Patient rehabilitation testing device

By designing a patient rehabilitation testing device that utilizes pressure sensors and multiple walking zones, the accuracy and efficiency issues of traditional orthopedic rehabilitation testing have been resolved, enabling precise, real-time rehabilitation assessment and personalized guidance.

CN224099917UActive Publication Date: 2026-04-10QUANZHOU ZHENGGU HOSPITAL
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-23
Publication Date
2026-04-10

AI Technical Summary

Technical Problem

In existing technologies, orthopedic rehabilitation testing relies on traditional imaging techniques and subjective assessments, which make it difficult to comprehensively and accurately reflect the patient's soft tissue, muscle strength, joint range of motion, and motor function rehabilitation status. Furthermore, the assessment results are easily affected by the doctor's experience and subjective judgment, which is time-consuming and laborious.

Method used

A patient rehabilitation testing device was designed, comprising a base, handrails, pressure sensors, and multiple walking areas. Combining multiple walking paths and dynamic testing areas, the device monitors the patient's walking and movements in real time through pressure sensors, providing objective and quantitative rehabilitation assessment data.

Benefits of technology

It improves the accuracy and efficiency of rehabilitation testing, enhances the diversity and safety of training, enables real-time data monitoring and analysis, promotes doctor-patient communication, and provides personalized rehabilitation guidance.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the field of rehabilitation testing devices, and provides a patient rehabilitation testing device which comprises a base and a handrail frame arranged on the base, the base comprises two linear walking areas, an arc walking area connected to one ends of the two linear walking areas and an S walking area connected to the other ends of the two linear walking areas, a buffer pad is arranged at the top of the base, a plurality of footprint patterns are arranged on the buffer pad, the footprint patterns are annularly arranged on the buffer pad, and a first pressure sensor is arranged on each footprint pattern; a rehabilitation area is arranged in the middle of the base, guide rails are arranged on the two sides of the rehabilitation area, and a walking support is arranged on the guide rails in a sliding mode. The first pressure sensor, the second pressure sensor and the third pressure sensor can upload detected values to a terminal in real time, so that the test efficiency and accuracy are improved, and the technical problems that the patient rehabilitation test efficiency is low, and the actual rehabilitation condition of the patient is difficult to accurately reflect are solved.
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Description

TECHNICAL FIELD

[0001] The utility model relates to the field of rehabilitation testing device especially relates to a patient rehabilitation testing device. BACKGROUND

[0002] In current medical practice, orthopedic rehabilitation detection still highly depends on traditional evaluation methods, which mainly involve doctors taking X-ray or MRI images and combining them with a series of simple limb movements performed by patients. However, this evaluation method has many limitations and cannot fully and accurately reflect the actual rehabilitation status of patients.

[0003] Firstly, although medical imaging technology provides doctors with an intuitive view of bone structure, it is not sufficient for the evaluation of soft tissue, muscle strength, joint mobility, and overall motor function. Doctors can only roughly estimate the rehabilitation progress based on changes in bone morphology in the images, combined with their clinical experience and subjective descriptions from patients. The accuracy of this method largely depends on the personal experience and subjective judgment of doctors, lacking objective and quantitative evaluation standards.

[0004] Secondly, subtle changes in the amplitude, speed, strength, and coordination of simple limb movements performed by patients are often difficult to accurately capture with the naked eye. These subtle changes are crucial for evaluating the rehabilitation progress of patients, as they reflect the recovery of muscle strength, joint mobility, and motor control ability. However, traditional evaluation methods have obvious shortcomings in this regard.

[0005] In addition, doctors need to observe and track patients for a long time to understand their rehabilitation progress. This process not only consumes time and effort but is also susceptible to the influence of factors such as personal experience, fatigue level, and subjective judgment of doctors, leading to inconsistency and inaccuracy in evaluation results. SUMMARY

[0006] Therefore, to solve the above problems, the utility model provides a patient rehabilitation testing device. It solves the technical problem of low efficiency in patient rehabilitation testing and the difficulty in accurately reflecting the actual rehabilitation status of patients.

[0007] To achieve the above purpose, the utility model adopts the following technical solutions:

[0008] A patient rehabilitation testing device comprises a base and a handrail arranged on the base, the base comprises two straight walking areas, an arc-shaped walking area connected to one end of the two straight walking areas, an S-shaped walking area connected to the other end of the two straight walking areas, a buffer pad arranged on the top of the base, a plurality of foot print patterns arranged on the buffer pad, the foot print patterns are arranged in a ring on the buffer pad, and a first pressure sensor is arranged on each foot print pattern; the middle part of the base has a rehabilitation area, the two sides of the rehabilitation area have guide rails, and a walking support is slidably arranged on the guide rails.

[0009] Further:

[0010] The handrail has a plurality of second pressure sensors.

[0011] One of the straight walking areas has an uphill section and a downhill section.

[0012] The rehabilitation area has a stretcher.

[0013] It also comprises a terminal, and the first pressure sensor is connected to the terminal.

[0014] The bottom of the walking support is provided with universal casters.

[0015] The walking support has a first handrail part.

[0016] The rehabilitation area has a dynamic testing area, the dynamic testing area has a moving area, and the moving area has a third pressure sensor.

[0017] The dynamic testing area has a seat, the bottom of the seat has two footrests, and the footrests have fourth pressure sensors.

[0018] The dynamic testing area has a second handrail part.

[0019] By adopting the foregoing technical scheme, the patient rehabilitation testing device has the following advantages:

[0020] 1. Improve the accuracy of rehabilitation testing: the plurality of first pressure sensors arranged on the base, especially the design of the foot print patterns, can accurately detect the pressure distribution of the patient's feet on the ground during walking. This design not only helps to judge the stability of the patient's walking posture, but also can evaluate the patient's rehabilitation progress by comparing whether the pressure of the two feet is similar or close. At the same time, the second pressure sensor on the handrail can further capture the subtle changes in the patient's movements when in pain or discomfort, providing more comprehensive rehabilitation evaluation data for doctors.

[0021] 2. Enhance the diversity and safety of rehabilitation training: Combined with straight walking area, arc walking area and S walking area, it provides patients with various walking and training paths. This not only meets the needs of patients at different rehabilitation stages, but also stimulates patients' training interest through diversified training methods, improving the rehabilitation effect. The setting of cushion and stretcher further guarantees the safety of patients during training, reducing the risk of accidental injury.

[0022] 3. Real-time monitoring and analysis of rehabilitation data: The first pressure sensor, the second pressure sensor and the third pressure sensor can upload the detected values to the terminal in real time, so that doctors can quickly obtain and analyze the rehabilitation data of patients. This real-time monitoring method not only improves the work efficiency of doctors, but also provides more personalized rehabilitation guidance scheme for patients, accelerating the rehabilitation process.

[0023] 4. Promote doctor-patient communication and understanding: Through intuitive rehabilitation data display, doctors can more easily explain the rehabilitation progress and existing problems to patients, enhancing the communication and understanding between doctors and patients. At the same time, patients can also participate more actively in rehabilitation training by viewing their own rehabilitation data, forming a good atmosphere of joint efforts of doctors and patients.

[0024] 5. Dynamic test area can perform squatting, jumping, single leg standing, standing, foot stepping and other rehabilitation tests to determine whether patients have difficulty in making other actions. For patients with difficulty walking, walking support can be used to walk straight on the rehabilitation area for rehabilitation training. BRIEF DESCRIPTION OF DRAWINGS

[0025] Figure 1 is a top view of the rehabilitation test device.

[0026] Figure 2 is a front view of the rehabilitation test device.

[0027] Figure 3 is a structural schematic view of the rehabilitation area.

[0028] Figure 4 is a partial enlarged view of Figure 3

[0029] Figure 5 is a structural schematic view of the walking support.

[0030] REFERENCE NUMERALS:

[0031] ​1, base; 11, straight line walking area; 12, arc line walking area; 13, S walking area; 14, cushion; 15, footprint pattern; 16, first pressure sensor; 17, uphill section; 18, downhill section; 2, handrail; 20, second pressure sensor; 3, rehabilitation area; 31, guide rail; 32, stretcher; 33, dynamic test area; 331, active area; 332, third pressure sensor; 333, seat; 334, footrest; 335, fourth pressure sensor; 336, second handrail; 4, walking support; 41, universal wheel; 42, first handrail. DETAILED DESCRIPTION

[0032] The utility model is further illustrated in combination with the drawings and specific embodiments.

[0033] Reference Figures 1 to 5 The embodiment provides a patient rehabilitation test device, which comprises a base 1 and a handrail 2 arranged on the base 1, the base 1 comprises two straight line walking areas 11, an arc line walking area 12 connected to one end of the two straight line walking areas 11, and an S walking area 13 connected to the other end of the two straight line walking areas 11, the top of the base 1 is provided with a cushion 14, a plurality of footprint patterns 15 are arranged on the cushion 14, the footprint patterns 15 are arranged around the cushion 14, and a first pressure sensor 16 is arranged on each footprint pattern 15; the middle of the base 1 is provided with a rehabilitation area 3, guide rails 31 are arranged on the two sides of the rehabilitation area 3, and a walking support 4 is slidably arranged on the guide rails 31.

[0034] In one embodiment, the handrail 2 is provided with a plurality of second pressure sensors 20.

[0035] In one embodiment, one of the straight line walking areas 11 is provided with an uphill section 17 and a downhill section 18.

[0036] In one embodiment, the rehabilitation area 3 is provided with a stretcher 32.

[0037] In one embodiment, the bottom of the walking support 4 is provided with a universal wheel 41.

[0038] In one embodiment, the walking support 4 is provided with a first handrail 42.

[0039] In one embodiment, the rehabilitation area 3 is provided with a dynamic test area 33, the dynamic test area 33 is provided with an active area 331, and the active area 331 is provided with a third pressure sensor 332.

[0040] In one embodiment, the dynamic test area 33 is provided with a seat 333, the bottom of the seat 333 is provided with two footrests 334, and the two footrests 334 are provided with fourth pressure sensors 335; the footrests 334 can be a footrest mechanism similar to the brake and accelerator of a car, and the specific arrangement can be determined according to the situation.

[0041] In one embodiment, the dynamic testing area 33 has a second handrail portion 336.

[0042] In one embodiment, a terminal is further included, and the first pressure sensor 16, the second pressure sensor 20 and the third pressure sensor 332 are connected to the terminal.

[0043] The first pressure sensor 16, the second pressure sensor 20 and the third pressure sensor 332 are known components and will not be described herein.

[0044] The working mode of the utility model is as follows:

[0045] When the patient is tested for rehabilitation, the patient walks on the cushion 14, walks along the footprint pattern 15, walks straight lines and up and down slopes on the straight line walking area 11, walks curved lines on the curved line walking area 12 and the S walking area 13, the first pressure sensor 16 can detect the pressure of the two feet on the ground, and the rehabilitation of the patient can be determined by judging whether the pressure of the two feet is similar or close; the patient can also hold the handrail 2, and the second pressure sensor 20 can detect the pressure, when the patient feels pain or discomfort, the force acting on the first pressure sensor 16 and the second pressure sensor 20 will change, and the rehabilitation of the patient can be detected; the dynamic testing area 33 can perform squatting, jumping, single-foot standing, foot stepping and other rehabilitation tests, and can determine whether the patient has difficulty in performing other actions; for patients who have difficulty in walking, the walking support 4 can be used to walk straight lines on the rehabilitation area 3 for rehabilitation training, and in this way, the patient can perform rehabilitation tests independently, and medical staff can accurately and quickly determine the rehabilitation of the patient by observing the data.

[0046] Although the utility model is specifically shown and introduced in combination with the preferred embodiments, those skilled in the art should understand that various changes can be made to the utility model in form and details without departing from the spirit and scope of the utility model defined in the appended claims, and all the changes are within the protection scope of the utility model.

Claims

1. A patient rehabilitation testing device, characterized by: The utility model provides a kind of rehabilitation training device, including base and hand support frame arranged on base, the base includes two linear travel areas, the arc travel area connected to one end of two linear travel areas, the S travel area connected to the other end of two linear travel areas, the top of the base is equipped with buffer pad, and the buffer pad is equipped with multiple footprint patterns, the footprint pattern ring is in buffer pad, and first pressure sensor is equipped on each footprint pattern;The middle part of the base has rehabilitation area, and the guide rail is slidably equipped with travel support on the guide rail of rehabilitation area two sides.

2. A patient rehabilitation testing device according to claim 1, wherein: The hand support frame has multiple second pressure sensors.

3. A patient rehabilitation testing device as claimed in claim 1, wherein: One of the linear travel areas has an uphill section and a downhill section.

4. The patient rehabilitation testing apparatus of claim 1, wherein: The rehabilitation area has a stretcher.

5. The patient rehabilitation testing apparatus of claim 1, wherein: A terminal is also included, and the first pressure sensor is connected to the terminal.

6. The patient rehabilitation testing apparatus of claim 1, wherein: The travel support has universal casters at the bottom.

7. The patient rehabilitation testing apparatus of claim 1, wherein: The travel support has a first handrail portion.

8. A patient rehabilitation testing apparatus as claimed in any one of claims 1 to 7, wherein: The rehabilitation area has a dynamic testing area, and the dynamic testing area has an active area with a third pressure sensor.

9. A patient rehabilitation testing apparatus as claimed in claim 8, wherein: The dynamic testing area has a seat with two footrests at the bottom, and the footrests have fourth pressure sensors.

10. A patient rehabilitation testing apparatus as claimed in claim 8, wherein: The dynamic testing area has a second handrail portion.