in lever mounting portion 2021 is connected to the H-arm mounting portion 2031, the first connecting arm 201, and the shaft hole connecting seat 1 through the first reinforcing rib 301 and the second reinforcing rib 302, respectively, and because the toe-in lever mounting portion 2021 is connected to the shaft hole connecting seat 1 through the second connecting arm 202, the H-arm mounting portion 2031 is connected to the shaft hole connecting seat 1 through the third connecting arm 203, thereby forming a structure similar to a triangular pyramid, which is beneficial to improving the stable mounting of the toe-in lever mounting portion 2021, and meanwhile, because the force applied to the toe-in lever mounting portion 2021 can be dispersed through various ways, the second connecting arm 202 can satisfy the requirement for the bearing capacity through a smaller structure, which is beneficial to reducing the solid volume of the second connecting arm 202;
the H-arm mounting portion 2031 is connected with the toe-in pull rod mounting portion 2021 and the shaft hole connecting seat 1 through the first reinforcing rib 301 and the third reinforcing rib 303, respectively, and since the H-arm mounting portion 2031 is connected with the shaft hole connecting seat 1 through the third connecting arm 203, the force received by the H-arm mounting portion 2031 can be dispersed through various ways, so that the third connecting arm 203 can meet the requirement for bearing capacity through a smaller structure, which is beneficial to reducing the solid volume of the third connecting arm 203;
first connecting arm 201 accessible netted second strengthening rib 302 is connected with second connecting arm 202 and shaft hole connecting seat 1, forms a rectangle or triangular structure for the power accessible multiple route dispersion that H arm connecting rod installation portion 2011 received makes first connecting arm 201 can satisfy the demand to the bearing capacity through less structure, is favorable to reducing the entity volume of first connecting arm 201.
Preferably, the second reinforcing rib 302 is formed into a net structure, so that a triangular structure is formed between the adjacent branches and the first connecting arm 201, the second connecting arm 202 or the shaft hole connecting base 1, thereby being beneficial to improving the connecting strength between the first connecting arm 201 and the second connecting arm 202, between the first connecting arm 201 and the shaft hole connecting base 1 and between the second connecting arm 202 and the shaft hole connecting base 1.
Referring to fig. 9, further, as for the 3D printed knuckle described above, the first reinforcing rib 301 and the third reinforcing rib 303 are provided with the hollow structure 5.
In the present invention, in a preferred embodiment, the first reinforcing rib 301 and the third reinforcing rib 303 are both provided with the hollow structure 5, so that the solid volume on the non-stressed path is reduced on the premise of ensuring the transmission of force, which is beneficial to reducing the weight of the 3D printed knuckle.
Referring to fig. 1 to 8, in particular, as the 3D post-printing knuckle described above, the plurality of connecting arms further include:
two caliper connecting arms 204 extending outwards and perpendicular to the side wall of the shaft hole connecting seat 1, and a caliper mounting part is arranged at one end of each caliper connecting arm 204 far away from the shaft hole connecting seat 1;
wherein, the first caliper connecting arm 2041 of the two caliper connecting arms 204 is arranged corresponding to the third mounting hole 1023, and the second caliper connecting arm 2042 is arranged corresponding to the fourth mounting hole 1024.
In a specific embodiment of the utility model, a plurality of linking arms are still including the calliper linking arm 204 that is used for fixed calliper, realize the connection to calliper through the calliper installation department on the calliper linking arm 204.
Referring to fig. 1 to 8, preferably, as the 3D post-printing knuckle described above, the plurality of reinforcing ribs include:
and the fourth reinforcing rib 304 is connected with the caliper mounting part on the second caliper connecting arm 2042 and one end, far away from the shaft hole connecting seat 1, of the first connecting arm 201 by the fourth reinforcing rib 304.
The utility model discloses an in a specific embodiment, the one end that shaft hole connecting seat 1 was kept away from to calliper connecting portion and first connecting arm 201 on the second calliper connecting arm 2042 is connected to fourth strengthening rib 304 in a plurality of strengthening ribs, make fourth strengthening rib 304, constitute a triangle-shaped structure between first connecting arm 201 and the second calliper connecting arm 2042, guarantee the installation stability of this calliper installation department, simultaneously can transmit the power that the calliper installation department received to shaft hole connecting seat 1 through second calliper connecting arm 2042 and fourth strengthening rib 304, make second calliper connecting arm 2042 can satisfy the demand to the bearing capacity through less structure, be favorable to reducing the entity volume of second calliper connecting arm 2042.
Preferably, be provided with first hollow out construction on first calliper connecting arm 2041 and the second calliper connecting arm 2042, this first hollow out construction is on the non-atress route after first calliper connecting arm 2041 and the second calliper connecting arm 2042 atress analysis, can not cause the influence to the bearing of first calliper connecting arm 2041 and second calliper connecting arm 2042, under the prerequisite that guarantees that first calliper connecting arm 2041 and second calliper connecting arm 2042 have sufficient structural strength, be favorable to realizing the lightweight of whole 3D printing back knuckle through reducing the entity volume.
Specifically, as described above for the 3D post-printing knuckle, the brake disc mounting structures 4 protruding away from the preset direction are disposed on the first connecting arm 201, the second connecting arm 202 and the third connecting arm 203.
In a specific embodiment of the utility model, the 3D printed knuckle is further provided with a brake disc mounting structure 4 for connecting with a brake disc, so as to facilitate connection with the brake disc, wherein the brake disc mounting structure 4 protrudes along the negative direction of the Z axis, so as to facilitate avoiding interference between the brake disc and the axle hole connecting seat 1; specifically, the brake disk mounting structure 4 is respectively disposed on the first connecting arm 201, the second connecting arm 202 and the third connecting arm 203, and is formed into a triangular structure, which is beneficial to improving the connection stability of the brake disk. Furthermore, be provided with the screw hole on the brake disc mounting structure 4, be connected with the brake disc through convenient realization of screw hole.
Referring to fig. 1 to 11 and 12 to 14, still another preferred embodiment of the present invention also provides a suspension system including: the 3D printing rear knuckle 100 comprises an upper swing arm 200, an H arm 300, an H arm link 400, a toe link 500, a hub bearing 600, a caliper 700, a brake disc 800 and the 3D printing rear knuckle 100 as described above, wherein the 3D printing rear knuckle 100 is connected with the upper swing arm 200, the H arm 300, the H arm link 400, the toe link 500, the hub bearing 600, the caliper 700 and the brake disc 800 respectively.
The utility model discloses a concrete embodiment still provides a suspension system, wherein, 3D prints back knuckle 100 and is connected with upper swing arm 200, H arm 300, H arm connecting rod 400, toe-in pull rod 500, wheel hub bearing 600, calliper 700 and brake disc 800 respectively as intermediate junction spare, constitutes this suspension system. Through adopting 3D after losing weight and structure enhancement to print back knuckle 100, be favorable to realizing the lightweight of whole suspension system to ensure the ride comfort and the economic nature of passing through of car.
Referring to fig. 15, specifically, the upper swing arm 200 is a curved rod-shaped structure, so that a reasonable gap between the upper swing arm and a vehicle body when the suspension system jumps is ensured, the two ends of the upper swing arm 200 are respectively provided with an upper swing arm fixing part 2001 and a second fixing part 4001, the upper swing arm fixing part 2001 is configured into an annular structure, a rubber bushing is installed in the upper swing arm fixing part 2001, a large hexagonal flange bolt penetrates through the rubber bushing to be fixedly connected with an upper end arm mounting part 2012 of the 3D printed rear knuckle 100, and the rubber bushing plays a role in buffering; an automobile bulb is arranged in the second fixing part 4001, and is fixedly connected with a rear auxiliary frame of an automobile through the automobile bulb, and multi-angle rotation is realized through spherical connection, so that a steering mechanism can smoothly steer, vibration is reduced, and smooth steering is realized; the utility model discloses an go up swing arm 200 can adopt integrative forging and pressing to make for the forming process of going up swing arm 200 is simple, can simplify the assembling procedure, reduction in production cost.
Referring to fig. 16, the H-arm 300 includes a first body part 3001 and a second body part 3002. First body part 3001 includes the H arm connecting rod fixed part 30011 of being connected with H arm connecting rod 400, and the first auxiliary frame fixed part 30012 of being connected with the car sub vehicle frame, H arm connecting rod fixed part 30011 and first auxiliary frame fixed part 30012 set up relative both sides, first auxiliary frame fixed part 30012 stretches out to the direction of keeping away from first body part 3001 from the inboard edge of first body part 3001, the installation sleeve has on the first auxiliary frame fixed part 30012, can be provided with the car bulb in the installation sleeve, through car bulb and back auxiliary frame fixed connection, utilize the ball-type to connect the rotation that realizes the multi-angle, make steering mechanism can smooth-going turn to, reduce vibrations and realize smooth-going to turn to. The second body portion 3002 includes an H arm fixing portion 30021 connected to the H arm attachment portion 2031 of the third connecting arm 203, and a second subframe fixing portion 30022 connected to the subframe of the vehicle, the H arm fixing portion 30021 and the second subframe fixing portion 30022 being disposed opposite to each other. Further, the H-arm link fixing portion 30011 and the H-arm fixing portion 30021 are disposed on the same side and have a U-shaped groove shape.
It should be noted that the H-arm 300 is further provided with a recessed structure 30023, which is connected with a shock absorber and a shock absorbing spring of an automobile; the H-arm 300 has a multi-recess reinforcing structure, which is optimally designed into various recess patterns by fully considering the stress condition of each part, so as to achieve the best effect of increasing the overall strength.
Referring to fig. 17, the H-arm link 400 is a straight rod-shaped link rod, a second fixing portion 4001 and a third fixing portion 4002 are respectively disposed at two ends of the straight rod-shaped link rod, a rubber bushing is installed in the second fixing portion 4001 of the H-arm link 400, a large hexagon flange bolt penetrates through the rubber bushing to be fixedly connected with an H-arm link installation portion 2011 of the first link arm 201 of the 3D printed rear knuckle 100, and the rubber bushing plays a role in buffering. The third fixing part 4002 of the H-arm link 400 is provided with an automobile ball head, and is fixedly connected with the H-arm link fixing part 30011 of the H-arm 300 through the automobile ball head, and multi-angle rotation is realized by means of ball-type connection, so that the steering mechanism can smoothly steer, vibration is reduced, and smooth steering is realized.
Referring to fig. 18, the toe-in pull rod 500 is a straight rod-shaped connecting rod, the two ends of the toe-in pull rod 500 are respectively provided with a toe-in pull rod fixing portion 5001 and a fourth fixing portion 5002, a rubber bushing is installed in the toe-in pull rod fixing portion 5001 of the toe-in pull rod 500, a large hexagonal flange bolt passes through the rubber bushing to be fixedly connected with the toe-in pull rod mounting portion 2021 of the second connecting arm 202 of the 3D printed rear knuckle 100, and the rubber bushing plays a role of buffering. The automobile bulb is arranged in the fourth fixing portion 5002 of the toe-in pull rod 500, and is fixedly connected with a rear auxiliary frame of an automobile through the automobile bulb, multi-angle rotation is achieved through spherical connection, so that the steering mechanism can steer smoothly, vibration is reduced, and smooth steering is achieved.
Referring to fig. 19, the hub bearing 600 includes a first flange 6001 and a second flange 6002 at two ends, respectively, wherein the hub bearing 600 is fixedly connected to the axle hole connecting seat 1 by passing the first flange 6001 and the mounting hole 102 on the axle hole connecting seat 1 through bolts; the hub bearing 600 is fixedly connected with a hub of an automobile through a second flange 6002, and a driving half shaft 1000 of the automobile is inserted into the hub bearing 600 and connected with the hub bearing 600.
Referring to fig. 14, three brake disc 800 fixing portions are arranged on the brake disc 800 and are respectively connected with the brake disc mounting structure 4 of the 3D printed knuckle 100 in a matching manner; specifically, the three brake disc 800 fixing portions on the brake disc 800 may be three direct welding studs.
Referring to fig. 14, optionally, a fender may be further disposed between the 3D printed rear knuckle 100 and the brake disc 800, wherein the fender is provided with a through hole corresponding to the brake disc mounting structure 4, so that the fender is fixed between the 3D printed rear knuckle 100 and the brake disc 800 when the 3D printed rear knuckle 100 is connected with the brake disc 800.
Referring to fig. 14, the calipers 700 are fixedly connected to the caliper mounting portions on the two caliper connecting arms 204 of the 3D printed knuckle 100, respectively.
The utility model discloses a still another preferred embodiment provides an automobile, include: a suspension system as described above.
In a preferred embodiment of the present invention, there is further provided an automobile, wherein the suspension system as described above is included, and the ride comfort and the economy of the automobile are advantageously ensured by reducing the weight of the suspension system.
Preferably, in the preferred embodiment of the utility model discloses an in the preferred hexagonal flange face bolt of bolt for connect, through the flange face of hexagonal flange face bolt, deformation that can be a little, increase area of contact for the connection effect is better. Furthermore, the present invention may repeat reference numerals and/or letters in the various examples. This repetition is for the purpose of simplicity and clarity and does not in itself dictate a relationship between the various embodiments and/or configurations discussed.
It is further noted that, herein, relational terms such as first and second, and the like may be used solely to distinguish one entity or action from another entity or action without necessarily requiring or implying any actual such relationship or order between such entities or actions. Also, the terms "comprises," "comprising," or any other variation thereof, are intended to cover a non-exclusive inclusion.
The foregoing is a preferred embodiment of the present invention, and it should be noted that, for those skilled in the art, a plurality of improvements and decorations can be made without departing from the principle of the present invention, and these improvements and decorations should also be regarded as the protection scope of the present invention.

Claims (10)

1. A 3D post-printing knuckle comprising: the middle part is provided with shaft hole connecting seat (1) and a plurality of by shaft hole connecting seat (1) outside extended linking arm, surround on shaft hole connecting seat (1) shaft hole (101) are provided with a plurality of mounting holes (102), be provided with the installation department that is used for connecting corresponding vehicle part on the linking arm, its characterized in that, integrated into one piece the 3D prints the back knuckle, still includes:
the reinforcing ribs are arranged on the connecting arms, the reinforcing ribs form irregular three-dimensional structures with different thicknesses along stress paths, and at least part of the connecting arms are connected with the shaft hole connecting seat (1) and/or the other connecting arm through the reinforcing ribs;
the hollow weight-reducing structure is arranged on the connecting arm;
a hollow structure (5) is arranged on at least one connecting arm and/or the reinforcing rib;
a plurality of supporting plates (6) are arranged between the inner wall surfaces of part of the hollow structures (5).
2. The 3D post-printing knuckle according to claim 1, wherein the support plates (6) have a predetermined thickness, and a spacing distance between adjacent support plates (6) is within a predetermined distance range.
3. The 3D post-printing knuckle according to claim 1, wherein the number of mounting holes (102) is four, comprising: the shaft hole (101) is provided with a first mounting hole (1021), a second mounting hole (1022), a third mounting hole (1023) and a fourth mounting hole (1024) which are sequentially arranged corresponding to four corners of a preset square, wherein the middle point of the preset square is positioned on the axis of the shaft hole (101);
the plurality of connecting arms includes:
the first connecting arm (201) corresponds to the first mounting hole (1021) and extends along a preset direction, an H-arm connecting rod mounting part (2011) is arranged at one end, close to the shaft hole connecting seat (1), of the first connecting arm (201), an upper end arm mounting part (2012) is arranged at one end, far away from the shaft hole connecting seat (1), of the first connecting arm (201), and the preset direction is parallel to the axial direction of the shaft hole (101);
a second connecting arm (202) which corresponds to the second mounting hole (1022) and extends along the preset direction, wherein a toe-in pull rod mounting part (2021) is arranged at one end, far away from the shaft hole connecting seat (1), of the second connecting arm (202); and the number of the first and second groups,
correspond third mounting hole (1023) and follow third linking arm (203) that the predetermined direction extends, third linking arm (203) are kept away from the one end of shaft hole connecting seat (1) is provided with H arm installation department (2031).
4. The 3D post-printing knuckle of claim 3, wherein the plurality of reinforcing ribs comprises:
a first rib (301) connecting the toe-in lever attachment section (2021) and the H-arm attachment section (2031);
the second reinforcing rib (302) is formed into a net structure and is respectively connected with the toe-in pull rod installation part (2021), the first connecting arm (201) and the shaft hole connecting seat (1);
third strengthening rib (303), third strengthening rib (303) are connected H arm installation department (2031) with on the shaft hole connecting seat (1) with lateral wall or terminal surface that third mounting hole (1023) correspond.
5. The 3D post-printing knuckle according to claim 4, characterized in that the first and third reinforcing ribs (301, 303) are each provided with the hollow structure (5).
6. The 3D post-printing knuckle of claim 3, wherein the plurality of connecting arms further comprises:
the caliper connecting arms (204) extend outwards and are perpendicular to the side walls of the shaft hole connecting seat (1), and a caliper mounting part is arranged at one end, away from the shaft hole connecting seat (1), of each caliper connecting arm (204);
wherein, two first calliper connecting arm (2041) in calliper connecting arm (204) correspond third mounting hole (1023) set up, second calliper connecting arm (2042) correspond fourth mounting hole (1024) set up.
7. The 3D post-printing knuckle of claim 6, wherein the plurality of reinforcing ribs comprises:
a fourth reinforcing rib (304), the fourth reinforcing rib (304) is connected on the second caliper connecting arm (2042) the caliper mounting portion with the first connecting arm (201) is kept away from one end of the shaft hole connecting seat (1).
8. 3D post-printing knuckle according to claim 3, characterized in that the first connecting arm (201), the second connecting arm (202) and the third connecting arm (203) are each provided with a brake disc mounting structure (4) protruding away from the preset direction.
9. A suspension system, comprising: the 3D printed rear knuckle (100) of any one of claims 1 to 8, comprising an upper swing arm (200), an H arm (300), an H arm link (400), a toe link (500), a hub bearing (600), a caliper (700), a brake disc (800), and the 3D printed rear knuckle (100) as claimed in any one of claims 1 to 8, wherein the 3D printed rear knuckle (100) is connected with the upper swing arm (200), the H arm (300), the H arm link (400), the toe link (500), the hub bearing (600), the caliper (700), and the brake disc (800), respectively.
10. An automobile, comprising: the suspension system of claim 9.
CN202021675935.7U 2020-08-13 2020-08-13 3D prints back knuckle, suspension system and car Active CN211494222U (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN202021675935.7U CN211494222U (en) 2020-08-13 2020-08-13 3D prints back knuckle, suspension system and car

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN202021675935.7U CN211494222U (en) 2020-08-13 2020-08-13 3D prints back knuckle, suspension system and car

Publications (1)

Publication Number Publication Date
CN211494222U true CN211494222U (en) 2020-09-15

Family

ID=72404945

Family Applications (1)

Application Number Title Priority Date Filing Date
CN202021675935.7U Active CN211494222U (en) 2020-08-13 2020-08-13 3D prints back knuckle, suspension system and car

Country Status (1)

Country Link
CN (1) CN211494222U (en)

Similar Documents

Publication Publication Date Title
JP6046450B2 (en) Aluminum steering knuckle
CN206598878U (en) A kind of aluminium alloy car knuckle
CN110626137B (en) Rear suspension of heavy-load passenger car
CN215205057U (en) Steering knuckle
CN113184052B (en) Five-connecting-rod aluminum alloy rear auxiliary frame with rear wheel steering function
CN102556158B (en) Steering knuckle for spatial multi-connecting rod linear guide type suspension frame
CN202703154U (en) Multi-connecting rod rectilinear translation type suspension using ball spline pair
CN211494222U (en) 3D prints back knuckle, suspension system and car
CN218806105U (en) Universal driving module for front axle and rear axle and automobile
CN211494224U (en) 3D prints back knuckle, suspension system and car
JP6408518B2 (en) Aluminum steering knuckle
JPH08198134A (en) Cross-member of aluminum alloy
CN111994168B (en) Steering knuckle after 3D printing, manufacturing method, suspension system and automobile
CN112009566B (en) Steering knuckle after 3D printing, manufacturing method, suspension system and automobile
CN211167097U (en) Front auxiliary frame of heavy-load passenger vehicle and heavy-load passenger vehicle
CN214057156U (en) Rear independent suspension structure
CN202413912U (en) Steering knuckle for spatial multi-connecting rod straight-line guiding type suspension frame
CN211494223U (en) 3D prints back knuckle, suspension system and car
CN209833762U (en) Steering assembly of commercial vehicle
CN210283807U (en) Rear trailing arm assembly structure and automobile chassis rear suspension
CN210760117U (en) Five-link rear suspension and vehicle structure with same
CN201231654Y (en) Axle shell monoblock casting type steering drive axle
CN218287875U (en) Double-ball-head steering knuckle assembly, suspension and automobile with double-ball-head steering knuckle assembly
WO2023039928A1 (en) Tricar chassis device
WO2023039927A1 (en) Rear independent suspension system having two-stage stiffness

Legal Events

Date Code Title Description
GR01 Patent grant
GR01 Patent grant